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ORIGINAL RESEARCH article

Front. Cell. Infect. Microbiol., 01 July 2022
Sec. Clinical Microbiology

Methylene Blue–Mediated Antimicrobial ​Photodynamic Therapy Against Clinical Isolates of Extensively Drug Resistant ​Gram-Negative Bacteria Causing Nosocomial Infections in Thailand, An In Vitro Study

Chankiat SongsantiphapChankiat Songsantiphap1Jakapat VanichananJakapat Vanichanan2Tanittha Chatsuwan,Tanittha Chatsuwan3,4Pravit AsawanondaPravit Asawanonda1Einapak Boontaveeyuwat*Einapak Boontaveeyuwat1*
  • 1Photodermatology Unit, Division of Dermatology, Department of Medicine, King Chulalongkorn Memorial Hospital and Faculty of Medicine, Chulalongkorn University, Bangkok, Thailand
  • 2Division of Infectious Diseases, Department of Medicine, King Chulalongkorn Memorial Hospital and Faculty of Medicine, Chulalongkorn University, Bangkok, Thailand
  • 3Department of Microbiology, Faculty of Medicine, Chulalongkorn University, Bangkok, Thailand
  • 4Antimicrobial Resistance and Stewardship Research Unit, Faculty of Medicine, Chulalongkorn University, Bangkok, Thailand

Background/Purpose: Some multidrug-resistant gram-negative bacteria as a global threat have been recently prioritized for research and development of new treatments. We studied the efficacy of methylene blue–mediated antimicrobial photodynamic therapy (MB-aPDT) for the reduction of extensively drug-resistant Acinetobacter baumannii (XDR-AB) and Pseudomonas aeruginosa (XDR-PS) and multidrug-resistant Klebsiella pneumoniae (MDR-KP) isolated in a university hospital setting in Thailand.

Method: Two isolates of each selected bacterium were collected, XDR-AB1 and AB2, XDR- PS1 and PS2, and MDR-KP1 and KP2. Three triplicate experiments using various MB concentrations alone, various red light fluences alone, as well as the selected non-toxic doses of MB and fluences of red light combined as MB-aPDT were applied on each selected isolate. The colonies were counted [colony forming units (CFU)/ml]. Estimation of the lethal treatment dose defined as reduction of > 2 log10 in CFU/ml compared with untreated bacteria.

Result: There were generally negligible changes in the viable counts of the bacterial suspensions treated with all the MB concentrations (p > 0.05). In the second experiment with the only red light treatments, at fluences higher than 2 J/cm, reduction trend in viable counts across all the isolates was observed. Only for MDR-KP1, however, the lethal dose was achieved with the highest fluence of red light (80 J/cm). With the concentration of MB, 50 and 150 mg/L in the third experiment (MB-aPDT), the greater bacterial reduction was observed in all clinical isolates leading to their lethal viable cell reduction when escalating the light fluence to 80 J/cm.

Conclusions: MB-aPDT evidently killed the selected XDR and MDR-gram negative bacteria. In highly drug-resistant crisis era, MB-aPDT could be a promising option, particularly for local infections and infection complicating chronic wounds.

Introduction

An initial broad-spectrum empirical antimicrobial treatment is a common practice at least until causative pathogens and their antibiotic susceptibility patterns are determined. As microorganisms can rapidly develop resistance against the widespread use of various antimicrobial agents, this has become a global concern in the past several years, reaching crisis in many settings (Prescott, 2014). Certain infections are rapidly becoming untreatable (Rice, 2008; Bush and Jacoby, 2010; Wang et al., 2020). The term “ESKAPE” (Rice, 2008; Bush and Jacoby, 2010) originally made up of the group of six highly potentially multidrug-resistant (MDR) and virulent bacteria has been known as the leading causes of life-threatening nosocomial infections across the globe. World Health Organization (WHO) recently described a priority list for research and development for new treatments regarding the four most importantly weighted criteria including treatability, mortality, heathcare burden, and 10-year trend of resistance (Tacconelli et al., 2018). Of the ESKAPE pathogens, carbapenem-resistant A.baumannii and Pseudomonas aeruginosa, and Klebsiella spp. have been stratified into the critical priority tier. These three invasive pathogens can cause a wide variety of infections ranging from wound, burn, soft tissue, liver, urinary tract infections, pneumonia to meningitis (Dijkshoorn et al., 2007; Driscoll et al., 2007; Kerr and Snelling, 2009; Ramirez et al., 2020) particularly in neonates, the elderly, and the immunocompronised in a hospital setting.

