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REVIEW article

Front. Pharmacol., 07 June 2024
Sec. Ethnopharmacology

Danshen-Shanzha formula for the treatment of atherosclerosis: ethnopharmacological relevance, preparation methods, chemical constituents, pharmacokinetic properties, and pharmacological effects

Qiong Xu&#x;Qiong Xu1Zhe Yu&#x;Zhe Yu2Meng Zhang,&#x;Meng Zhang1,3Tian Feng
Tian Feng1*Fan SongFan Song1Haifeng TangHaifeng Tang1Siwang WangSiwang Wang1Hua Li
&#x;Hua Li1*
  • 1Department of Chinese Materia Medica and Natural Medicines, School of Pharmacy, Air Force Medical University, Xi’an, China
  • 2Department of Pharmaceutical Analysis, School of Pharmacy, Air Force Medical University, Xi’an, China
  • 3School of Graduate Studies, Air Force Medical University, Xi’an, China

Danshen-Shanzha Formula (DSF) is a well-known herbal combination comprising Radix Salvia Miltiorrhiza (known as Danshen in Chinese) and Fructus Crataegi (known as Shanzha in Chinese), It has been documented to exhibit considerable benefits for promoting blood circulation and removing blood stasis, and was used extensively in the treatment of atherosclerotic cardiac and cerebral vascular diseases over decades. Despite several breakthroughs achieved in the basic research and clinical applications of DSF over the past decades, there is a lack of comprehensive reviews summarizing its features and research, which hinders further exploration and exploitation of this promising formula. This review aims to provide a comprehensive interpretation of DSF in terms of its ethnopharmacological relevance, preparation methods, chemical constituents, pharmacokinetic properties and pharmacological effects. The related information on Danshen, Shanzha, and DSF was obtained from internationally recognized online scientific databases, including Web of Science, PubMed, Google Scholar, China National Knowledge Infrastructure, Baidu Scholar, ScienceDirect, ACS Publications, Online Library, Wan Fang Database as well as Flora of China. Data were also gathered from documentations, printed works and classics, such as the Chinese Pharmacopoeia, Chinese herbal classics, etc. Three essential avenues for future studies were put forward as follows: a) Develop and unify the standard preparation method of DSF as to achieve optimized pharmacological properties. b) Elucidate the functional mechanisms as well as the rationality and rule for the compatibility art of DSF by focusing on the clinic syndromes together with the subsequent development of preclinic study system in vitro and in vivo with consistent pathological features, pharmacokinetical behaviour and biomarkers. c) Perform more extensive clinical studies towards the advancement of mechanism-based on evidence-based medicine on the safety application of DSF. This review will provide substantial data support and broader perspective for further research on the renowned formula.

GRAPHICAL ABSTRACT

1 Introduction

Ancient Chinese developed the expertise of employing natural materials to alleviate disease as a result of their lengthy battle for surviving against a variety of adverse conditions (Muszynska et al., 2015). There are numerous records about the use of natural plants, animals, and minerals to treat diseases in the classics of traditional Chinese medicine, and these materials are collectively referred to as Traditional Chinese Medicine (TCM) (Ai et al., 2023). Traditional Chinese Medicine has constructed the foundations of a sophisticated traditional medical system through thousands of years of medication discovery, experience accumulation as well as knowledge preservation, and served as a safeguard for the health of the Chinese since ancient times (Lv, R. et al., 2022; Zhang et al., 2023). In the past few decades, as a result of the increased attention given to TCM around the world, it has become an increasingly essential healthcare system not just in China but also globally, which may stably provide innovative therapies for patients with life-threatening diseases in the modern society (Xing and Liu, 2021).

Early in its history of medical practice, traditional Chinese medicine often relied on single herb to treat diseases (Oravecz and Meszaros, 2012). However, with the steady collection of therapeutic experience, TCM practitioners have progressively become aware of the complexities of pathogenesis for the diseases, and a variety of creative compatibility art for herbs have been proposed in an effort to improve therapeutic benefit while minimizing adverse effects (Ji et al., 2018). In the earliest Chinese pharmacy book known as “Shen Nong Ben Cao Jing,” the theory of “seven features of compatibility” identifies single application, potentiation, assistance, toxicity restraint, detoxification, inhibition, and incompatibility as the seven types of interactions that can occur between herbs (Yang et al., 2018). As a result, multi-herb therapies became an integral part of traditional Chinese medical systems and since then been practiced for decades of centuries throughout China and other nations. Multi-herb formulation invokes the concept of system-based strategies that integrate multiple inputs to address the complexities of a disease condition (Li et al., 2016; Tang et al., 2022). As the core of the culture for traditional Chinese medicine, more than one hundred thousand formulations have been amassed over the past 2000 years (Li and Zhang, 2008). It is noteworthy that a special group, called herb pairs, served as a crucial part in the development of the theory of multi-herb formulation. Herb pairs is a delicate combination consisting of two relatively fixed herbs throughout clinical use, which can be regarded as the most basic and simple forms of multi-herb formulation (Wang, S. et al., 2012). In the Treatise on Exogenous Febrile and Miscellaneous Diseases (210 AD), one of the most valuable classics of herbal formulas, one hundred and forty-seven herb pairs have been documented, and over forty formulas were consisted based on two herbs. To this day, a great deal of preparations derived from herb pairs are routinely documented in the latest version of Chinese pharmacopoeia (2020 edition). Among the compatibility art of herb pairs, potentiation and assistance are the most common compatibilities. Synergistic effects of herb pairs are able to be accomplished through utilizing a pair of herbs with particular components of unique pharmacodynamic characteristics or pharmacokinetic properties. As an instance, one active component may improve the therapeutic effect of another active component through activating specific pathways, or by modulating its absorption, distribution, metabolism and excretion (ADME) (Zhang and Ren, 2017). These compatibilities have long been adopted in many noted herb pairs, such as Shuang Dan Fang (Radix Salviae Miltiorrhizae and Cortex Moutan) and Yuan Hu Zhi Tong Fang (Rhizoma Coridalis and Angelica dahurica) (Li et al., 2016; Liu et al., 2020).

Danshen-Shanzha Formula (DSF), derived from Danshen and Shanzha herb pair (DSHP) which composed of Radix Salvia miltiorrhiza (Chinese name: Danshen) and fructus crataegi (Chinese name: Shanzha), is one of the most classic herb formula for mutual potentiation and has been extensively applied for the therapy of blood stasis conditions with long-term clinical experience. Pharmacological studies have demonstrated that DSF could reduce lipid level, free radical scavenging, reduce endothelial dysfunction, inhibit inflammation (Zhang et al., 2019). In modern medicine, the anti-hypolipidemic effect of DSF has been clearly demonstrated, and multiple dosage forms of patent medicine derived from this formula in clinical applications, such as oral particles, decoctions and powder, are all primarily indicated for atherosclerotic conditions (Liu et al., 2012; Gu et al., 2016; Anonymous, 2019). Despite several breakthroughs achieved in the basic research and clinical applications of DSF over the past two decades, there is a lack of comprehensive reviews summarizing its features and research, which hinders further exploration and exploitation of this promising formula.

Herein, with the aim of providing advantageous details for the scientific studies and modern applications of DSF, the research status of DSF were summarized in terms of its ethnopharmacological relevance, preparation methods, chemical constituents, pharmacokinetic properties and pharmacological effects by searching related keywords through China National Knowledge Infrastructure (CNKI), PubMed, Web of Science, along with other databases. It is expected to enlighten the comprehensive and deeper knowledge of DSF, thus providing innovative idea for system studies of this herbal combination in the future.

2 Ethnopharmacological relevance

2.1 History of Danshen-Shanzha Formula (DSF)

Danshen-Shanzha formula (DSF), a form of prescription for danshen (the root of Salvia miltiorrhiza Bge., DS) and shanzha (the fruit of Crataegus pinnatifida Bge., SZ) herb pair, was originally used in folk medicine since the Han Dynasty in the form of empirical formula. It was used clinically by Dr. Jin-MO Shi in the late Qing Dynasty, who believed that this combination had the effect of promoting Qi and blood circulation, removing blood stasis and relieving pain. This traditional Chinese herbal prescription was officially recorded in the book “Shi Jin-Mo’s Clinical Experience on Medicine” in 1982 (Lv, 2005), written by Dr. Jing-Shan Lv, the student of Dr. Shi. Subsequently, this formula was developed into a modern preparation “Xiaoyu Jiangzhi Capsule” (SFDA approval number Z20060427), composed of total phenolic acid extract of salvia miltiorrhiza and total triterpene acid extract of hawthorn, which is primarily utilized as a preventative medicine for hyperlipidemia (Wu et al., 2022). Furthermore, DSF has also been widely served as the fundamental herb pair in numerous traditional complex formulas and patent medicines for clinical treatment of cardiac and cerebral vascular diseases, primarily aiming at promoting blood circulation and removing blood stasis. Examples include Xin Ke Shu (Yang et al., 2018), Xin Shu Bao (Zhang et al., 2022) and Shuan Tong Ling (Mei et al., 2017).

2.2 Traditional background of the constituent herbs of DSF

Danshen is the dried radix and rhizome of Salvia miltiorrhiza Bge. The usual harvest time is in the stage from early October-November or late spring before germination (He et al., 2010b), which has been considered to be the ideal period for the accumulation of the active components, including salvianolic acid, tanshinone, and aliphatic acid (Zeng et al., 2017). The sources of both wild and cultivated DS have a broad distribution over Shandong, Henan, Shaanxi, and Sichuan province of China, among which Shandong enjoys a good reputation both at mainland and abroad, with advantage on per unit output, drug potency, root color and appearance (He et al., 2010a). According to Traditional Chinese Classics, DS is documented as the herb that have the beneficial properties of promoting blood circulation, removing blood stasis, relieving pain through the meridian, clearing the heat and removing irritations, and cooling blood and eliminating blemishes (Liu et al., 2020). From Han Dynasty (202 BC) to modern society, DS has been extensively utilized in conjunction with various herbs to address a wide range of health issues, including diabetes, hepatocirrhosis, osteoporosis, and particularly cerebrovascular as well as cardiovascular diseases (Zhang and Ren, 2017). Studies on phytochemistry have revealed that DS contains a variety amount of phenylpropionic acids and diterpenequinones (Liu et al., 2023).

Shanzha, commonly considered to be the fruit of Crateagus pinnatifida Bge. and its variant “Shan-Li-Hong” (Crateagus pinnatifida Bge. var. major N. E. Br.), owing to its enormous fruit, distinctive tasty, and characteristic sourness. Moreover, the above mentioned two source of Shanzha are catalogued in the latest version (2020 edition) of Chinese Pharmacopoeia, as a kind of TCM for treating cardiovascular and gastrointestinal disorders (Li et al., 2023). SZ is widespread in northern China, the best harvest time is in the fructescence stage in autumn. SZ has a long tradition for the medical application throughout the Chinese history. According to the Compendium of Materia Medica (Chinese name: Ben Cao Gang Mu), a renowed TCM masterpiece, the initial recorded clinic application of SZ has been recorded as the therapy for the symptom of “disorder of Qi and blood,” such as dyspepsia, cardiodynia and postpartum blood stasis, ets., dating back to 1552 AD. Over the past several decades, studies have revealed that SZ exerts a variety of pharmacological beneficial impacts on circulatory, digestive and endocrine systems. Moreover, to date, around 150 chemicals have been isolated and identified from SZ, including phenylpropanoids, triterpenic acids, flavonoids and polysaccharides (Ye et al., 2023). In addition to its traditional usage as a peptic agent, SZ has also been widely employed as foodstuffs in China and the Europe, including soft drink products, jams, juices, tinned goods, ingredients for wines, and a variety of sweet dishes. In recent years, SZ are receiving more and more interest in foodstuffs industry and medical field owing to its well acknowledged health advantages, such as the efficacy in decreasing serum cholesterol levels and lowering the risk of coronary heart disease (Pei et al., 2022).