To fight against the drug resistance crisis, apart from a thrive to develop highly efficient multi-target antibiotics and the discovery of new microbial natural products (NPs) (Hutchings et al., 2019), photoantimicrobials seem to be a promising instant way out of this issue particularly for local skin and soft tissue infections. Methylene blue–mediated photodynamic therapy (MB-PDT) has been known as a powerful monotherapy or adjunct tool to broad-spectrum antimicrobials (Alberdi and Gomez, 2020; Bowornsathitchai et al., 2020). A variety of methylene-blue formulations allow specific delivery of the photosensitizer (PS) to an infected area while sparing adjacent healthy tissue. In addition, the use of economical long-life light sources offers financial affordability to both healthcare providers and patients. Compatibility with other necessary systemic therapies makes MB-PDT nearly universally patient-friendly even for medically complex patients with polypharmacy. Acceleration of wound healing is the other exceptional advantage of MB-PDT over other antimicrobial therapies (Bowornsathitchai et al., 2020) particularly for treating infection complicating chronic wounds.

Despite various factors stated to cause delayed wound healing, infections (Fu, 2005) appear to be a principal contributing factor of chronic wound development in the Middle East and Asia particularly in patients with diabetes (Basu et al., 2009; Jiang et al., 2011), leading to disabling diabetic foot ulcers (Sugandhi and Prasanth, 2014; Tekin et al., 2014; Li et al., 2018; Jouhar et al., 2020; Guan et al., 2021). The greatly diverse and exceptionally dynamic genetic composition of the successful opportunistic pathogens primarily contributes virulence and antibiotic resistance. This genomic diversity has been found not only the strains in different clinically relevant infections but also among ones isolated from different geographic locations (Subedi et al., 2018; Galac et al., 2020; Lebreton et al., 2021; Kiyaga et al., 2022).

Despite many encouraging outcomes of MB-aPDT for MDR-gram positive and negative bacteria reported from many countries, there has been yet no data for the efficacy of MB-aPDT against carbapenem-resistant A. baumannii and P. aeruginosa, and MDR- K. pneumoniae in Thailand. Hence, our objectives were to study the efficacy of MB-aPDT for the reduction of carbapenem-resistant or extensively drug-resistant A. baumannii (XDR-AB), carbapenem-resistant or extensively drug-resistant P. aeruginosa (XDR-PS), and MDR K. pneumoniae (MDR-KP) collected and isolated in a university hospital setting in Thailand.

Materials and Methods

Bacterial Strains and Culture Conditions

The study protocol was approved by the Institutional Review Board of Faculty of Medicine, Chulalongkorn University, and conducted under good practice and ethical principles of Declaration of Helsinki 2008. All identified isolates were obtained by Microbiology laboratory, Department of Microbiology, Chulalongkorn University, during June 2019 to August 2020. Two isolates of A. baumannii (AB1 and AB2) were collected from sputum and chronic wound infection, respectively, P. aeruginosa (PS1 and PS2) from bile and urine, respectively, and K. pneumoniae (KP1 and KP2) from sputum. Detailed patients’ profiles and antimicrobial susceptibility pattern of each isolate done according to the Clinical and Laboratory Standards Institute (CLSI) guideline (Weinstein, 2021) were shown in Supplementary Tables 1 and 2, respectively. AB and PS were XDR, whereas KP was MDR strains. Each strain was cultivated overnight on trypsic soy agar (TSA) plates at 37°C. A suspension of each strain was then prepared in sterile phosphate-buffered saline (PBS) (pH = 7.4) to McFarland turbidity standard of 2, a concentration approximately of 6 × 10 (9) to 9 × 10 (9) colony forming units (CFU)/ml.

Photosensitizer Preparation

MB (Merck KGaA, Darmstadt, Germany) solution was prepared in normal saline solution (NaCl), filtered-sterilized, and kept in the dark. Any procedures involving MB were performed in a dark room under weak yellow light exposure (λ = 596 nm) to minimize PS activation.

Effect of MB Concentration on Bacterial Population

The prepared MB was diluted with 0.9% NaCl to give final concentrations of 10, 25, 50, 100, and 150 mg/L. For each concentration, a MB aliquot (500 μl) was added to an equal amount of each bacterial strain suspension and subsequently incubated in the dark for 10 min (MB/bacteria). A dilution of bacterial aliquot with 0.9% NaCl in 1:1 served as negative control. The MB/bacteria mixture suspensions were washed in PBS to remove unbound PS and centrifuged at 13.00×g for 5 min twice until the pellets of bacterial suspension were formed. Cell pellets of each bacterial strain were resuspended in 1 ml of PBS. Then, aliquots (100 μl) in PBS were subsequently transferred into 96-well microtiter plates. Viable bacterial count in CFU/ml was determined after incubation at 37°C overnight.

Effect of Red Light on Bacterial Population

An aliquot (500 μl) of each aforementioned bacterial strain suspension prepared in sterile PBS without the addition of MB or subsequent incubation in the dark was transferred into a transparent 96-well plate. The microtiter plates were subsequently placed at a constant distance of 4 cm under the illumination head of incoherent red light (peak emission spectrum at 633 nm, 65 mW/cm (2)) from light emitting diodes (HEALITE®, Lutronic Corp., Goyang, S. Korea). Irradiations were carried out with the light fluences of 1, 2, 5, 10, 20, 40, and 80 J/cm (2), which took 0.20, 0.40, 1.40, 3.20, 6.40, 13.20, and 26.40 min, respectively. Each plate was kept covered and exposed to only one fluence of the red light. Survival was determined after the irradiation.

Effect of MB-aPDT on Bacterial Population

To develop the appropriate MB-aPDT regimen using the minimum effective concentration–fluence dose, we selected two non-lethal MB concentrations, 50 and 150 mg/L to pair with the light fluences of 1, 2, 40, and 80 J/cm (2).

Estimation of Post-Treatment Viability and Determination of the Sublethal and Lethal Doses of Treatments

Treated bacterial isolate suspension was transferred from the wells, serially diluted, and streaked on TSA agar plates. The colonies were counted (CFU/ml) after overnight incubation at 37°C. The experiments were performed in triplicates. Sublethal dose was defined as the dose at which the capability of direct damage made by one treatment is not sufficient to destroy most of the bacterial population, whereas the lethal dose was defined as where the extent of direct damage is sufficient to destroy most of the viable bacterial population. For the purpose of the study, sublethal effect was defined as reduction of 0.5–2 log10 in CFU/ml and lethal treatment dose defined as reduction of > 2 log10 in CFU/ml compared with untreated (Cassidy et al., 2010).

Statistical Analyses

Comparisons between log10 mean changes within the treatment groups and the control were analyzed by using the non-dependent t-test. Data values were expressed as log10 means ± standard deviation and mean difference with 95% confidence interval (CI). All statistical analyses were conducted with Stata version 13.1 (StataCorp, College station, Texas, USA). The difference was considered statistically significant when P < 0.05.

Results

The Effect of Various MB Concentrations

Apart from the progressively increased survival of PS1 isolates treated with MB of 25, 50, 100, and 150 mg/L (p < 0.05) compared with the control group, there were negligible changes in the viable counts of the bacterial suspensions in the remainder (p > 0.05). None of them demonstrated bactericidal efficacy (Figure 1).

FIGURE 1
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Figure 1 The effect of various MB concentrations on each bacterial strain. MB concentrations could not exhibit the sublethal and lethal effect to all bacterial strains: (A) XDR-AB1 and AB2, (B) XDR-PS1 and PS2, and (C) MDR-KP1 and KP2. *Statistically significant difference (p-value <0.05).

The Effect of Red Light

There was no reduction of viable bacteria in any isolates at the fluences of 1 and 2 J/cm (2) of light. At fluences higher than 2 J/cm (2), reduction trend in viable counts across all the isolates was observed (Figure 2). In both strains of AB (AB1 and AB2) and PS (PS1 and PS2) and KP2, sublethal light fluences were demonstrated within the 5 to 80 J/cm (2) range, which reduced the bacterial viability by up to 1.68, 1.63, 1.69, 1.77, and 1.94 log10 units, respectively (p < 0.01). Only for KP1, the lethal dose was achieved with the highest fluence of red light (80 J/cm (2)), which led to viable count reduction by 2.12 (1.96 to 2.28) log10 units (p < 0.01). This demonstrated that red light alone had bactericidal effect on certain strains in a fluence-dependent manner.

FIGURE 2
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Figure 2 The effect of various red light fluence on each bacterial strain. This demonstrated the effect of red light on bacterial population: (A) XDR-AB1 and AB2, (B) XDR-PS1 and PS2, and (C) MDR-KP1 and KP2 in the dose-dependent manner. *Statistically significant difference (p-value <0.05).