2.3 Theoretical basis and clinical applications of DSF

In ancient texts of traditional Chinese medicine, atherosclerosis was not specifically labeled. Some medical practitioners categorized it under concepts such as “blood stasis” or “phlegm turbidity” based on its underlying causes, while others denoted it as “vessel obstruction” depending on the affected region (Yi et al., 2023). However, according to the clinical theory of traditional Chinese medicine, there is a prevailing consensus that the fundamental pathogenesis of atherosclerosis lies in Qi stagnation and blood stasis, as well as phlegm turbidity and food stagnation. This implies that the human vessels are vulnerable to the influence of pathogenic toxins, subsequently resulting in impaired circulation due to the occurrence of stagnation. Concurrently, the presence of blood stasis obstructs the veins, thereby exacerbating the hindrance of both Qi and blood flow, ultimately culminating in the progression of atherosclerosis (Li et al., 2024). Hence, traditional Chinese medical practitioners have endeavored to enhance the flow of blood in order to eliminate pathogenic toxins within the vessels, a practice referred to as “promote blood circulation and remove blood stasis.” This principle has emerged as a crucial strategy for treating atherosclerosis within the system of TCM (Li et al., 2022). Interestingly, DS has been found to enhance hemodynamic circulation and promote tissue regeneration, whereas ancient texts suggest that the effectiveness of DS is comparable to Si Wu Tang, indicating its potential for the blood-activating and stasis-resolving properties equivalent to the combination of Radix Angelicae Sinensis, Radix Paeoniae Alba, Rhizoma Ligustici Wallichii, and Rhizoma Rehmanniae (Yang and Ma, 2024). Therefore, in clinical applications of Chinese medicine, DS is widely utilized as a crucial ingredient in most of the classical prescriptions and patent medicines that primarily aim to promote blood circulation and resolve blood stasis, such as Danshen Decoction, Compound Danshen Dripping Pills, and Danhong Injection. On the other hand, in accordance with the principles of TCM, phlegm turbidity arises from spleen and stomach weakness. When the functions of these organs in the middle burner become abnormal, they are unable to effectively transport and disperse water and aliment, leading to excessive lipid accumulation in blood vessels and subsequent formation of turbid phlegm. Ultimately, this can impair blood vessel function and contribute to the development of atherosclerosis. Based on records from traditional Chinese medical classics as well as clinical experience, SZ not only possesses the capability of prompting blood circulation and inhibiting thrombus formation but also excels in enhancing gastrointestinal motility and reducing blood lipids. Consequently, in order to achieve the therapeutic effect of alleviating atherosclerosis, Dr. Shi has integrated the principles of promoting blood circulation and removing blood stasis with strengthening stomach function and eliminating turbidity through years of medical practice. The combination of DZ and SZ (known as DSF) was utilized, wherein SZ synergistically enhanced the efficacy of DS in promoting blood circulation and removing blood stasis. Additionally, SZ emphasized its potential in strengthening gastric function and reducing lipid levels for treating hyperlipidemia. The combination undeniably offers clear therapeutic benefits in the treatment of atherosclerosis associated with phlegm toxin and blood stasis syndrome (Lv, 2005; Li et al., 2023). Currently, DSF has been employed in the treatment of various manifestations of atherosclerosis in modern TCM, encompassing impaired endothelial function, disrupted lipid homeostasis, and unregulated immune-inflammatory reactions (Zhang, 2013; Zhang et al., 2016; Zhang et al., 2019; Liu et al., 2022). Notably, it has shown promising results in reducing the risk factors associated with atherosclerosis, such as high cholesterol levels and hypertension. Research have indicated that DSF can effectively lower LDL cholesterol while increasing HDL cholesterol levels, thereby improving overall lipid profile and reducing the likelihood of plaque formation in arteries (Gao et al., 2007; Zhang, 2009). Importantly, studies evaluating the safety characteristics of DSF revealing minimal occurrence of adverse reactions or side effects. This characteristic renders it an appealing option for long-term utilization without compromising patient health or causing undue harms (Bi et al., 2015; Wu, 2015; Gu et al., 2016; Zhang et al., 2022). Pharmacological research has indicated that DSF possesses the ability to effectively dilate blood vessels, promote blood circulation and improve cardiac function, thereby exhibiting promising therapeutic potential in the treatment of cardiovascular and cerebrovascular diseases, including angina pectoris, myocardial ischemic damage, and cerebral infarction (Wu, 2015; Xu et al., 2019; Wen et al., 2021). Additionally, extensive research has been conducted on formulas or preparations containing DSF, which have demonstrated numerous therapeutic benefits in the treatment of various health conditions. For example, Xin-Ke-Shu tablets have exhibited efficacy in managing arrhythmia (Yang, 2008), while Danshen-Shanzha Decoction has proven effective in treating non-alcoholic steatohepatitis (Wang and Guo, 2018). Tong-Mai-Hua-Zhuo Decoction has shown promise in controlling hypertension (Nan et al., 2017), and Jiang-Zhi-Qing-Nao Decoction has been explored for its potential benefits in managing hyperlipemia (Luan and Hao, 2012). Moreover, research suggests that DSF-containing formulas like Yi-Qi-Huo-Xue-Tong-Luo Decoction may play a role in improving outcomes for individuals with cerebral ischemic stroke (Qu, 2015). Furthermore, Shanzha-Danshen Decoction has been investigated for its potential therapeutic effects on coronary heart disease (Liu, 2010; Zhang et al., 2013b). The therapeutic benefits attributed to these aforementioned formulas or preparations are undeniably linked to the role of DSF in promoting blood circulation and removing blood stasis along with eliminating turbidity. Moreover, these therapeutic advantages highlight the adaptability and potential of formulations containing DSF as a complementary approach alongside conventional treatments. Nevertheless, additional research is still necessary for elucidating their mechanisms of action fully and optimizing their application in clinical practice.

3 Preparation methods

The majority of herbs in Chinese medicine are typically administered through water-based decoctions. For the original prescription written in the book Shi Jin Mo Dui Yao, the dose utilized is stated as 10–30 g DS+10–30 g SZ for a set of daily use, however the amount of water used in boiling of DSF did not spell out specifically. According to the ancient literature and usual decoction method of Chinese medicine, we considered a set of DS-SZ herbal mixture, should at least put in two bowls (approximately 600 mL) of water and decocted until the final volume is halved. The compatibility ratio of DS and SZ is normally adjusted by the physician based on the clinical condition, and the ratio of 1:1 has been used widely in the clinic.

On the other hand, improved preparation methods are routinely taken by investigators in preclinical research and have a standardized process. Among which, the preparation process developed by Zhang et al. (2013a) has been widely employed and referenced in several studies. According to the method, 1-kg DS and 1-kg SZ should be sliced followed by extracting and refluxing with eight times amount of 70% ethanol (w/v) for a duration of 2 h. Subsequently, resulting mixtures were subjected to two rounds of concentration using a rotary evaporator at a temperature of 40°C, resulting in the formation of a brown gum. This gum was then suspended in distilled water and subjected to chloroform extraction, which was repeated three times to yield both a chloroform extract and a water layer. The water layer was then subjected to centrifugation at 4°C with 3,500 r/min for 20 min, and the resulting supernatant was purified using a D101 macroporous resin column. Elution was carried out using varying concentrations of ethanol in a sequential manner, and the elutions were combined and concentrated under vacuum. Finally, the concentrated solution was freeze-dried to obtain the DSF extract lyophilized powder (200 g). Seven previous reported bioactive ingredients, including chlorogenic acid, procyanidin B2, (−)-epicatechin, rosmarinic acid, lithospermic acid, salvianolic acid B, and salvianolic acid A, were taken as the QC compounds to ensure the quality of the DSF lyophilized powder. However, danshensu, one of the most important hydrosoluble components of DS, was not detected in the DSF extract prepared by this method. Therefore, we believe that this preparation method still needs be improved in the future.

DSF could also been prepared by decocting the individual herbs separately. According to Bao et al. (2013) method, SZ was extracted twice with ten times the amount of 75% ethanol (w/v) in reflux for 1 h followed by concentrating to 1.0 g/mL (equivalent to crude drug). The concentrated extract will be purified by an AB-8 macroporous resin column and then rinsed with 70% ethanol. The elutions were taken apart, combined and concentrated in a vacuum chamber before being freeze-dried to obtain SZ lyophilized powder. DS lyophilized powder would be obtained by the same method. And these two kinds of lyophilized powder were mixed in the ratio of 4:5 to obtain DSF lyophilized powder. This kind of preparation methods has the benefit of preserving the chemical composition of the two herbs to a larger extent, but does not take into account for the potential chemical interactions that may occur when the two herbs are decocted together, and is somewhat different from the clinical preparation method recorded in ancient books.

4 Chemical constituents

It is generally known that the bioactivities of herbal remedies largely depend on the chemical constituents of the herbs. Thus, it is critical to accurately comprehend the material foundation of DSF with the aim to elucidate, inherit and develop the compatibility art of the herb pair. To obtain a thorough understanding for the phytochemical details of DSF, a brief introduction of the chemical constituents of Danshen and Shanzha will be provided respectively, after which comes the research progress on compatibility behavior for the constituents of their combination form DSF.

4.1 Chemical constituents in Danshen

Danshen (DS, the root of Salvia miltiorrhiza Bge.) was proven to have many active ingredients, including diterpenoids, triterpenoids, lactone, nitrogenous, phenolic acids, and other compounds (Jia et al., 2019). According to the Chemistry Database, over than a hundred compounds have been identified from DS until so far, including water-soluble phenylpropionic acids such as salvianolic acid A/B/C/D/E/F/G, lipid-soluble phenanthraquinones such as tanshinone I/IIA/IIB/V/VI, dihydrotanshinone І, tanshindiol A, miltirone, dehydromiltirone and isotanshinone, etc (Su et al., 2015; Yuan et al., 2020). Readers who are interested in obtaining further information regarding the chemical structures of DS compounds are advised to refer to the specialized review of Salvia miltiorrhiza Bge conducted by Wang et al. (Wang et al., 2017). Within the scope of this current review, we have exclusively presented a compilation of the primary compounds related to ingredients of DS (Table 1), along with the principal chemical structures that have been reported in literature concerning anti-atherosclerotic activity (Figure 1).

Table 1
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Table 1. Main chemical constituents and relative detection methods of Danshen-Shanzha Formula (DSF).

Figure 1
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Figure 1. The chemical structures of the primary constituents exhibiting vascular activity in Danshen-Shanzha Formula (DSF). The different shades of orange from top to bottom represent the phenylpropionic acids (orange) and tanshinones (light orange) in Danshen. The different shades of green from top to bottom represent the flavonoids (green), tritieric acid (pale green) and phenylpropionic and organic acids (light green) in Shanzha. The asterisk (*) denotes the presence of the constituent in Shanzha as well, the number sign (#) denotes the presence of the constituent in Danshen as well.

4.2 Chemical constituents in Shanzha

In the last decade, approximately two hundred phytochemical compounds containing flavonoids, steroids, triterpenoids, lignans, phenylpropanoids and their glycosides, as well as other constituents such as organic acids and nitrogenous chemicals, were isolated and characterized from Shanzha (SZ), the fruit of Crataegus pinnatifida (Zhang et al., 2020). Among these compounds, flavonoids and organic acids, such as luteolin, vitexin, hyperoside, catechin, rutin, epicatechin and citric acid have been considered major bioactive components of SZ due to their diverse pharmacological properties. These compounds exhibited a wide range of therapeutic activities with low toxicity in vitro and in vivo (Orhan, 2018). For a comprehensive understanding of the current known structural characteristics of SZ compounds, readers are encouraged to refer to Li et al. (2023). In the present review, we just highlighted the frequent constituents (Table 1) and primary chemicals of SZ which implicated in its atherosclerotic protection (Figure 1).

4.3 Chemical constituents in DSF

We have synthesized the literature to compile a total of 84 major chemical constituents of Danshen-Shanzha Formula (DSF), as presented in Table 1 and Figure 2. Among these, there are seven components that are shared by both herbs, namely, protocatechuic acid, chlorogenic acid, caffeic acid, ferulic acid, maslinic acid, ursolic acid, and oleanolic acid. However, in most cases, the synergistic effect of a pair of herbs is unlikely to be achieved by simply mixing the chemicals from the two separate one. The composition, dissolution rate and content of chemical ingredients in herb pairs after co-decoction may differ from those of the individual decocted herbs (Wang et al., 2012). As of now, information on the overall chemical profiles of DSF remain limited. Focusing on constituents of the compatibility of each single-herb, some of the work have been conducted on the bioactive materials of DSF currently. Research has revealed that proanthocyanidin B2, salvianolic acid B, and tanshinone IIA are the active ingredients responsible for the anti-atherosclerotic effect in DSF (Pang et al., 2018). By using the HPLC tandem DAD technique, 5 components of DS (salvianolic acid A, salvianolic acid B, lithospermic acid, rosmarinic acid and danshensu) and 5 components of SZ (isoquercetin, epicatechin, proanthocyanidin B2, hyperoside and 3-caffeoylquinic acid) were obtained and identified by a fingerprint method in water decoction of DSF (Zhang et al., 2013b). On the other hand, 3 types of tanshinones (tanshinone I, tanshinone IIA and cryptotanshinone) and 2 types of triterpenic acid (oleanolic acid and ursolic acid) were detected and identified in ethanol-soluble extractives of DSF. Meanwhile, 21 different kinds of structure in DSF decoction (N-hexacosane, N-hexadecanoic acid, betulin, betulinic acid, uvaol, β-sitosterol, 4,5,4′,5′-tetrahydroxy-1,2-diphenyl ether, benzenepropanoic acid and salvianolic acid B, etc.) were reported by utilizing the GC-MS and LC-MS technique in earlier research of the chemical constituents. During the same period, several studies have shown that the total phenolic acids and triterpenoic acids of DSF extracts could inhibit the formation of hyperlipidemia as well as interfere with the formation of atherosclerosis in rats, which have been marked as the main chemical components of DSF for anti-oxidative and hypolipidemic effects (Chen et al., 2013). In addition, with an HPLC-based analytical approach and assays to determine antioxidant capabilities, salvianolic acid B was found to exert the primary anti-oxidative effect in the phenolic compounds of the herb pair (Yilmaz et al., 2022).

Figure 2
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Figure 2. Venn diagram summary of the main chemical constituents identified from Danshen-Shanzha Formula (DSF).

Notably, study of Zhang et al. showed that the level of hydrophilic phenolic acid components (such as salvianolic acid A, salvianolic acid B, lithospermic acid and rosmarinic acid, etc.) were significantly higher in DSF decoction comparing with the individual decoction of DS, while contents of proanthocyanidins and epicatechin were considerably lower than the individual decoction of SZ, presumably the compatibility of DS and SZ contributed to the solubilization of phenolic acid components in DS (Zhang et al., 2013a; Zhang et al., 2013b). Such studies could benefit for elucidating the material foundation and rationality of compatibility art of DSF, especially similar comparative studies conducted in vivo, however only a few works have been undertaken thus far.