MB-aPDT Is an Effective Treatment for Selected XDR and MDR-Gram Negative Bacteria

We demonstrated MB-dose/light fluence–dependent antibacterial effects across all the isolates (Figure 3). All clinical isolates, for both 50 and 150 mg/L of MB, lethal light fluence was defined because MB of 50 mg/L and 40 J/cm (2), leading to viable cell reduction over 2 log10, except for the PS1 and KP2 as showing only sublethal reduction by 2 (1.91 to 2.09, p < 0.001) and 1.82 (1.73 to 1.91, p < 0.001) log10, respectively (Table 1). However, when escalating the light fluence to 80 J/cm (2) with the same concentration, 50 mg/L, the greater bacterial reduction was observed in all clinical isolates, including PS1 and KP2, leading to their lethal viable cell reduction by 3.17 (3.09 to 3.26) and 2.82 (2.73 to 2.91), respectively, and 2.82 (2.72 to 2.91) log10 units for AB1 (p < 0.001), 2.83 (2.74 to 2.91) for AB2 (p < 0.001), 3.13 (3.04 to 3.22) for PS2 (p < 0.001), and 2.94 (2.88 to 3.01) log10 units for KP1 (p < 0.001). There was statistically significant difference of the viable cell reduction between red light alone and MB-aPDT groups with MB of both 50 and 150 mg/L in all clinical isolates (p < 0.001) (Table 2).

FIGURE 3
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Figure 3 Results of MB-aPDT on (A) XDR-AB1 and AB2, (B) XDR-PS1 and PS2, and (C) MDR-KP1 and KP2, with the light doses of 1, 2, 40, and 80 J/cm2 (irradiance of 65 mW/cm2, irradiation time from 0.20 to 26.40 min; λmax at 633 nm) and two MB concentrations were tested (50 and 150 mg/L). The values demonstrated were the means of triplicate measurements. *Statistically significant difference (p-value <0.05).

TABLE 1
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Table 1 Mean log10 difference of MB-aPDT group for XDR-AB, XDR-PS, and MDR-KP compared with baseline.

TABLE 2
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Table 2 Comparison of Mean log10 difference between the MB-aPDT and red light alone group for XDR-AB, XDR-PS, and MDR-KP.

Discussion

Infections in this drug resistance era further complicate wounds causing an enormous hurdle to overcome (Mulani et al., 2019). We demonstrated the promising outcomes of MB-aPDT against clinically important isolates of XDR-AB, XDR-PS, and MDR-KP from Thailand of which pathogens WHO prioritized research and development of new treatments (Medina and Pieper, 2016; Mulani et al., 2019). Looking at the reduction pattern of the bacterial viability after MB-aPDT (Figure 3), although MDR-KP appeared to be less resistant regarding the antimicrobial susceptibility pattern profiles, XDR-AB and XDR-PS generally seemed more susceptible to MB-aPDT than MDR-KP. This differential sensitivity is not, by any means, unexpected. Importantly, there were independent patterns of the aPDT susceptibility of the clinical isolates regardless of the patterns of antimicrobial resistance (Supplementary Table 2), emphasizing its known exclusive non-selective mechanism of action (Liu et al., 2015). The major advantage of PDT lies in the fact that, with appropriate fluences of light and oxygen, PSs undergo an intersystem crossing to generate triplet state oxygen molecules ( (3)O2). Reactive oxygen species (ROS), such as singlet oxygen, superoxides, and hydroxyl radicals, have a broad-spectrum effect on numerous microbial targets (Vatansever et al., 2013). This unique mechanism of action constitutes by default bactericidal effects independent of antimicrobial resistance patterns (Tegos and Hamblin, 2006; Tegos et al., 2008; Huang et al., 2012; Huang et al., 2012; Liu et al., 2015).

One beauty of PDT is one can vary PSs’ concentrations as well as light fluences, and even frequency of the treatment to tackle different pathogens. Many PSs possess unique properties. With different PSs, the effective antimicrobial properties were reported to be considerably variable in the same settings of irradiation against the same bacterial strains (Merigo et al., 2019). We particularly chose MB due to its several advantages over other PSs. The cationic charge of non-toxic MB, a derivative of phenothiazinium dyes, provides high binding affinity to multiple microbial targets, e.g., cell membrane, mitochondria, and nucleic acids (Zeina et al., 2001; Kashef et al., 2011; Vatansever et al., 2013; Liu et al., 2015). Moreover, MB is an “instant” PS, requiring no incubation period, allowing significantly shorter treatment time along with its hydrophilic polarity property rendering it a painless treatment (Castano et al., 2004; Bowornsathitchai et al., 2020). MB is also a pragmatic choice for use in most healthcare settings in which neither commercial PSs nor in-house preparation are available. In brief, MB solution for intravenous administration, which is widely available across the world, can be a viable and economical option (Kashef et al., 2011; Kawczyk-Krupka et al., 2018).

The selection of light fluences can be rather challenging as different effects have been observed, also in our study. This can be explained by biphasic biological response curve of visible light–based treatments, particularly in the red to near-infrared region whereby too low or too high fluences can lead to unwanted effects (Huang et al., 2009; Huang et al., 2011). When appropriate fluences are used, photobiomodulation (PBM) leading to photoactivation of endogenous molecules, particularly cytochrome C oxidase, subsequently activates the intracellular ROS generation, of which certain high levels may potentially cause cell damage (Huang et al., 2011; Kashef et al., 2011; Wozniak et al., 2019). This might explain why higher fluences of red light alone, 5 to 80 J/cm (2) in this study, generally reduced the bacterial population to the sublethal and lethal point. Although the lethal light dose, 80J/cm2 was achieved for KP1 without MB combined, to find the minimum effective concentration–fluence dose of MB-aPDT, we then performed the similar combinations of concentration–fluence doses to what were used for the other selected pathogens resulting in the minimum effective dose of MB-aPDT for KP1 of MB of 50 mg/L and light of 40 J/cm2.

Alongside with partial antibacterial effect, PBM can also activate multifaceted growth factors, especially extracellular transforming growth factor β, which has the crucial role for assisting wound repair. Moreover, PBM can also promote regeneration of skin appendages, epithelial migration and proliferation, endothelial migration for angiogenesis, fibroblast matrix synthesis, and wound contraction.Mosca et al., 2019 Taken together, PDT seems very promising both as monothrapy (Huang et al., 2012; Huang et al., 2012; Sperandio et al., 2013; Longo et al., 2014; Liu et al., 2015) and as an adjuvant treatment in chronic wound condition, with wide range of anti-microbial activities, especially upon otherwise drug-resistant lethal strains, and as wound healing enhancer (Gollnick et al., 2003; Weber et al., 2012; Reginato et al., 2014; Anzengruber et al., 2015; Corsi et al., 2016; Grandi et al., 2018; Oyama et al., 2020; Sun et al., 2020).

The optimum effect of MB-aPDT was also related to other factors, for example, the internalization of PS into the bacterial cell and the bacterial protective mechanism (Huang et al., 2012; Longo et al., 2014). MDR and XDR gram-negative bacteria have a unique mechanism to encounter the harmful substances by using the transmembrane proteins called multidrug resistance pumps such as AcrAB-TolC, one of the tripartite pumps expressed in Escherichia coli, MexAB-OprM in P. aeruginosa (Lewis, 1999), and kpnGH in K. pneumoniae (Srinivasan et al., 2014), that manage the efflux of amphipathic cations outside the cells, including MB. Efflux pump inhibitors (EPIs) (Tegos et al., 2008) as seemingly promising strategies have been intensely researched because the first multidrug efflux pump was identified in 1996 (Paulsen et al., 1996) yet approved for clinical use (Ughachukwu and Unekwe, 2012). Some studies suggested using electron acceptor, such as sodium azide and potassium iodide (Vecchio et al., 2015), to potentiate the aPDT outcome when MB-aPDT yields suboptimal results (Huang et al., 2012). Furthermore, certain organisms have distinctive mechanisms to protect them from deleterious exogenous causes. For example, AB, PS, and KP have an adroit capacity to rapidly adapt themselves from planktonic to biofilm phase and quorum sensing against the injury (Longo et al., 2014). These might somehow explain the different number of reductions in our study when using the same MB-aPDT setting on each bacterial strain.

In addition, sublethal and lethal parameters of aPDT also affect the frequency and duration of aPDT protocol. Recent studies showed that repetitive uses of sublethal doses of aPDT potentially lead to tolerance adaptation (Leanse et al., 2018; Pieranski et al., 2020) of bacteria through multiple metabolic pathways, e.g., cell wall biogenesis, DNA recombination/repair (Kashef and Hamblin, 2017), and a stimulation of biofilm formation (Schembri et al., 2003; Murphy et al., 2005; Wen et al., 2005; Villa et al., 2012; Hendiani et al., 2019). This situation is dissimilar to the mechanism of bacterial resistance in which the bacteria are still eliminated but require more frequency and higher light fluences. Thus, antimicrobial photoinactivation essentially needs precise application of the lethal doses of MB and red light combined to minimize this phenomenon. Our suggested lethal concentration–fluence dose of 50 mg/L with 80 J/cm (2) from this study might be useful as a starting reference for clinical application and further development of an optimal aPDT protocol.