5 Pharmacokinetic properties

Some studies about the pharmacokinetics of the single use of DS or SZ have been reported (Qu et al., 2020; Sun et al., 2022). However, research focusing on the active components and their pharmacokinetics after administration of DSF remain limited. Until now, only Liu et al. (2014) reported the pharmacokinetic behavior after the oral dosing of the combination of DS and SZ extracts. They developed a liquid chromatographic method which could simultaneously determine five active components, namely, salvianolic acid B, danshensu, hyperoside, rosmarinic acid and lithospermic acid, in the plasma of rat after oral dose of DSF. Compared to the concentration-time profiles of each components following oral dosage of the single herb and DSF to rats, all five components exhibited a short Tmax and were rapidly absorbed in vivo after oral administrated the single herb, whereas Tmax of rosmarinic acid and hyperoside were found to be shorter after dosing DSF. Besides, the Cmax of the above five components after administration of DSF was 1.6, 2.6, 2.6, 1, and 1.7 times compared with dosing of single herb, which implied the combination of DS and SZ could quicken and enhance the absorption of their ingredients. In addition, AUCs of danshensu, rosmarinic acid, lithospermic acid, salvianolic acid B and hyperoside were elevated after oral administration of DSF, which were 4.44, 4.25, 27.3, 56.5, and 5.24 mg·h/L, respectively, whereas dosing of single herbals were 3.65, 2.09, 6.49, 38.2, and 3.84 mg·h/L, respectively (Table 2). These findings revealed significant differences in pharmacokinetics over the individual herbal and the combined use of DS and SZ. A combination of DS and SZ have the potential to improve the bioavailability and prolong the elimination of their active components in rat.

Table 2
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Table 2. Pharmacokinetic parameters of five primary constituents of Danshen-Shanzha Formula (DSF) after oral administration of 8.4 g/kg DSF or single herb extract (6 g/kg for Danshen extract, 2.4 g/kg for Shanzha extract) in rats.

6 Pharmacological effects

Atherosclerosis (AS) is a chronic inflammatory diseases based on lipid metabolism disorders, affecting the blood arteries, and serves as the primary pathologic foundation for ischemic cardiovascular, cerebralvascular and peripheral vascular disorders, such as myocardial infarction, stroke, and arteriovenous thrombosis (Wu Q. et al., 2023). It represents a condition characterized by arterial narrowing and loss of arterial wall elasticity, resulting from the excessive accumulation of viscous plaque in the intima of arteries. Notably, DSF holds a prominent position as a classic representative in the realm of therapeutic theories and herbal formulas for the aforementioned disease condition within TCM. For the past few years, DSF-based preparations have been widely used for the treatment of atherosclerosis and have been important in terms of both pharmacological effects and clinical effects due to associated vascular lesions (Zhang, J. et al., 2019). Therefore, the pharmacological actions of DSF and/or its active components have been further reviewed and discussed for the aspects as follows (Figure 3 and Table 3).

Figure 3
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Figure 3. The primary pharmacological effects of Danshen-Shanzha Formula (DSF) on atherosclerosis. Image was created with BioRender.com. ABCA1, ATP-binding cassette transporter A1; AMPK, AMP-activated protein kinase; Akt, v-Akt Murine Thymoma Viral Oncogene; AS, atherosclerosis; ATG16L1, Autophagy Related Protein 16 Like Protein 1; COX-2, Cyclooxygenase-2; cAMP/Epac/Rap1, Cyclic adenosine monophosphate/exchange protein directly activated by cAMP/repressor activator protein 1; CDK6, Cyclin-dependent kinase 6; hs-CRP, hypersensitive C-reactive protein; IGF-1R/PI3K, insulin-like growth factor 1 receptor/phosphatidylinositol 3-kinase; IL-17, Interleukin-17; JAK2, Janus kinase 2; MAPK, Mitogen-activated protein kinase; mTOR, Mammalian Target of Rapamycin; NLRP, Nucleotide oligomerization domain-like receptor protein; NF-κB, Nuclear Factor-κB; Nox4, Nicotinamide adenine dinucleotide phosphate oxidase 4; P21, Cyclin-dependent kinase inhibitor 1; PLC/PKC, phospholipase C/protein kinase C; PKM2/β-catenin/TCF4, pyruvate kinase isoform M2/β-catenin/T cell factor 4; RhoA, Ras homolog gene family member A; SIRT1, silent information regulator sirtuin 1; STAT3, Signal transducer and activator of transcription 3; TFEB, Transcription factor EB; TLR4, Toll-like receptor 4; TNF-α, Tumour Necrosis Factor alpha; TPM1, tropomyosin 1.

Table 3
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Table 3. Studies regarding the pharmacological effects of the active constituents or extract from Danshen-Shanzha Formula (DSF).

6.1 Vascular actions

The primary pathological changes involve impairment of vascular endothelial cells and excessive lipid accumulation in the walls of blood vessels. It has been proven that various disruptions in vascular homeostasis occur during the onset of atherosclerosis, such as abnormal proliferation or death of endothelial and smooth muscle cells, whereas several studies have revealed the beneficial effects of both quinones and phenylpropanoids from DSF in preserving vascular homeostasis. Tanshinone I, a lipophilic o-phenanthrenequinone compound from DS, was found to inhibit cell proliferation, migration, tube formation, and vessel sprouting in basal and Ang II-stimulated vascular smooth muscle cells (Wu et al., 2019). Dihydrotanshinone I, one of another active ingredients of DS, was demonstrated to stabilize vulnerable AS plaques through the suppression for RIP3-mediated necroptosis of macrophages (Zhao et al., 2021). Tanshinone IIA has the potential to substantially inhibit the proliferation as well as the migration of vascular smooth muscle cells (VSMCs) (Jia S. et al., 2019). Cryptotanshinone has been found to exhibit considerable anti-atherosclerotic activity, as it significantly attenuates atherosclerotic plaques formation as well as improves plaque stability in ApoE−/− mice through regulating the expression of LOX-1 and MMP-9, along with the inhibition of generated ROS and activated NF-κB signalling (Liu et al., 2015). Long-term administration of danshensu has been found to have the potential to prevent or attenuate the development of atherosclerosis. This effect may be attributed to the suppression of pro-inflammatory cytokine and adhesion factors in the arterial endothelial cells, as well as alterations in homocysteine levels and circulating molecules that regulate vascular contraction and relaxation through endothelial cells, such as NO and endothelin (Yang et al., 2010). The vascular endothelial permeability is regarded as an early indicator of vascular injury and one of the pivotal factors contributing to the development of atherosclerotic disease. The dried extract of Shanzha, known as WS®1442, demonstrated efficacy in ameliorating endothelial hyperpermeability and preventing endothelial dysfunction by augmenting crucial factors such as adhesive junctions, actin cytoskeleton, and cell contractile apparatus in human umbilical vein endothelial cells (HUVECs), where the mechanism is potentially attributed to the inhibition of the calcium/PKC/Rho signaling responsible for barrier instability and activation of the cAMP/Epac1/Rap1 signaling related to barrier-stability (Bubik et al., 2012). Shanzha extract also exhibits both anti-atherosclerotic properties and stabilizing effects on unstable plaques. The underlying mechanisms may involve modulation of inflammatory and apoptotic signaling pathways (Wang et al., 2019). Furthermore, Zhang et al. (2016) observed a significant alleviation of ox-LDL-induced damage in HUVEC and RAW264.7 cells upon administration of SC121, a kind extract of DSF, demonstrating a dose-dependent reduction in reactive oxygen species levels and foam cell formation. These findings suggest that DSF possesses the capability to inhibit endothelial cell damage and attenuate oxidative stress. DSF was also demonstrated to be able to protect endothelial functions by regulate multiple signaling, including estrogen signaling system, ErbB signaling, VEGF signaling, along with FoxO signaling. By using DSF aqueous decoction, NO and 6-keto-prostaglandin F1α levels were elevated in rat serum, whereas endothelin along with TXB2 levels were found to be lowered, suggesting that endothelium protection could be one of the role by which DSF plays in its anti-atherosclerotic mechanisms (Zhang et al., 2019). Besides, several preparations containing DSF as the core of their foundation have also demonstrated notable vaso-protective properties, such as Baoyuan Huoluo Prescription (Xu et al., 2022) and Yirui capsule (Dai et al., 2016). The inclusion of DSF as foundational herbs in these preparations underscores the growing research emphasis on harnessing the therapeutic properties of this formula for the preservation of vascular health. However, with regards to these DSF-containing preparations, it is now imperative to primarily focus on elucidating the precise mechanism underlying their vascular protective effects and assessing their long-term efficacy.

6.2 Anti-hyperlipidemic actions

Dyslipidemia is another indicator of risk for atherosclerotic and associated cardiovascular disorders, whereas several studies have shown the benefits of DS and SZ extracts for the regulation of lipid level in human body (Liu et al., 2022b; Li, 2023). DSF was demonstrated to alleviate atherosclerotic symptoms in dyslipidemia rat induced by vitamin D3 stimulation plus high-fat-diet-fed, as it could lower serum steroid indices including total cholesterols, triglycerides as well as low-density lipoprotein cholesterols, whereas elevating high-density lipoprotein cholesterols level (Zhang et al., 2013a; Zhang et al., 2013b; Zhang, 2013). Tanshinone IIA, one of the primary constitutes of DS, has been demonstrated to promote macrophage cholesterol efflux through the omentin-1/ABCA1 signaling, thereby preventing atherosclerotic conditions in apoE−/− mice (Tan et al., 2019). Cryptotanshinone, another important lipophilic ingredient of DS, exerted anti-adipogenic effects through regulating STAT3 in the early stages of adipogenesis (Rahman et al., 2016). Salvianolic acid B, the major hydrophilic constituent of DS, exhibits anti-hyperlipidemic effect by reducing blood triglyceride and free fatty acid levels, while also modulating the expression profiles of mRNA, circRNA, and lncRNA in high-fat diet-induced obesity and dyslipidemia, respectively (Huang et al., 2016; An et al., 2019). Similarly, Sal A enhances browning of white adipose tissue in male mice fed with high-fat diet and in cultured adipocytes, suggesting its potential as another hydrophilic component of DS for the treatment and/or prevention of obesity (Lai et al., 2021). Additionally, the flavonoids of SZ have attracted great research interests due to their potential to treat dyslipidemia, obesity and atherosclerosis by inhibiting the enzyme acyl-coA cholesterol acyltransferase, thereby reducing the level of very low density lipoprotein and low density lipoprotein cholesterol to reduce atherosclerotic lesion areas (Dehghani et al., 2019; Gu et al., 2023). Zeng et al. (2021) found that n-butanol and ethyl acetate extracts of SZ, with the primary ingredients such as chlorogenic acid, hyperoside, isoquercitrin, rutin, vitexin and quercetin, exhibited excellent efficacy on hyperlipidemia rats, influenced the metabolic alterations of adipose tissue, and restored the metabolic abnormality in plasma via modifying bio-oxidation, along with energy, amino acid, as well as lipid metabolism pathways. Collectively, accumulating evidence supports the notion that DSF possesses the potential to ameliorate hyperlipidemia. However, due to variations in dosage, animal models, treatment duration, and administration routes, it remains challenging to evaluate the constituents involved in lipid level regulation. Furthermore, despite significant progress in in vivo studies, further investigation into the anti-hyperlipidemic effects of DSF and its active components, as well as elucidation of underlying mechanisms, is necessary using experimental models that more closely resemble humans and clinical settings.

6.3 Anti-inflammatory actions

Atherosclerosis-associated inflammations is mediated through proinflammatory cytokines, inflammatory signaling, as well as bioactive lipids and adhesion molecules (Zhu et al., 2018). Active ingredients of DSF have been reported to act as regulators on the expressions of several genes involved in anti-inflammation processes. Salvia miltiorrhiza aqueous extract was demonstrated to exert the preventive effect to the occurrence of early atherosclerosis by reducing blood lipids as well as suppressing inflammatory responses through TLR4/NF-κB signalings (Wu et al., 2023). The preventive benefits of Sal A against early atherosclerosis have also been demonstrated by Ma et al. They conducted a study to investigate the role of Sal A in male ZDF rats with metabolic dysfunctions induced by a high-fat diet and vitamin D3 injection. The study found that supplementing with Sal A significantly reduced disruptions, leading to a substantial decrease in blood cholesterol, low-density lipoprotein, and triglyceride levels. These findings suggest that Sal A may play a crucial role in maintaining cardiovascular health by reducing risk factors associated with early atherosclerosis. Another notable finding of this study was the observed decrease in serum hs-CRP levels with Sal A administration. Elevated hs-CRP levels indicate inflammation and are biomarkers for chronic diseases, including cardiovascular disease and diabetes-related complications. The ability of Sal A to reduce hs-CRP suggests its potential anti-inflammatory properties, which may contribute to improved overall health outcomes. The protective action exhibited by Sal A against metabolic dysfunctions is believed to be attributed to its inhibition of NLRP3 inflammatory cytokines activation along with NF-κB signal pathways modulation (Ma et al., 2020). Salvianolic acid B, as another primary hydrophilic components of DS, has been reported to reduce inflammatory cytokine levels as well as attenuate the phosphorylation of MAPK/NF-κB signalings in RAW264.7 cells triggered by oxidized low-density lipoprotein/lipopolysaccharide, and thereby exhibit anti-inflammatory consequences against atherosclerosis in vitro and in vivo (Zhang et al., 2022). Meanwhile, it has been demonstrated that the lipophilic components of DS (tanshinones) possess anti-inflammatory activities that considerably reduce levels of TNF-α, IL-1β as well as IL-8 in tohoku hospital pediatrics-1 (THP-1) macrophages stimulated by lipopolysaccharide (Ma et al., 2016). According to Liu et al. (2021) study, cryptotanshinone was proven to be a selective agonist of NLRP3 inflammasome, thus inhibiting the activation of caspase-1 as well as the formation of IL-1β in animal model of NLRP3 inflammasome-mediated disorders. Similarly, tanshinone IIA has also been shown to suppress the activated NLRP3 inflammasomes in high-fat diet fed ApoE−/− mice (Wen et al., 2021), and inhibit the secretion of inflammatory mediators like C-reactive protein, TNF-α, oxidized low-density lipoprotein as well as IL-1β in serum of apolipoprotein E knockout mice (Xuan et al., 2017), thereby alleviating processes of atherosclerosis. A recent study also demonstrated that tanshinone ⅡA could attenuate the buildup of plaque and the accumulation of lipids as well as reduced vascular inflammatory cytokines levels in both ApoE knocked out mice and oxidized low-density lipoprotein-stimulated HUVECs, while these protective effects may partly associate with the regulation of COX-2/TNF-α/NF-κB signal pathways (Ma et al., 2023). On the other hand, the polyphenol extracts of SZ alleviated high glucose-induced inflammatory, oxidative as well as apoptotic damages in ARPE-19 cells through the regulation of AMPK/SIRT1/NF-κB pathway along with the suppression of miR-34a/SIRT1/p53 signaling axis (Liu et al., 2021). In addition, Li et al. (2021) have found that inflammatory lesion of the high-fat diet treated ApoE−/− mouse are triggered by Gal-3 activation of the NLRP3 inflammasomes, which serves as a potential site for quercetins that exerts advantageous anti-atherogenic actions, whereas indicating an potential path for preventing and treating atherosclerosis by natural-derived quercetins. Also, hyperoside, a quercetin derived glycosides of SZ, has been shown to inhibit TNF α-mediated vascular inflammation in MOVAS-1 cell lines by the downregulation of MAPKs-NF-κB signal axis (Jang et al., 2018). In addition to the aforementioned signaling pathways, further investigation is warranted to explore the potential of DSF in modulating other crucial anti-inflammatory mechanisms associated with atherosclerosis. For instance, studies could focus on the impact of DSF on monocyte/macrophage polarization towards an anti-inflammatory M2 phenotype and its influence on T-cell differentiation or regulatory T cell function during atherogenesis. Moreover, the identification of specific active components within DSF that are related to the observed anti-inflammatory activities could enhance our understanding of its therapeutic potential against inflammation associated with atherosclerosis. Isolating and characterizing these compounds could also pave the way for developing targeted therapies or novel drug candidates.