Other aPDT protocols against ESKAPE pathogens employing different PSs and lights have been published both as in vitro and in vivo studies (Dai et al., 2009; Huang et al., 2014; Maisch et al., 2014; Zhang et al., 2014; Boluki et al., 2017; Khan et al., 2017; Yuan et al., 2017; Pereira et al., 2018; Yang et al., 2018; Hendiani et al., 2019; Marcolan De Mello et al., 2019a; Wozniak et al., 2019). Most PSs used were of phenothiazinium-based dyes, including MB, Rose Bengal (RB), and toluene blue O (TBO). Similar to our study yet using one concentration of MB coupled with variable fluences and step ranges of red light against a wide range of global priority drug-resistant bacteria including ESKAPE pathogens and two yeast species, Candida albicans and Cryptococcus neoformans, Sabino CP et al. (Huang et al., 2012; St Denis et al., 2013; Sarker et al., 2021) successfully demonstrated the efficacy of MB-aPDT against across all the selected strains in species-specific dose–response kinetics regardless of drug-resistance profiles. The improvement of the efficacy of MB-aPDT was observed with the addition of some chemical compounds (Vecchio et al., 2015) including an inert inorganic salt potassium iodide (KI) (Vecchio et al., 2015), which seems to be safe for future clinical application. With different combined additives, Sarker et al. (Ishiwata et al., 2021) have recently reported the efficacy of MB-aPDT with three once-daily treatment sessions in controlling burn wounds infected with PS from the wound surface to the region deeper than 1,200 μm in the hypodermis in rats. Ishiwata et al. (2021) have demonstrated the importance of repetitive MB-aPDT application, which was given every 24 h for 7 consecutive days for controlling bacterial migration and extending the survival of rats with an extensive deep burn wound infected with PS. Wozniak et al. (2019) reported aPDT using RB, coupled with green light (λmax, 515 nm) on XDR-AB. In another study De Mello et al. performed MB-aPDT against MDR-AB (Marcolan De Mello et al., 2019b). A study by Boluki et al. (2017) demonstrated successful bactericidal activity of sublethal aPDT using TBO, with red light–emitting diode (λmax, 630 nm) in a combination with colistin against PDR-AB (Park et al., 2011). Moreover, in addition to the efficacy of aPDT against bacteria, PDT is also a powerful weapon against superficial mycoses, either dermatophytes or non-dermatophytes. Recent systematic review showed that MB-PDT is as efficacious if not superior to ALA and MAL when treating onychomycosis (Shen et al., 2020).

The strengths of our study are that, first, we demonstrated the effects of MB in various concentrations, red light, and the combination of the two, and MB-aPDT against locally isolated XDR-AB, XDR-PS, and MDR-KP. All the strains used were all clinical isolates that should well represent pathogens of clinical concerns particularly in our local region. However, there were some limitations worth mentioning here. The bacterial strains utilized in the study were isolated from various settings rather than entirely from chronic wounds. Second, the process of PS incorporation into the bacterial cells in the laboratory experiments might be different from actual clinical scenarios. Third, we used only MB and red light in our study. Other PSs and light sources should be investigated in the future. Last, we investigated “single” PDT regimen, while in fact, the painless nature and short-irradiation protocol may allow for repeat treatments, adding even further benefits in clinical settings.

Conclusion

MB-aPDT evidently killed the selected XDR and MDR-gram negative bacteria. In a highly drug-resistant crisis era, MB-aPDT could be one of the promising options, particularly for local infections and infection complicating chronic wounds with one suggested combination of MB of 50 mg/L and red light of 80 J/cm (2) of red light as a guide to begin with. Both in vitro study for other MDR-bacteria and in vivo study to establish precise PDT protocol for effective antimicrobial and wound healing purposes are to be investigated.

Data Availability Statement

The original contributions presented in the study are included in the article/Supplementary Material. Further inquiries can be directed to the corresponding author.

Ethics Statement

No human studies are presented in the manuscript. However, the study protocol was approved by the Institutional Review Board of Faculty of Medicine, Chulalongkorn University.

Author Contributions

EB contributed to conception, design of the study, resources, manuscript editing and revision, supervision, and submission. CS organized the database, performed the statistical analysis, and wrote the first draft of the manuscript. PA supervised and edited the manuscript. JV shared resources. TC supervised laboratory tasks. All authors contributed to the article and approved the submitted version.

Funding

The study was supported by Ratchadapisek Sompoch Endowment Fund, RA 63/086, Faculty of Medicine, Chulalongkorn University.