6.4 Anti-apoptosis and autophagy promoting actions

Progressive apoptosis are the major events that occur during processes of atherosclerosis (Sun et al., 2021). Vascular endothelial cells that undergo excessive apoptosis will lose their integrity and thus triggers the release of several cell adhesion molecules, resulting in the promotion for the conversion of monocytes into macrophages and further into foam cells, which in turn stimulates the proliferation of smooth muscle cells and the ultimate development of atherosclerotic plaques. On the other hand, it is well accepted that mild activated autophagy could minimize oxidative injure, inflammatory damage, and lipid buildup, as well as prolong the time for the formation of plaques during atherosclerotic plaque development. Hence, regulating apoptosis and autophagy could be an effective approach for preventing or delaying atherosclerosis (Zhou et al., 2023). DS extracts have been observed to promote autophagy as well as prevent senescence in both human umbilical vein and aortic endothelial cell lines, where it could activate the AMPK signaling and its anti-aging benefits are abolished when AMPKα is suppressed. Also, it has been shown that DS extracts exhibit the activities to trigger autophagy which were exert by LC3 transformations and p62 degradations, decrease the release of pro-inflammatory cytokines in the blood and thus mitigated the degeneration of the aorta in atherosclerosis mouse models, all the actions helped to lower the incidence of atherosclerotic plaques (Ko et al., 2020; Liu et al., 2023). In order to investigate the potential association between Sal B and autophagy as well as apoptosis, Sun et al. established a macrophage model of atherosclerosis induced by cholesterol crystals. They subsequently demonstrated that treatment with Sal B significantly augmented autophagy impairments in macrophages, attenuated the rate of macrophage apoptosis, and inhibited the accumulation of proinflammatory factors secreted by injured macrophages. These effects were mediated through regulation of the Akt/mTOR signaling pathway (Sun et al., 2021). In fact, both phenylpropionic acids and their polymers in DSF possess potential as regulators of apoptosis and/or autophagy, potentially attributed to the presence of polyhydroxyl groups within their molecular structures. Furthermore, a recent study has demonstrated that Tanshinone IIA effectively mitigates atherosclerosis by attenuating lipid accumulation and promoting autophagy in ApoE−/− mice fed with a high-fat diet. The underlying mechanisms may involve the regulation of the miR-214-3p/ATG16L1 axis, thereby facilitating MAPK/mTOR signal-mediated autophagy to alleviate AS (Qian et al., 2023). In contrast to the promotion of autophagy, the inhibitory effect on excessive activation of autophagy was also observed in rats treated with salvianolate 3 days after ischemia/reperfusion (Yang et al., 2021). Besides, similar pharmacological activities were also demonstrated in SZ, another composed herb of the DSF formula, with the results of a recent systemic pharmacology study suggesting that the flavonoids and their glycosides in SZ may have potential regulatory effects on oxidative stress-induced apoptosis and autophagy, and these effects are mediated through multiple targets and pathways (Huang et al., 2023). In corroboration, previous research has confirmed the efficacy of quercetin in inhibiting the production of foam cells triggered by oxidized low-density lipoprotein and delaying senescence. It is speculated that the mechanism of action could be associated with the regulatory effect for mammalian sterile 20-like kinase 1 mediated autophagy in Raw264.7 cells (Cao et al., 2019a). Furthermore, the attenuation on atherogenesis by quercetin that linked with the enhancement of autophagy have also been proved in ApoE−/− mice, as seen by the activated expression of P21 as well as P53 (Cao et al., 2019b). Hypericin, also a flavonoid glycolide derived from SZ, has been shown to play a cardioprotective role by activating autophagy and inhibiting the NLRP1 inflammatory pathway, which improves myocardial hypertrophy and fibrinogen deposition after myocardial infarction in mice (Yang et al., 2021). Additionally, hypericin induces lipophagy, a specific form of autophagy that facilitates the degradation of lipid droplets, and partial inhibition of autophagy results in reduced expression of uncoupling protein 1 (Cheng et al., 2023). Ultimately, the significant clinical implications of these findings warrant further investigation. If subsequent preclinical trials validate the safety and efficacy profile of DSF-containing preparations or compounds derived from DSF as observed in the aforementioned study, they have the potential to emerge as an innovative pharmaceutical for atherosclerosis treatment. The anti-apoptotic properties of DSF could prevent cell death within arterial walls, while its ability to promote autophagy may assist in clearing lipid deposits responsible for plaque formation. However, it is important to note that additional research is required to fully elucidate the mechanisms underlying DSF’s effects on apoptosis and autophagy regulation.

6.5 Cardiac protective actions

Acute coronary artery occlusion is often associated with atherosclerosis and plaque rupture, leading to myocardial ischemia or even infarction (Mehta et al., 2022). An enormous number of laboratory and clinic studies have shown that a series of formulas based on the DSF can improve cardiac function and morphology after acute myocardial infarction, indicating a promising myocardial protective effect of DSF (Lv et al., 2022; Sun and Zhang, 2022; Xu et al., 2022). Several studies have demonstrated that DS (either as a prodrug or as the formulation) has a beneficial effect on the heart during the pathological process of atherosclerosis both at progression stage and acute exacerbation stage (Liu et al., 2022c). It has been established that tanshinone IIA considerably ameliorate the myocardial fibrosis and cardiac dysfunction brought on by post-infarction heart failure in rats. As observed in the experiment that significant reductions in the expression of collagen families, MMP families, TGF-β and α-SMA both in the hearts of infarcted rats and Ang II-triggered cardiac fibroblasts cultured in vitro after tanshinone IIA intervention, whereas the mechanism may partly attributed to the modulation of nox4 signalling (Chen et al., 2021). Tanshinone IIA has also been implicated in myocardial protection through anti-inflammatory, anti-apoptotic, and anti-angiogenic effects in some other studies (Wu et al., 2019). Protocatechuic aldehyde, one of the most important hydrosoluble phenylpropanoic acid ingredients of DS, prevents ISO-induced myocardial infarction and cardiac hypertrophy by modulating β-catenin/TCF4 and JAK2/STAT3 signal cascades, respectively, which implies that it plays an important role in the cardioprotective actions of DS and its related fomulations (Fang et al., 2018; Wu et al., 2021). The protective effects of salvianolate on cardiomyocyte remodeling after myocardial infarction have also been reported, with the mechanism involving regulation of the calcineurin/nuclear factor C3 pathway in activated T cells and B-myosin heavy chain (Chen et al., 2022). Quercetin, as an important flavonoid component in SZ, has always received attention in the research area of cardiovascular disease prevention. In recent years, quercetin has been demonstrated to have cardioprotective properties via a variety of approaches, including anti-oxidative stress, anti-inflammation, and anti-apoptosis. Furthermore, quercetin is capable of regulating myocardial electrophysiological processes such as endothelin-1 receptor inhibition, NO stimulation improvement, large conductance calcium-activated potassium channels activation, and antagonism of Ca2+ overload, etc., to induce vasodilation effects and thus exerting an myocardial protective role (Zhang et al., 2020). In addition, study of Ao et al. indicated that phenylpropionic acids, triterpenic acids, tannins, along with flavonoids might be the chemical underpinnings of SZ for the protection of ischemic heart (Ao et al., 2020).

6.6 Cerebral protective actions

Ischemic stroke is a kind of acute cerebrovascular disorder resulting from blood vessel rupture or occlusion. To reduce the risk of stroke, it is important to consider the state of blood coagulation as well as vascular protection (Carlin et al., 2022). The protective effect of DSF on cerebrum has been clearly demonstrated in a rat model of cerebral infarction. As evidenced by the elevated levels of blood perfusion, serum tissue plasminogen activator as well as 6-keto-PGF1α, and the reduced protein expression levels of vascular cell adhesion factors such as ICAM-1 along with VCAM-1, in focal cerebral infracted rats treated with DSF plus with swimming exercise. The above findings of Ding et al. indicate that DSF treatment combined with swimming may protect against focal cerebral infarction by regulating the interactions involving endothelial function and inflammatory cytokines, whereas it further implies a promising role and potential application for the use of DSF-related preparations combined with exercise in the prevention and treatment of thrombosis (Ding et al., 2020). Both DS and SZ serve as important role in the cerebroprotective effects of DSF, as several previous studies revealed that salvia quinones and phenylpropionic acids, along with hawthorn flavonoids are all contribute to the protective actions against ischemic stroke. In a study conducted by Fei et al. (2017), it was demonstrated that tanshinones extracts had the potential to reduce the risk of thrombotic events and platelet aggregation through activating the PLC/PKC signaling axis, thereby alleviating permanent middle cerebral artery occlusion-induced cerebral ischemia in rats. According to Liu et al. (2021)’s work, increased cell viability and inhibition for the degradation of tight junction proteins were observed in human brain microvascular endothelial cells with OGD injure after treatment of salvianolic acid A. They also found that salvianolic acid A blocked the activation of the Src signaling pathway in vivo and in vitro, as well as reversed the elevated levels of matrix metalloproteinases subsequent to a cerebral ischemia, and thus speculating salvianolic acid A may be one of the potential therapeutic basis of DS for the prevention of ischemic stroke. Furthermore, vitexin pretreatment substantially alleviated neurological impairment, decreased cerebral infarct volume, and mitigated neuronal damage thus protecting the brain from cerebral I/R injury, and this effect may be mediated by mitogen-activated apoptotic signaling (Min et al., 2017).

Overall, the traditional therapeutic system of TCM, in contrast to western medicine, is founded upon centuries of clinical practice and provides a robust basis for pharmacological research of TCM formula. However, the complexity of herbal formula presents a challenge in identifying its specific chemical components that mediate activation and subsequent affected node in the pathophysiological process. Given that multiple compounds within herbal formulas may exert distinct roles in pathophysiology by activating or inhibiting various targets, some of which might even counteract therapeutic outcomes, a potential solution lies in simplifying the formula to enhance targeting and specificity for specific diseases. In recent years, researchers have been exploring a novel approach to elucidate the pharmacological mechanism of TCM as well as develop innovative formulas known as “component-based Chinese medicine” (Zhang et al., 2015). This approach involves substituting the primary formula with a combination of multiple active components in the form of a new type of TCM formula. The resulting formula exhibits typical chemical, pharmacological, and pharmacokinetic characteristics due to its well-defined chemical composition, while still adhering to the theoretical principles of TCM prescriptions (Wang et al., 2008; Qi et al., 2019).

7 Conclusion and prospects

As per the review presented herein, we provided a referential basis for exploring the use of Radix Salvia miltiorrhiza and Fructus Crataegi as a Chinese herb pair formula (Danshen-Shanzha Formula) for treating cardiovascular diseases associated with atherosclerosis by summarizing the comprehensive information about this formula. The Danshen-Shanzha Formula (DSF), a well-established herb pair and herbal formula in traditional Chinese medicine systems, has long held significant importance. Phenylpropanoids, polysaccharides, triterpenic acid, organic acids, flavonoids and their derivatives are proposed to be the primary bioactive components of DSF. This formula exhibits significant clinical effects on atherosclerosis, based on the TCM concept of promoting blood circulation and removing blood stasis with strengthening stomach function and eliminating turbidity, which can be exerted significant therapeutic effects even at the chronic stage of atherosclerosis with less side-effect. Therefore, DSF holds great potential to be developed as an innovative modern formulation to obtain superior remedies that have both high safety and effectiveness for the treatment of atherosclerosis.