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.

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.

Acknowledgments

We would like to thank N. Kueakulpattana and M. Laowansiri (Antimicrobial Resistance and Stewardship Research Unit, Department of Microbiology, Faculty of Medicine, Chulalongkorn University, Bangkok, Thailand) for organizing and providing their expertise in all the laboratory tasks.

Supplementary Material

The Supplementary Material for this article can be found online at: https://www.frontiersin.org/articles/10.3389/fcimb.2022.929242/full#supplementary-material

References

Alberdi, E., Gomez, C. (2020). Methylene Blue vs Methyl Aminolevulinate Photodynamic Therapy in Combination With Oral Terbinafine in the Treatment of Severe Dermatophytic Toenail Onychomycosis: Short- and Long-Term Effects. Mycoses 63, 859–868. doi: 10.1111/myc.13125

PubMed Abstract | CrossRef Full Text | Google Scholar

Anzengruber, F., Avci, P., de Freitas, L. F., Hamblin, M. R. (2015). T-Cell Mediated Anti-Tumor Immunity After Photodynamic Therapy: Why Does it Not Always Work and How can We Improve it? Photochem. Photobiol. Sci. 14, 1492–1509. doi: 10.1039/c4pp00455h

PubMed Abstract | CrossRef Full Text | Google Scholar

Basu, S., Ramchuran Panray, T., Bali Singh, T., Gulati, A. K., Shukla, V. K. (2009). A Prospective, Descriptive Study to Identify the Microbiological Profile of Chronic Wounds in Outpatients. Ostomy Wound Manage 55, 14–20.

PubMed Abstract | Google Scholar

Boluki, E., Kazemian, H., Peeridogaheh, H., Alikhani, M. Y., Shahabi, S., Beytollahi, L., et al. (2017). Antimicrobial Activity of Photodynamic Therapy in Combination With Colistin Against a Pan-Drug Resistant Acinetobacter Baumannii Isolated From Burn Patient. Photodiagnosis Photodyn. Ther. 18, 1–5. doi: 10.1016/j.pdpdt.2017.01.003

PubMed Abstract | CrossRef Full Text | Google Scholar

Bowornsathitchai, N., Thammahong, A., Shoosanglertwijit, J., Kitsongsermthon, J., Wititsuwannakul, J., Asawanonda, P., et al. (2020). Methylene Blue-Mediated Photodynamic Therapy may be Superior to 5% Amorolfine Nail Lacquer for non-Dermatophyte Onychomycosis. Photodermatol Photoimmunol Photomed. doi: 10.1111/phpp.12624

PubMed Abstract | CrossRef Full Text | Google Scholar

Bush, K., Jacoby, G. A. (2010). Updated Functional Classification of Beta-Lactamases. Antimicrob. Agents Chemother. 54, 969–976. doi: 10.1128/AAC.01009-09

PubMed Abstract | CrossRef Full Text | Google Scholar

Cassidy, C. M., Donnelly, R. F., Tunney, M. M. (2010). Effect of Sub-Lethal Challenge With Photodynamic Antimicrobial Chemotherapy (PACT) on the Antibiotic Susceptibility of Clinical Bacterial Isolates. J. Photochem. Photobiol. B 99, 62–66. doi: 10.1016/j.jphotobiol.2010.02.004

PubMed Abstract | CrossRef Full Text | Google Scholar

Castano, A. P., Demidova, T. N., Hamblin, M. R. (2004). Mechanisms in Photodynamic Therapy: Part One-Photosensitizers, Photochemistry and Cellular Localization. Photodiagnosis Photodyn. Ther. 1, 279–293. doi: 10.1016/S1572-1000(05)00007-4

PubMed Abstract | CrossRef Full Text | Google Scholar

Corsi, A., Lecci, P. P., Bacci, S., Cappugi, P., Pimpinelli, N. (2016). Early Activation of Fibroblasts During PDT Treatment in Leg Ulcers. G Ital Dermatol. Venereol 151, 223–229.