However, in order to further develop DSF as innovative therapeutic agents for atherosclerosis and shed light on the compositive principle and action features of DSF, a number of obstacles arising from common TCM concerns have to be overcome. Firstly, the standard preparation method for DSF has to be developed, unified and followed as to achieve optimized pharmacological properties. And also, the successful development of standardized preparation of DSF holds great importance in its transformation into a commercially viable product that adheres to the international standards. In terms of developing DSF as a standardized decoction, several crucial technical challenges urgently need to be standardized and unified. These challenges include the establishment of a standardized preparation procedure and quality control measures for the decoction of DSF, the insurance for the consistency between the quality and efficacy evaluation of standardized DSF decoction, and the quantity marker value transmission of quality marker in individual herbs, decoction pieces and standard decoctions, etc (Chi et al., 2019). In addition, the combinational use of DS and SZ was deemed to be the main reason for the increased pharmacological effects of DSF. Despite TCM theory’s illustrations of the art of their compatibility, whereby DS and SZ would be attributed to activating blood circulation and reducing lipids, respectively, their compatibility mechanism remains currently seldom revealed. Thus, by employing the modern biological techniques and pharmacological approaches, studies focusing on clinic syndromes together with the subsequent development of preclinic study system in vitro and in vivo with consistent pathological features, pharmacokinetical behaviour and biomarkers are expected to elucidate the functional mechanisms as well as the rationality and rule for the compatibility art, such as potentiation and assistance in the prescriptions of herb pairs, and also to further reveal the concepts like “remove blood stasis” and “detoxifying” in TCM theories (Qi et al., 2019; Guo et al., 2023). Moreover, despite centuries of application, it is critical to perform more extensive clinical studies towards the advancement of mechanism-based on evidence-based medicine on the safety application of DSF, which will provide more comprehensive scientific and authoritative evidence regarding the effectiveness of this herbal formula (Zeng X. et al., 2021).

In conclusion, DSF is a representative of TCM herb pair for the treatment of atherosclerotic diseases, however there are some drawbacks. Future research should concentrate on the improvement of quality control, the elucidation of functional mechanisms, as along with the reconfirmation of clinical effectiveness and safety.

Author contributions

QX: Data curation, Writing–original draft. ZY: Data curation, Formal Analysis, Resources, Writing–review and editing, Funding acquisition. MZ: Data curation, Resources, Writing–review and editing. TF: Conceptualization, Resources, Writing–original draft, Funding acquisition. FS: Validation, Writing–review and editing. HT: Supervision, Writing–review and editing. SW: Supervision, Writing–review and editing. HL: Conceptualization, Supervision, Writing–original draft, Writing–review and editing, Funding acquisition, Validation, Visualization.

Funding

The author(s) declare financial support was received for the research, authorship, and/or publication of this article. This work was supported by the National Natural Science Foundation of China (No. 81703737), Key Research and Development Project of Shaanxi Province (No. 2023-ZDLSF-57, 2023-YBSF-504, 2022SF-253 and 2022SF-298) and Innovation Capability Support Program of Shaanxi (No. 2020TD-041).

Conflict of interest

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

The author(s) declared that they were an editorial board member of Frontiers, at the time of submission. This had no impact on the peer review process and the final decision.

Publisher’s note

All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.

Abbreviations

APN, Adiponectin; ADME, Absorption, Distribution, Metabolism and Excretion; AS, Atherosclerosis; AUC, Area Under Curve; CNKI, China National Knowledge Infrastructure; DSF, Danshen-Shanzha Formula; DS, Danshen; SZ, Shanzha; DSHP, Danshen and Shanzha herb pair; ErbB, Erythroblastic Oncogene B; ET, Endothelin; EGFR, Epidermal Growth Factor Receptor; HPLC-PDA, High Performance Liquid Chromatography with Photodiode Array detector; HPLC-UV, High Performance Liquid Chromatography with Ultraviolet detector; ICAM-1, Intercellular Cell Adhesion Molecule-1; IL, Interleukin; IMT, Intima-Media Thickness; LOX-1, ectin-like oxLDL receptor-1; NO, nitric oxide; ROS, reactive oxygen species; STAT3, signal transducer and activator of transcription 3; TCM, Traditional Chinese Medicine; TNF, Tumor Necrosis Factor; TXB2, thromboxane B2; VEGF, Vascular Endothelial Growth Factor; VCAM-1, Vascular Cell Adhesion Molecule-1; ZDF rat, zucker diabetic fatty rat.

References

Ai, C., Zou, Y., Liu, H., Yang, Z., and Xi, J. (2023). Traditional Chinese herbal medicine for allergic diseases: a review. Am. J. Chin. Med. 51 (4), 779–806. doi:10.1142/S0192415X23500374

PubMed Abstract | CrossRef Full Text | Google Scholar

An, T., Zhang, J., Lv, B. H., Liu, Y. F., Huang, J. P. H., Lian, J., et al. (2019). Salvianolic acid B plays an anti-obesity role in high fat diet-induced obese mice by regulating the expression of mRNA, circRNA, and lncRNA. Peerj 7, e6506. doi:10.7717/peerj.6506

PubMed Abstract | CrossRef Full Text | Google Scholar

Anonymous (2019). It is recommended that cardiovascular patients consume Danshen hawthorn tea on a regular basis. Jiangsu J. Health Care 12, 19.

Google Scholar

Ao, N., Qu, Y., Deng, Y., Cai, Q., Suo, T., and Zheng, Y. (2020). Chemical basis of hawthorn processed with honey protecting against myocardial ischaemia. Food Funct. 11 (4), 3134–3143. doi:10.1039/c9fo02406a

PubMed Abstract | CrossRef Full Text | Google Scholar

Bao, F. W., Liu, Y. Q., Zhang, Z. Q., Hu, L. P., and Liu, W. (2013). HPLC Determination of six Ingredients in hawthorn and salvia miltiorrhiza extracts. Chin. J. Exp. Traditional Med. Formulae 19 (11), 82–85. doi:10.11653/syfj2013110082

CrossRef Full Text | Google Scholar

Bi, F. F., Tan, Y. T., and Liu, Q. J. (2015). Influences of "Xiaoyu Jiangzhi Capsule" on liver and kidney functions in healthy subjects. Shanghai J. Tradit. Chin. Med. 49 (06), 42–44. doi:10.16305/j.1007-1334.2015.06.015

CrossRef Full Text | Google Scholar

Bubik, M. F., Willer, E. A., Bihari, P., Jürgenliemk, G., Ammer, H., Krombach, F., et al. (2012). A novel approach to prevent endothelial hyperpermeability: the Crataegus extract WS® 1442 targets the cAMP/Rap1 pathway. J. Mol. Cell Cardiol. 52 (1), 196–205. doi:10.1016/j.yjmcc.2011.10.020

PubMed Abstract | CrossRef Full Text | Google Scholar

Cao, H., Jia, Q. L., Shen, D. Z., Yan, L., Chen, C., and Xing, S. L. (2019b). Quercetin has a protective effect on atherosclerosis via enhancement of autophagy in ApoE(-/-) mice. Exp. Ther. Med. 18 (4), 2451–2458. doi:10.3892/etm.2019.7851

PubMed Abstract | CrossRef Full Text | Google Scholar

Cao, H., Jia, Q. L., Yan, L., Chen, C., Xing, S. L., and Shen, D. Z. (2019a). Quercetin suppresses the progression of atherosclerosis by regulating MST1-mediated autophagy in ox-LDL-induced RAW264.7 macrophage foam cells. Int. J. Mol. Sci. 20 (23), 6093. doi:10.3390/ijms20236093

PubMed Abstract | CrossRef Full Text | Google Scholar

Carlin, S., de Vries, T. A. C., Budaj, A., and Eikelboom, J. (2022). Dual pathway inhibition for atherosclerotic cardiovascular disease: recent advances. Kardiol. Pol. 80 (12), 1200–1210. doi:10.33963/KP.a2022.0283

PubMed Abstract | CrossRef Full Text | Google Scholar

Chen, C., Yu, H., Zhu, P., Liu, L., Lin, X., Bai, Y., et al. (2022). The effect of salvianolate on cardiomyocyte remodeling improvement after myocardial infarction through calcineurin/nuclear factor C3 of the activated T cell/B-myosin heavy chain pathway regulation. J. Physiol. Pharmacol. 73 (3), 347–361. doi:10.26402/jpp.2022.3.03

CrossRef Full Text | Google Scholar

Chen, C. Y., Li, H., Yuan, Y. N., Dai, H. Q., and Yang, B. (2013). Antioxidant activity and components of a traditional Chinese medicine formula consisting of Crataegus pinnatifida and Salvia miltiorrhiza. BMC Complement. Altern. Med. 13, 99. doi:10.1186/1472-6882-13-99

PubMed Abstract | CrossRef Full Text | Google Scholar

Chen, R. J., Chen, W. L., Huang, X. L., and Rui, Q. L. (2021). Tanshinone IIA attenuates heart failure via inhibiting oxidative stress in myocardial infarction rats. Mol. Med. Rep. 23 (6), 404. doi:10.3892/mmr.2021.12043

PubMed Abstract | CrossRef Full Text | Google Scholar

Cheng, S., Ni, X., Yao, Y., Sun, Y., Yu, X., Xia, D., et al. (2023). Hyperoside prevents high-fat diet-induced obesity by increasing white fat browning and lipophagy via CDK6-TFEB pathway. J. Ethnopharmacol. 307, 116259. doi:10.1016/j.jep.2023.116259

PubMed Abstract | CrossRef Full Text | Google Scholar

Chi, X., Wang, S., Baloch, Z., Zhang, H., Li, X., Zhang, Z., et al. (2019). Research progress on classical traditional Chinese medicine formula Lily Bulb and Rehmannia Decoction in the treatment of depression. Biomed. Pharmacother. 112, 108616. doi:10.1016/j.biopha.2019.108616

PubMed Abstract | CrossRef Full Text | Google Scholar

Dai, L., Zhong, L. L., Cao, Y., Chen, W., Cheng, Y., Lin, X. F., et al. (2016). Efficacy and safety of Yirui capsule in patients with hyperlipidemia: study protocol for a multicenter, randomized, double-blind, placebo-controlled trial. Trials 17 (1), 291. doi:10.1186/s13063-016-1419-9

PubMed Abstract | CrossRef Full Text | Google Scholar

Dehghani, S., Mehri, S., and Hosseinzadeh, H. (2019). The effects of Crataegus pinnatifida (Chinese hawthorn) on metabolic syndrome: a review. Iran. J. Basic Med. Sci. 22 (5), 460–468. doi:10.22038/IJBMS.2019.31964.7678

PubMed Abstract | CrossRef Full Text | Google Scholar

Ding, S. L., Wang, W., Yin, X. J., Wang, L., Gong, L. L., Liao, F. L., et al. (2020). The joint effect of a combination of components from the fruit of Crataegus pinnatifida Bge. Var. Major NE Br. And the root of salvia miltiorrhiza Bge. With exercises on swimming in focal cerebral infraction in rat. Front. Physiol. 11, 574535. doi:10.3389/fphys.2020.574535

PubMed Abstract | CrossRef Full Text | Google Scholar

Du, L. L., Chen, C., and Ran, L. J. (2023). Simultaneous determination of five triterpenic acids in Crataegi Fructus by accelerated solvent extraction-charged aerosol detector. Environ. Chem. 42 (06), 2132–2135.

Google Scholar

Fang, X. L., Liu, Y. J., Lu, J., Hong, H. Q., Yuan, J., Zhang, Y. H., et al. (2018). Protocatechuic aldehyde protects against isoproterenol-induced cardiac hypertrophy via inhibition of the JAK2/STAT3 signaling pathway. N-S Arch. Pharmacol. 391 (12), 1373–1385. doi:10.1007/s00210-018-1556-7

PubMed Abstract | CrossRef Full Text | Google Scholar

Fei, Y. X., Wang, S. Q., Yang, L. J., Qiu, Y. Y., Li, Y. Z., Liu, W. Y., et al. (2017). Salvia miltiorrhiza Bunge (Danshen) extract attenuates permanent cerebral ischemia through inhibiting platelet activation in rats. J. Ethnopharmacol. 207, 57–66. doi:10.1016/j.jep.2017.06.023

PubMed Abstract | CrossRef Full Text | Google Scholar

Gao, R., Tu, X. H., Miao, Y., and Zhang, M. (2007). Evaluation of Xiaoyu Jiangzhi Capsules treating hyperlipidemia phase II clinical trial using placebo as a control. Chin. J. Exp. Tradit. Med. Form. 13 (2), 61–64. doi:10.3969/j.issn.1005-9903.2007.02.021

CrossRef Full Text | Google Scholar

Gu, H. F., Li, R. X., and Zhang, J. (2016). Phase III clinical trial of Xiao Yu Jiang Zhi capsules for the treatment of hyperlipidemia. Chin. J. Integrat Med. Cardio/Cerebrovasc Dis. 14 (16), 1903–1905. doi:10.3969/j.issn.1672-1349.2016.16.026

CrossRef Full Text | Google Scholar

Gu, W. J., Wang, R. Q., Cai, Z. W., Lin, X. J., Zhang, L., Chen, R. C., et al. (2023). Hawthorn total flavonoids ameliorate ambient fine particulate matter-induced insulin resistance and metabolic abnormalities of lipids in mice. Ecotox Environ. Safe 249, 114456. doi:10.1016/j.ecoenv.2022.114456

CrossRef Full Text | Google Scholar

Guo, S. F., Qiu, S., Cai, Y., Wang, Z. B., Yang, Q., Tang, S. Q., et al. (2023). Mass spectrometry-based metabolomics for discovering active ingredients and exploring action mechanism of herbal medicine. Front. Chem. 11, 1142287. doi:10.3389/fchem.2023.1142287

PubMed Abstract | CrossRef Full Text | Google Scholar

He, C. E., Wei, J. H., Chen, S. L., and Jin, Y. (2010a). Comparison of the contents of trace elements in the roots of four original danshen (salvia miltiorrhiza bunge). Spectrosc. Spect. Anal. 30 (3), 801–803. doi:10.3964/j.issn.1000-0593(2010)03-0801-03

PubMed Abstract | CrossRef Full Text | Google Scholar

He, C. E., Wei, J. H., Jin, Y., and Chen, S. L. (2010b). Bioactive components of the roots of Salvia miltiorrhizae: changes related to harvest time and germplasm line. Ind. Crop Prod. 32 (3), 313–317. doi:10.1016/j.indcrop.2010.05.009

CrossRef Full Text | Google Scholar

Huang, F., Zhu, D., and Chen, Q. L. (2023). Analysis on the mechanism of national patent compound prescriptions in treating atherosclerosis based on data mining and network pharmacology. Chin. J. Lib. Info Sci. Tradit. Chin. Med. 47 (06), 37–44. doi:10.3969/j.issn.2095-5707.202211190

CrossRef Full Text | Google Scholar

Huang, M. Q., Zhou, C. J., Zhang, Y. P., Zhang, X. Q., Xu, W., Lin, J., et al. (2016). Salvianolic acid B ameliorates hyperglycemia and dyslipidemia in db/db mice through the AMPK pathway. Cell Physiol. Biochem. 40 (5), 933–943. doi:10.1159/000453151

PubMed Abstract | CrossRef Full Text | Google Scholar

Iyaswamy, A., Krishnamoorthi, S. K., Liu, Y. W., Song, J. X., Kammala, A. K., Sreenivasmurthy, S. G., et al. (2020). Yuan-hu Zhi Tong prescription mitigates tau pathology and alleviates memory deficiency in the preclinical models of alzheimer's disease. Front. Pharmacol. 11, 584770. doi:10.3389/fphar.2020.584770

PubMed Abstract | CrossRef Full Text | Google Scholar

Jang, S. A., Park, D. W., Sohn, E. H., Lee, S. R., and Kang, S. C. (2018). Hyperoside suppresses tumor necrosis factor α-mediated vascular inflammatory responses by downregulating mitogen-activated protein kinases and nuclear factor-κB signaling. Chem. Biol. Interact. 294, 48–55. doi:10.1016/j.cbi.2018.08.013

PubMed Abstract | CrossRef Full Text | Google Scholar

Ji, S., Liu, Z. Z., Wu, J., Du, Y., Su, Z. Y., Wang, T. Y., et al. (2018). Chemical profiling and comparison of sangju ganmao tablet and its component herbs using two-dimensional liquid chromatography to explore compatibility mechanism of herbs. Front. Pharmacol. 9, 1167. doi:10.3389/fphar.2018.01167

PubMed Abstract | CrossRef Full Text | Google Scholar

Jia, Q., Zhu, R., Tian, Y., Chen, B., Li, R., Li, L., et al. (2019a). Salvia miltiorrhiza in diabetes: a review of its pharmacology, phytochemistry, and safety. Phytomedicine 58, 152871. doi:10.1016/j.phymed.2019.152871

PubMed Abstract | CrossRef Full Text | Google Scholar

Jia, S., Ma, W. D., Zhang, C. Y., Zhang, Y., Yao, Z. H., Quan, X. H., et al. (2019b). Tanshinone IIA attenuates high glucose induced human VSMC proliferation and migration through miR-21-5p-mediated tropomyosin 1 downregulation. Arch. Biochem. Biophys. 677, 108154. doi:10.1016/j.abb.2019.108154

PubMed Abstract | CrossRef Full Text | Google Scholar

Jiang, H. (2021). Content determination of ten organic acids in Crataegus pinnatifida before and after processing by HPLC. Tianjin J. Traditional Chin. Med. 38 (7), 935–940. doi:10.11656/j.issn.1672-1519.2021.07.24

CrossRef Full Text | Google Scholar

Ko, M., Oh, G. T., Park, J., and Kwon, H. J. (2020). Extract of high hydrostatic pressure-treated danshen (Salvia miltiorrhiza) ameliorates atherosclerosis via autophagy induction. BMB Rep. 53 (12), 652–657. doi:10.5483/BMBRep.2020.53.12.184

PubMed Abstract | CrossRef Full Text | Google Scholar

Lai, J. F., Qian, Q. Y., Ding, Q. C., Zhou, L., Fu, A., Du, Z. Y., et al. (2021). Activation of AMP-activated protein kinase-sirtuin 1 pathway contributes to salvianolic acid A-induced browning of white adipose tissue in high-fat diet fed male mice. Front. Pharmacol. 12, 614406. doi:10.3389/fphar.2021.614406

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, D., Li, Y. J., Yang, S. J., Yu, Z. L., Xing, Y. W., and Wu, M. (2022). Mechanism and potential target of blood-activating Chinese botanical drugs combined with anti-platelet drugs: prevention and treatment of atherosclerotic cardiovascular diseases. Front. Pharmacol. 13, 811422. doi:10.3389/fphar.2022.811422

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, H., Song, F., Duan, L. R., Sheng, J. J., Xie, Y. H., Yang, Q., et al. (2016). Paeonol and danshensu combination attenuates apoptosis in myocardial infarcted rats by inhibiting oxidative stress: roles of Nrf2/HO-1 and PI3K/Akt pathway. Sci. Rep. 6, 23693. doi:10.1038/srep23693

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, H., Xiao, L., He, H., Zeng, H., Liu, J., Jiang, C., et al. (2021). Quercetin attenuates atherosclerotic inflammation by inhibiting galectin-3-NLRP3 signaling pathway. Mol. Nutr. Food Res. 65 (15), e2000746. doi:10.1002/mnfr.202000746

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, J. Y., Wu, J., Xue, X. H., Fang, J. H., Li, J. J., and Ao, M. Y. (2024). Clinical research hotspots and trends of atherosclerosis treatment with traditional Chinese medicine preparations. J. Herb. Med. 43, 100839. doi:10.1016/j.hermed.2023.100839

CrossRef Full Text | Google Scholar

Li, R. Y., Luan, F., Zhao, Y. Y., Wu, M. Y., Lu, Y., Tao, C. T., et al. (2023). Crataegus pinnatifida: a botanical, ethnopharmacological, phytochemical, and pharmacological overview. J. Ethnopharmacol. 301, 115819. doi:10.1016/j.jep.2022.115819

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, W. H. (2023). Medication rules of marketed Chinese patent medicines in the treatment of hyperlipidemia based on data mining. Chin. J. Ration. Drug Use 20 (05), 127–133. doi:10.3969/j.issn.2096-3327.2023.05.021

CrossRef Full Text | Google Scholar

Li, X. J., and Zhang, H. Y. (2008). Synergy in natural medicines: implications for drug discovery. Trends Pharmacol. Sci. 29 (7), 331–332. doi:10.1016/j.tips.2008.04.002

PubMed Abstract | CrossRef Full Text | Google Scholar

Liang, W., Chen, W., Wu, L., Li, S., Qi, Q., Cui, Y., et al. (2017). Quality evaluation and chemical markers screening of salvia miltiorrhiza Bge. (Danshen) based on HPLC fingerprints and HPLC-MS(n) coupled with chemometrics. Molecules 22 (3), 478. doi:10.3390/molecules22030478

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, C. D., Liu, N. N., Zhang, S., Ma, G. D., Yang, H. G., Kong, L. L., et al. (2021d). Salvianolic acid A prevented cerebrovascular endothelial injury caused by acute ischemic stroke through inhibiting the Src signaling pathway. Acta Pharmacol. Sin. 42 (3), 370–381. doi:10.1038/s41401-020-00568-2

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, D., Song, Y., Song, T., Lin, L., Zhang, L., Yang, Q., et al. (2023a). RRP regulates autophagy through the AMPK pathway to alleviate the effect of cell senescence on atherosclerosis. Oxid. Med. Cell Longev. 2023, 9645789. doi:10.1155/2023/9645789

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, H., Zhan, X., Xu, G., Wang, Z., Li, R., Wang, Y., et al. (2021b). Cryptotanshinone specifically suppresses NLRP3 inflammasome activation and protects against inflammasome-mediated diseases. Pharmacol. Res. 164, 105384. doi:10.1016/j.phrs.2020.105384

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, H., Zhu, L., Chen, L., and Li, L. (2022a). Therapeutic potential of traditional Chinese medicine in atherosclerosis: a review. Phytother. Res. 36 (11), 4080–4100. doi:10.1002/ptr.7590

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, J. (2010). Summary of 84 cases of coronary heart disease and angina pectoris with hyperlipidemia treated with Shanzha and Danshen Decoction. Hunan J. Tradit. Chin. Med. 26 (04), 12–13. doi:10.3969/j.issn.1003-7705.2010.04.006

CrossRef Full Text | Google Scholar

Liu, J., Zhang, Q., and Ma, C. Y. (2012). Development of danshen-shanzha granules. Guide Chin. Med. 10 (05), 69–71. doi:10.3969/j.issn.1671-8194.2012.05.041

CrossRef Full Text | Google Scholar

Liu, M. N., Li, Z. Y., Ouyang, Y., Chen, M. T., Guo, X., Mazhar, M., et al. (2023b). Material basis and integrative pharmacology of danshen decoction in the treatment of cardiovascular diseases. Phytomedicine 108, 154503. doi:10.1016/j.phymed.2022.154503

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, M. N., Wang, R. Q., Li, Z. Y., Mazhar, M., Luo, G., and Yang, S. J. (2022c). Danshen decoction in the treatment of heart failure: a systematic review and meta-analysis protocol of randomized controlled trials. Medicine 101 (37), e30698. doi:10.1097/MD.0000000000030698

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, M. N., Xu, Y. N., Yang, G., Li, Z. Y., Luo, G., and Yang, S. J. (2022b). Danshen decoction in the treatment of hyperlipidemia: a systematic review and meta-analysis protocol of randomized controlled trials. Evid-Based Compl Alt. 2022, 2392652. doi:10.1155/2022/2392652

CrossRef Full Text | Google Scholar

Liu, Q. R., Zhao, L. N., Wang, Y. S., Han, Y. G., Zhang, Z. L., and Wu, Y. Q. (2020). Research progress on processing and processing methods in Salvia miltiorrhiza production areas. World J. Tradit. Chin. Med. 6, 423–431. doi:10.4103/wjtcm.wjtcm_50_20

CrossRef Full Text | Google Scholar

Liu, S., Fang, Y., Yu, J., and Chang, X. (2021c). Hawthorn polyphenols reduce high glucose-induced inflammation and apoptosis in ARPE-19 cells by regulating miR-34a/SIRT1 to reduce acetylation. J. Food Biochem. 45 (2), e13623. doi:10.1111/jfbc.13623

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, T., Li, T., Chen, X., Zhang, K., Li, M., Yao, W., et al. (2021a). A network-based analysis and experimental validation of traditional Chinese medicine Yuanhu Zhitong Formula in treating neuropathic pain. J. Ethnopharmacol. 274, 114037. doi:10.1016/j.jep.2021.114037

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, Y. Q., Cai, Q., Liu, C., Bao, F. W., and Zhang, Z. Q. (2014). Simultaneous determination and pharmacokinetic comparisons of multi-ingredients after oral administration of radix salviae miltiorrhizae extract, hawthorn extract, and a combination of both extracts to rats. J. Anal. Methods Chem. 2014, 617367. doi:10.1155/2014/617367

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, Z., Xu, S., Huang, X., Wang, J., Gao, S., Li, H., et al. (2015). Cryptotanshinone, an orally bioactive herbal compound from Danshen, attenuates atherosclerosis in apolipoprotein E-deficient mice: role of lectin-like oxidized LDL receptor-1 (LOX-1). Br. J. Pharmacol. 172 (23), 5661–5675. doi:10.1111/bph.13068

PubMed Abstract | CrossRef Full Text | Google Scholar

Luan, T. P., and Hao, Y. X. (2012). Treatment of 70 cases of hyperlipidemia with Jiangzhi qingnao decoction. Shaanxi J. Tradit. Chin. Med. 33 (09), 1180–1181. doi:10.3969/j.issn.1000-7369.2012.09.048

CrossRef Full Text | Google Scholar

Lv, J. S. (2005) Shi Jin-Mo’s pair drugs. People’s Military Medical Press.

Google Scholar

Lv, L. N., Yuan, X. Y., and Jiang, L. H. (2022). Effects of compound Danshen dropping pills on adverse cardiovascular events and quality of life after percutaneous coronary intervention in patients with coronary heart disease A protocol for systematic review and meta-analysis. Medicine 101 (8), e28994. doi:10.1097/MD.0000000000028994

PubMed Abstract | CrossRef Full Text | Google Scholar

Ma, Q., Yang, Q., Chen, J., Yu, C., Zhang, L., Zhou, W., et al. (2020). Salvianolic acid A ameliorates early-stage atherosclerosis development by inhibiting NLRP3 inflammasome activation in zucker diabetic fatty rats. Molecules 25 (5), 1089. doi:10.3390/molecules25051089

PubMed Abstract | CrossRef Full Text | Google Scholar

Ma, S., Zhang, D., Lou, H., Sun, L., and Ji, J. (2016). Evaluation of the anti-inflammatory activities of tanshinones isolated from Salvia miltiorrhiza var. alba roots in THP-1 macrophages. J. Ethnopharmacol. 188, 193–199. doi:10.1016/j.jep.2016.05.018

PubMed Abstract | CrossRef Full Text | Google Scholar

Ma, X., Zhang, L., Gao, F., Jia, W., and Li, C. (2023). Salvia miltiorrhiza and Tanshinone IIA reduce endothelial inflammation and atherosclerotic plaque formation through inhibiting COX-2. Biomed. Pharmacother. 167, 115501. doi:10.1016/j.biopha.2023.115501

PubMed Abstract | CrossRef Full Text | Google Scholar

Mehta, P. K., Huang, J. W., Levit, R. D., Malas, W., Waheed, N., and Merz, C. N. B. (2022). Ischemia and no obstructive coronary arteries (INOCA): a narrative review. Atherosclerosis 363, 8–21. doi:10.1016/j.atherosclerosis.2022.11.009

PubMed Abstract | CrossRef Full Text | Google Scholar

Mei, Z. G., Tan, L. J., Wang, J. F., Li, X. L., Huang, W. F., and Zhou, H. J. (2017). Fermented Chinese formula Shuan-Tong-Ling attenuates ischemic stroke by inhibiting inflammation and apoptosis. Neural Regen. Res. 12 (3), 425–432. doi:10.4103/1673-5374.202946

PubMed Abstract | CrossRef Full Text | Google Scholar

Min, J. W., Kong, W. L., Han, S., Bsoul, N., Liu, W. H., He, X. H., et al. (2017). Vitexin protects against hypoxic-ischemic injury via inhibiting Ca2+/Calmodulin-dependent protein kinase II and apoptosis signaling in the neonatal mouse brain. Oncotarget 8 (15), 25513–25524. doi:10.18632/oncotarget.16065

PubMed Abstract | CrossRef Full Text | Google Scholar

Muszynska, B., Lojewski, M., Rojowski, J., Opoka, W., and Sulkowska-Ziaja, K. (2015). Natural products of relevance in the prevention and supportive treatment of depression. Psychiatr. Pol. 49 (3), 435–453. doi:10.12740/PP/29367

PubMed Abstract | CrossRef Full Text | Google Scholar

Nan, M. H., Jiao, X. M., Li, L., Li, S., and Yu, Y. (2017). Tongmai huazhuo decoction (Granules without boiling water) combined with western medicine and comprehensive health education intervention for hvpertension randomized controled study. Pract. Tradit. Chin. Intern Med. 31 (09), 30–35. doi:10.13729/j.issn.1671-7813.2017.09.12

CrossRef Full Text | Google Scholar

Ning, S. Y., Meng, M. D., Wang, P., Wang, W., and Zhang, F. S. (2021). Analysis of chemical constituents in different parts of hawthorn by UHPLC-Q ExactiveOrbitrap-MS. Guangzhou Chem. Ind. 49 (13), 97–101. doi:10.3969/j.issn.1001-9677.2021.13.031

CrossRef Full Text | Google Scholar

Oravecz, M., and Meszaros, J. (2012). Traditional Chinese medicine: theoretical background and its use in China. Orv. Hetil. 153 (19), 723–731. doi:10.1556/OH.2012.29365

PubMed Abstract | CrossRef Full Text | Google Scholar

Orhan, I. E. (2018). Phytochemical and pharmacological activity profile of Crataegus oxyacantha L. (hawthorn) - a cardiotonic herb. Curr. Med. Chem. 25 (37), 4854–4865. doi:10.2174/0929867323666160919095519

PubMed Abstract | CrossRef Full Text | Google Scholar

Pang, H. H., Jiang, M. F., Wang, Q. H., Wang, X. Y., Gao, W., Tian, Z. H., et al. (2018). Metabolic profile of danshen in rats by HPLC-LTQ-Orbitrap mass spectrometry. J. Zhejiang Univ. Sci. B 19 (3), 227–244. doi:10.1631/jzus.B1700105

PubMed Abstract | CrossRef Full Text | Google Scholar

Pei, H. M., Wu, S. K., Zheng, L. J., Wang, H. X., and Zhang, X. R. (2022). Identification of the active compounds and their mechanisms of medicinal and edible Shanzha based on network pharmacology and molecular docking. J. Food Biochem. 46 (1), e14020. doi:10.1111/jfbc.14020

PubMed Abstract | CrossRef Full Text | Google Scholar

Qi, Y., Zhang, Q., and Zhu, H. (2019). Huang-Lian Jie-Du decoction: a review on phytochemical, pharmacological and pharmacokinetic investigations. Chin. Med. 14, 57. doi:10.1186/s13020-019-0277-2

PubMed Abstract | CrossRef Full Text | Google Scholar

Qian, Y., He, Y., Qiong, A., and Zhang, W. (2023). Tanshinone IIA regulates MAPK/mTOR signal-mediated autophagy to alleviate atherosclerosis through the miR-214-3p/atg16l1 Axis. Int. Heart J. 64 (5), 945–954. doi:10.1536/ihj.23-087

PubMed Abstract | CrossRef Full Text | Google Scholar

Qiao, X. L., Wu, S. J., Qi, X. Z., Feng, J., and Xiao, X. F. (2014). Identification of chemical constituents in Crataegus pinnatifida var. major by UPLC/ESI-TOF/MS. Drugs and Clin. 29 (02), 120–124. doi:10.7501/j.issn.1674-5515.2014.02.003

CrossRef Full Text | Google Scholar

Qu, C., Xu, D. Q., Yue, S. J., Shen, L. F., Zhou, G. S., Chen, Y. Y., et al. (2020). Pharmacodynamics and pharmacokinetics of Danshen in isoproterenol-induced acute myocardial ischemic injury combined with Honghua. J. Ethnopharmacol. 247, 112284. doi:10.1016/j.jep.2019.112284

PubMed Abstract | CrossRef Full Text | Google Scholar

Qu, Y. (2015). Observation on the therapeutic effect of Yiqi Huoxue Tongluo Decoction on ischemic cerebral apoplexy. Shaanxi J. Tradit. Chin. Med. 36 (07), 818–819. doi:10.3969/j.issn.1000-7369.2015.07.025

CrossRef Full Text | Google Scholar

Rahman, N., Jeon, M., Song, H. Y., and Kim, Y. S. (2016). Cryptotanshinone, a compound of Salvia miltiorrhiza inhibits pre-adipocytes differentiation by regulation of adipogenesis-related genes expression via STAT3 signaling. Phytomedicine 23 (1), 58–67. doi:10.1016/j.phymed.2015.12.004

PubMed Abstract | CrossRef Full Text | Google Scholar

Su, C. Y., Ming, Q. L., Rahman, K., Han, T., and Qin, L. P. (2015). Salvia miltiorrhiza: traditional medicinal uses, chemistry, and pharmacology. Chin. J. Nat. Med. 13 (3), 163–182. doi:10.1016/S1875-5364(15)30002-9

PubMed Abstract | CrossRef Full Text | Google Scholar

Sun, B., Huo, H. Z., Cai, A. H., Xie, Y. C., Li, H. Y., and Li, D. P. (2021a). Determination of contents of eight phenolic acids in Malus doumeri fruit by HPLC. Guihaia 41 (7), 1135–1144. doi:10.11931/guihaia.gxzw202003034

CrossRef Full Text | Google Scholar

Sun, F., Zeng, L., Li, J., Zhong, Y., Wu, X., Wang, K., et al. (2022). Developing the liquid chromatography-mass spectrometry method for simultaneously quantifying five components in rat serums after oral administration of hawthorn aqueous extracts and its application to a pharmacokinetic study. J. Sep. Sci. 45 (11), 1839–1846. doi:10.1002/jssc.202100906

CrossRef Full Text | Google Scholar

Sun, L., and Zhang, Y. N. (2022). Compound Danshen dripping pills in treating with coronary heart disease A protocol for systematic review and meta-analysis. Medicine 101 (7), e28927. doi:10.1097/MD.0000000000028927

CrossRef Full Text | Google Scholar

Sun, M. Q., Ye, Y., Huang, Y. L., Yin, W. X., Yu, Z. L., and Wang, S. R. (2021b). Salvianolic acid B improves autophagic dysfunction and decreases the apoptosis of cholesterol crystal-induced macrophages via inhibiting the Akt/mTOR signaling pathway. Mol. Med. Rep. 24 (5), 763. doi:10.3892/mmr.2021.12403

PubMed Abstract | CrossRef Full Text | Google Scholar

Tan, Y. L., Ou, H. X., Zhang, M., Gong, D., Zhao, Z. W., Chen, L. Y., et al. (2019). Tanshinone IIA promotes macrophage cholesterol efflux and attenuates atherosclerosis of apoE-/- mice by omentin-1/ABCA1 pathway. Curr. Pharm. Biotechno 20 (5), 422–432. doi:10.2174/1389201020666190404125213

PubMed Abstract | CrossRef Full Text | Google Scholar

Tang, Y. P., Xu, D. Q., Yue, S. J., Chen, Y. Y., Fu, R. J., and Bai, X. (2022). Modern research thoughts and methods on bio-active components of TCM formulae. Chin. J. Nat. Med. 20 (7), 481–493. doi:10.1016/S1875-5364(22)60206-1

PubMed Abstract | CrossRef Full Text | Google Scholar

Tung, N. H., Nakajima, K., Uto, T., Hai, N. T., Long, D. D., Ohta, T., et al. (2017). Bioactive triterpenes from the root of salvia miltiorrhiza bunge. Phytother. Res. 31 (9), 1457–1460. doi:10.1002/ptr.5877

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, L., Zhou, G. B., Liu, P., Song, J. H., Liang, Y., Yan, X. J., et al. (2008). Dissection of mechanisms of Chinese medicinal formula Realgar-Indigo naturalis as an effective treatment for promyelocytic leukemia. Proc. Natl. Acad. Sci. U. S. A. 105 (12), 4826–4831. doi:10.1073/pnas.0712365105

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, L. L., Ma, R. F., Liu, C. Y., Liu, H. X., Zhu, R. Y., Guo, S. Z., et al. (2017). Salvia miltiorrhiza: a potential red light to the development of cardiovascular diseases. Curr. Pharm. Des. 23 (7), 1077–1097. doi:10.2174/1381612822666161010105242

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, S. P., Hu, Y. Y., Tan, W., Wu, X., Chen, R. E., Cao, J. L., et al. (2012). Compatibility art of traditional Chinese medicine: from the perspective of herb pairs. J. Ethnopharmacol. 143 (2), 412–423. doi:10.1016/j.jep.2012.07.033

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, S. Z., Wu, M., Chen, K. J., Liu, Y., Sun, J., Sun, Z., et al. (2019). Hawthorn extract alleviates atherosclerosis through regulating inflammation and apoptosis related factors: an experimental study. Chin. J. Integr. Med. 25 (2), 108–115. doi:10.1007/s11655-018-3020-4

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, Y. H., and Guo, L. N. (2018). Evaluation of the therapeutic effect of traditional Chinese medicine decoction with salvia miltiorrhiza and hawthorn on nonalcoholic steatohepatitis. Chin. Med. J. Metal. Indust 35 (06), 655–656. doi:10.13586/j.cnki.yjyx1984.2018.06.021

CrossRef Full Text | Google Scholar

Wen, J. X., Chang, Y. M., Huo, S. S., Li, W. Y., Huang, H. L., Gao, Y. H., et al. (2021b). Tanshinone IIA attenuates atherosclerosis via inhibiting NLRP3 inflammasome activation. Aging-Us 13 (1), 910–932. doi:10.18632/aging.202202

CrossRef Full Text | Google Scholar

Wen, Z. G., Shao, M. S., and Zhao, L. H. (2021a). Study on the clinical application and dosage of hawthorn fruit. J. Chang. Univ. Chin. Med. 37 (04), 741–744. doi:10.13463/j.cnki.cczyy.2021.04.009

CrossRef Full Text | Google Scholar

Wu, J., Tan, Y., Kang, D., Yu, J., Qi, J., Wu, J., et al. (2022). Xiaoyu Jiangzhi capsule protects against heart failure via Ca2+/CaMKII signaling pathways in mice. J. Traditional Chin. Med. Sci. 9 (3), 289–297. doi:10.1016/j.jtcms.2022.06.002

CrossRef Full Text | Google Scholar

Wu, P., Du, Y. Q., Xu, Z. H., Zhang, S., Liu, J., Aa, N., et al. (2019b). Protective effects of sodium tanshinone IIA sulfonate on cardiac function after myocardial infarction in mice. Am. J. Transl. Res. 11 (1), 351–360.

PubMed Abstract | Google Scholar

Wu, Q., Lv, Q. Y., Liu, X. A., Ye, X. J., Cao, L. L., Wang, M. S., et al. (2023a). Natural compounds from botanical drugs targeting mTOR signaling pathway as promising therapeutics for atherosclerosis: a review. Front. Pharmacol. 14, 1083875. doi:10.3389/fphar.2023.1083875

PubMed Abstract | CrossRef Full Text | Google Scholar

Wu, R., Zhang, L., Xu, H., Chen, H., Zhao, W., Zhou, Y., et al. (2023b). Salvia miltiorrhiza extract prevents the occurrence of early atherosclerosis in apoe-/- mice via TLR4/NF-kB pathway. Cardiovasc Hematol. Agents Med. Chem. 21 (3), 232–239. doi:10.2174/1871525721666230206112134

PubMed Abstract | CrossRef Full Text | Google Scholar

Wu, S. Q., Song, H. P., Li, B., Liu, R. Z., Yang, H., He, L., et al. (2018). A fast and accurate method for the identification of peroxidase inhibitors from Radix Salvia Miltiorrhizae by on-flow biochemical assay coupled with LC/Q-TOF-MS: comparison with ultrafiltration-based affinity selection. Anal. Bioanal. Chem. 410 (18), 4311–4322. doi:10.1007/s00216-018-1081-z

PubMed Abstract | CrossRef Full Text | Google Scholar

Wu, X., Liu, L., Zheng, Q., Hao, H., Ye, H., Li, P., et al. (2021). Protocatechuic aldehyde protects cardiomycoytes against ischemic injury via regulation of nuclear pyruvate kinase M2. Acta Pharm. Sin. B 11 (11), 3553–3566. doi:10.1016/j.apsb.2021.03.021

PubMed Abstract | CrossRef Full Text | Google Scholar

Wu, Y. P. (2015). Study on the clinical value of traditional Chinese medicine in the treatment of atherosclerosis. All Health 9 (14), 45–46. doi:10.3969/j.issn.1009-6019.2015.0

CrossRef Full Text | Google Scholar

Wu, Y. T., Bi, Y. M., Tan, Z. B., Xie, L. P., Xu, H. L., Fan, H. J., et al. (2019a). Tanshinone I inhibits vascular smooth muscle cell proliferation by targeting insulin-like growth factor-1 receptor/phosphatidylinositol-3-kinase signaling pathway. Eur. J. Pharmacol. 853, 93–102. doi:10.1016/j.ejphar.2019.03.021

PubMed Abstract | CrossRef Full Text | Google Scholar

Xing, D., and Liu, Z. (2021). Effectiveness and safety of traditional Chinese medicine in treating COVID-19: clinical evidence from China. Aging Dis. 12 (8), 1850–1856. doi:10.14336/AD.2021.0906

PubMed Abstract | CrossRef Full Text | Google Scholar

Xu, L. H., Zhou, X., Jiang, F., Li, L., Song, Y. Z., Zeng, Z. C., et al. (2022). Prediction and verification of the effect and mechanism of baoyuan Huoluo prescription on myocardial ischemia-reperfusion injury. Chin. J. Mod. Appl. Pharm. 39 (03), 300–311. doi:10.13748/j.cnki.issn1007-7693.2022.03.003

CrossRef Full Text | Google Scholar

Xu, Y., Liang, J. Z., Guo, L. L., Liu, X., Zhao, Z. Q., and Tan, Y. (2019). Liang jun-zhao's experience of treating angina pectoris from phlegm and blood stasis. HeNan Tradit. Chin. Med. 39 (9), 1342–1345. doi:10.16367/j.issn.1003-5028.2019.09.0332

CrossRef Full Text | Google Scholar

Xuan, Y., Gao, Y., Huang, H., Wang, X., Cai, Y., and Luan, Q. X. (2017). Tanshinone IIA attenuates atherosclerosis in apolipoprotein E knockout mice infected with porphyromonas gingivalis. Inflammation 40 (5), 1631–1642. doi:10.1007/s10753-017-0603-8

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, B. Y., and Ma, Z. (2024). Research progress on the mechanism of radix salviae miltiorrhizae on atherosclerosis. MEDS Chin. Med. 6 (1), 38–42. doi:10.23977/MEDCM.2024.060106

CrossRef Full Text | Google Scholar

Yang, C. S., Xu, Y. Y., Zhang, W. Q., Ma, M. M., Wang, S. X., Chai, L. J., et al. (2021a). Salvianolate lyophilized injection regulates the autophagy-lysosomal pathway in cerebral ischaemia/reperfusion rats. J. Ethnopharmacol. 271, 113898. doi:10.1016/j.jep.2021.113898

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, D. N. (2008). Clinical observation of Xinkeshu tablet in the treatment of paroxysmal atrial fibrillation. J. Liaoning Univ. Chin. Med. 9, 112–113. doi:10.3969/j.issn.1673-842X.2008.09.070

CrossRef Full Text | Google Scholar

Yang, R. X., Huang, S. Y., Yan, F. F., Lu, X. T., Xing, Y. F., Liu, Y., et al. (2010). Danshensu protects vascular endothelia in a rat model of hyperhomocysteinemia. Acta Pharmacol. Sin. 31 (10), 1395–1400. doi:10.1038/aps.2010.167

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, S. S., Liu, A. L., Shan, L. L., Zeng, T. C., Zhou, Q., and Li, Y. B. (2018a). Pharmacokinetics mechanism of ABC efflux proteins-mediated seven features of compatibility. Zhongguo Zhong Yao Za Zhi 43 (4), 676–683. doi:10.19540/j.cnki.cjcmm.2018.0016

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, Y., Jia, H. M., Yu, M., Zhou, C., Sun, L. L., Zhao, Y., et al. (2018b). Chinese patent medicine Xin-Ke-Shu inhibits Ca2+ overload and dysfunction of fatty acid β-oxidation in rats with myocardial infarction induced by LAD ligation. J. Chromatogr. B 1079, 85–94. doi:10.1016/j.jchromb.2018.01.038

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, Y. F., Feng, K., Yuan, L. Y., Liu, Y. X., Zhang, M. Y., Guo, K. M., et al. (2023). Compound Danshen Dripping Pill inhibits hypercholesterolemia/atherosclerosis-induced heart failure in ApoE and LDLR dual deficient mice via multiple mechanisms. Acta Pharm. Sin. B 13 (3), 1036–1052. doi:10.1016/j.apsb.2022.11.012

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, Y. K., Li, J., Rao, T. C., Fang, Z. R., and Zhang, J. Y. (2021b). The role and mechanism of hyperoside against myocardial infarction in mice by regulating autophagy via NLRP1 inflammation pathway. J. Ethnopharmacol. 276, 114187. doi:10.1016/j.jep.2021.114187

PubMed Abstract | CrossRef Full Text | Google Scholar

Ye, T. Y., Zheng, Y. H., Guan, Y., Sun, Y., and Chen, C. (2023). Rapid determination of chemical components and antioxidant activity of the fruit of Crataegus pinnatifida Bunge by NIRS and chemometrics. Spectrochim. Acta A 289, 122215. doi:10.1016/j.saa.2022.122215

CrossRef Full Text | Google Scholar

Yi, M. R., Liu, Y. N., Li, C. F., and He, Q. (2023). Study on the pathogenesis and treatment of carotid atherosclerosis from “phlegm, blood stasis and toxicity”. MEDS Chin. Med. 5 (10), 131–136. doi:10.23977/MEDCM.2023.051019

CrossRef Full Text | Google Scholar

Yilmaz, M. A., Ertas, A., Yener, I., Olmez, O. T., Firat, M., Temel, H., et al. (2022). Development and validation of a novel LC-MS/MS method for the quantitation of 19 fingerprint phytochemicals in salvia species: a chemometric approach. J. Chromatogr. Sci. 60 (8), 770–785. doi:10.1093/chromsci/bmab125

PubMed Abstract | CrossRef Full Text | Google Scholar

Yuan, J. F., Hu, J. W., Chen, Z. Y., and Wang, D. H. (2020). Screening of cardioprotective diseases bioactive components from Danshen extracts and LC-MS analysis. Biomed. Chromatogr. 34 (6), e4823. doi:10.1002/bmc.4823

PubMed Abstract | CrossRef Full Text | Google Scholar

Zeng, H. T., Su, S. L., Xiang, X., Sha, X. X., Zhu, Z. H., Wang, Y. Y., et al. (2017). Comparative analysis of the major chemical constituents in salvia miltiorrhiza roots, stems, leaves and flowers during different growth periods by UPLC-TQ-MS/MS and HPLC-ELSD methods. Molecules 22 (5), 771. doi:10.3390/molecules22050771

PubMed Abstract | CrossRef Full Text | Google Scholar

Zeng, L., Luo, L., Xue, Q., He, Q., Chen, X., Meng, J., et al. (2021a). LC-MS based plasma metabolomics study of the intervention effect of different polar parts of Hawthorn on hyperlipidemia rats. J. Sep. Sci. 44 (5), 963–972. doi:10.1002/jssc.202000911

PubMed Abstract | CrossRef Full Text | Google Scholar

Zeng, X., Zheng, Y., Liu, Y., and Su, W. (2021b). Chemical composition, quality control, pharmacokinetics, pharmacological properties and clinical applications of Fufang Danshen Tablet: a systematic review. J. Ethnopharmacol. 278, 114310. doi:10.1016/j.jep.2021.114310

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, C. Y., and Ren, W. G. (2017). Pharmacokinetic research strategies of compatibilities and synergistic effects of classical Danshen herb pairs based on pharmacokinetics of "Danshen-Bingpian" and "Danshen-Honghua. Zhongguo Zhong Yao Za Zhi 42 (12), 2413–2419. doi:10.19540/j.cnki.cjcmm.20170307.005

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, F. B., Li, Y., Zhang, Y., Xu, H., Wang, L. F., and Liu, C. S. (2022a). Therapeutic material basis of xinshubao tablet in promoting blood circulation and removing stasis. World Chin. Med. 17 (07), 906–911. doi:10.3969/j.issn.1673-7202.2022.07.003

CrossRef Full Text | Google Scholar

Zhang, J. H., Zhu, Y., Fan, X. H., and Zhang, B. L. (2015). Efficacy-oriented compatibility for component-based Chinese medicine. Acta Pharmacol. Sin. 36, 654–658. doi:10.1038/aps.2015.8

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, J. Y. (2013) Explore anti-atherosclerotic mechanism of component compatibility of Danshen and Shanzha. China Academy of Chinese Medical Sciences. PhD thesis.

Google Scholar

Zhang, J. Y., Liang, R. X., Wang, L., Yan, R., Hou, R., Gao, S., et al. (2013a). Effects of an aqueous extract of Crataegus pinnatifida Bge. var. major N.E.Br. fruit on experimental atherosclerosis in rats. J. Ethnopharmacol. 148 (2), 563–569. doi:10.1016/j.jep.2013.04.053

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, J. Y., Liang, R. X., Wang, L., and Yang, B. (2019). Effects and mechanisms of Danshen-Shanzha herb-pair for atherosclerosis treatment using network pharmacology and experimental pharmacology. J. Ethnopharmacol. 229, 104–114. doi:10.1016/j.jep.2018.10.004

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, J. Y., Wang, L., Liang, R. X., and Yang, B. (2016). Explore anti-atherosclerotic mechanism of component compatibility of Danshen and Shanzha based on network pharmacology and cell level. Zhongguo Zhong Yao Za Zhi 41 (23), 4408–4415. doi:10.4268/cjcmm20162319

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, J. Y., Yan, R. Y., Wang, L., Wang, J. L., Wang, W. D., Hou, R., et al. (2013b). Experimental study on anti-atherosclerotic effect of compatibility of active components of danshen and shanzha. Zhongguo Zhong Yao Za Zhi 38 (12), 1987–1991. doi:10.4268/cjcmm20131228

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, L. L., Zhang, L. F., and Xu, J. G. (2020a). Chemical composition, antibacterial activity and action mechanism of different extracts from hawthorn (Crataegus pinnatifida Bge.). Sci. Rep. 10 (1), 8876. doi:10.1038/s41598-020-65802-7

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, Q. Y., Zhang, J. W., Wu, Q. Y., Huang, C. H., Li, J. K., and Ao, M. Y. (2022b). Clinical research hotspots and trends of activating blood and removing blood stasis compound prescriptions in prevention and treatment of hyperlipidemia-visual analysis based on VOSviewer. Chin. Tradit. Herb. Drugs 53 (01), 196–205. doi:10.7501/j.issn.0253-2670.2022.01.022

CrossRef Full Text | Google Scholar

Zhang, S. Q., Jiang, X. X., and Li, J. C. (2023). Traditional Chinese medicine in human diseases treatment: new insights of their potential mechanisms. Anat. Rec. Hob. 306, 2920–2926. doi:10.1002/ar.25228

CrossRef Full Text | Google Scholar

Zhang, Y. F., Feng, X. T., Du, M., Ding, J., and Liu, P. (2022). Salvianolic acid B attenuates the inflammatory response in atherosclerosis by regulating MAPKs/NF-kappa B signaling pathways in LDLR-/- mice and RAW264.7 cells. Int. J. Immunopathol. Pharmacol. 36, 039463202210794. doi:10.1177/03946320221079468

CrossRef Full Text | Google Scholar

Zhang, Y. L. (2009). The clinical observation of Danshen Shanzha Jiangzhi Pills in the treatment of hyperlipoidemia. China Med. Her. 6 (19), 57–58. doi:10.3969/j.issn.1673-7210.2009.19.028

CrossRef Full Text | Google Scholar

Zhang, Y. M., Zhang, Z. Y., and Wang, R. X. (2020b). Protective mechanisms of quercetin against myocardial ischemia reperfusion injury. Front. Physiol. 11, 956. doi:10.3389/fphys.2020.00956

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhao, W., Li, C., Zhang, H., Zhou, Q., Chen, X., Han, Y., et al. (2021). Dihydrotanshinone I attenuates plaque vulnerability in apolipoprotein E-deficient mice: role of receptor-interacting protein 3. Antioxid. Redox Signal 34 (5), 351–363. doi:10.1089/ars.2019.7796

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhou, G., Liu, Y., Wu, H., Zhang, D., Yang, Q., and Li, Y. (2023). Research progress on histone deacetylases regulating programmed cell death in atherosclerosis. J. Cardiovasc Transl. Res. 17, 308–321. doi:10.1007/s12265-023-10444-z

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhu, Q. J., Lang, L. J., Wang, Y., Zhang, D. Q., Jiang, B., and Xiao, C. J. (2022). Triterpenoids from the fruits of wild species of Crataegus scabrifolia and their lipid-lowering activities. Russ. J. Bioorg Chem. 48, 1291–1298. doi:10.1134/s1068162022060292

CrossRef Full Text | Google Scholar

Zhu, Y., Xian, X., Wang, Z., Bi, Y., Chen, Q., Han, X., et al. (2018). Research progress on the relationship between atherosclerosis and inflammation. Biomolecules 8 (3), 80. doi:10.3390/biom8030080

PubMed Abstract | CrossRef Full Text | Google Scholar

Keywords: danshen-shanzha formula, herb pair, radix salvia miltiorrhiza, fructus crataegi, atherosclerosis

Citation: Xu Q, Yu Z, Zhang M, Feng T, Song F, Tang H, Wang S and Li H (2024) Danshen-Shanzha formula for the treatment of atherosclerosis: ethnopharmacological relevance, preparation methods, chemical constituents, pharmacokinetic properties, and pharmacological effects. Front. Pharmacol. 15:1380977. doi: 10.3389/fphar.2024.1380977

Received: 02 February 2024; Accepted: 20 May 2024;
Published: 07 June 2024.

Edited by:

Dongwei Zhang, Beijing University of Chinese Medicine, China

Reviewed by:

Wenda Xue, Nanjing University of Chinese Medicine, China
Lin Li, Capital Medical University, China

Copyright © 2024 Xu, Yu, Zhang, Feng, Song, Tang, Wang and Li. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

*Correspondence: Hua Li, lihuasmile@aliyun.com; Tian Feng, 807620973@qq.com

These authors have contributed equally to this work

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