PubMed Abstract | Google Scholar

Dai, T., Huang, Y. Y., Hamblin, M. R. (2009). Photodynamic Therapy for Localized Infections–State of the Art. Photodiagnosis Photodyn. Ther. 6, 170–188. doi: 10.1016/j.pdpdt.2009.10.008

PubMed Abstract | CrossRef Full Text | Google Scholar

Dijkshoorn, L., Nemec, A., Seifert, H. (2007). An Increasing Threat in Hospitals: Multidrug-Resistant Acinetobacter Baumannii. Nat. Rev. Microbiol. 5, 939–951. doi: 10.1038/nrmicro1789

PubMed Abstract | CrossRef Full Text | Google Scholar

Driscoll, J. A., Brody, S. L., Kollef, M. H. (2007). The Epidemiology, Pathogenesis and Treatment of Pseudomonas Aeruginosa Infections. Drugs 67, 351–368. doi: 10.2165/00003495-200767030-00003

PubMed Abstract | CrossRef Full Text | Google Scholar

Fu, X. (2005). Skin Ulcers in Lower Extremities: The Epidemiology and Management in China. Int. J. Low Extrem Wounds 4, 4–6. doi: 10.1177/1534734605274659

PubMed Abstract | CrossRef Full Text | Google Scholar

Galac, M. R., Snesrud, E., Lebreton, F., Stam, J., Julius, M., Ong, A. C., et al. (2020). A Diverse Panel of Clinical Acinetobacter Baumannii for Research and Development. Antimicrob. Agents Chemother. 64, e00840–20. doi: 10.1128/AAC.00840-20

PubMed Abstract | CrossRef Full Text | Google Scholar

Gollnick, S. O., Evans, S. S., Baumann, H., Owczarczak, B., Maier, P., Vaughan, L., et al. (2003). Role of Cytokines in Photodynamic Therapy-Induced Local and Systemic Inflammation. Br. J. Cancer 88, 1772–1779. doi: 10.1038/sj.bjc.6600864

PubMed Abstract | CrossRef Full Text | Google Scholar

Grandi, V., Bacci, S., Corsi, A., Sessa, M., Puliti, E., Murciano, N., et al. (2018). ALA-PDT Exerts Beneficial Effects on Chronic Venous Ulcers by Inducing Changes in Inflammatory Microenvironment, Especially Through Increased TGF-Beta Release: A Pilot Clinical and Translational Study. Photodiagnosis Photodyn. Ther. 21, 252–256. doi: 10.1016/j.pdpdt.2017.12.012

PubMed Abstract | CrossRef Full Text | Google Scholar

Guan, H., Dong, W., Lu, Y., Jiang, M., Zhang, D., Aobuliaximu, Y., et al. (2021). Distribution and Antibiotic Resistance Patterns of Pathogenic Bacteria in Patients With Chronic Cutaneous Wounds in China. Front. Med. (Lausanne) 8, 609584. doi: 10.3389/fmed.2021.609584

PubMed Abstract | CrossRef Full Text | Google Scholar

Hendiani, S., Rybtke, M. L., Tolker-Nielsen, T., Kashef, N. (2019). Sub-Lethal Antimicrobial Photodynamic Inactivation Affects Pseudomonas Aeruginosa PAO1 Quorum Sensing and Cyclic Di-GMP Regulatory Systems. Photodiagnosis Photodyn. Ther. 27, 467–473. doi: 10.1016/j.pdpdt.2019.07.025

PubMed Abstract | CrossRef Full Text | Google Scholar

Huang, Y. Y., Chen, A. C., Carroll, J. D., Hamblin, M. R. (2009). Biphasic Dose Response in Low Level Light Therapy. Dose Response 7, 358–383. doi: 10.2203/dose-response.09-027.Hamblin

PubMed Abstract | CrossRef Full Text | Google Scholar

Huang, Y. Y., Sharma, S. K., Carroll, J., Hamblin, M. R. (2011). Biphasic Dose Response in Low Level Light Therapy - an Update. Dose Response 9, 602–618. doi: 10.2203/dose-response.11-009.Hamblin

PubMed Abstract | CrossRef Full Text | Google Scholar

Huang, L., St Denis, T. G., Xuan, Y., Huang, Y. Y., Tanaka, M., Zadlo, A., et al. (2012). Paradoxical Potentiation of Methylene Blue-Mediated Antimicrobial Photodynamic Inactivation by Sodium Azide: Role of Ambient Oxygen and Azide Radicals. Free Radic. Biol. Med. 53, 2062–2071. doi: 10.1016/j.freeradbiomed.2012.09.006

PubMed Abstract | CrossRef Full Text | Google Scholar

Huang, L., Wang, M., Dai, T., Sperandio, F. F., Huang, Y. Y., Xuan, Y., et al. (2014). Antimicrobial Photodynamic Therapy With Decacationic Monoadducts and Bisadducts of [70]Fullerene: In Vitro and In Vivo Studies. Nanomedicine (Lond) 9, 253–266. doi: 10.2217/nnm.13.22

PubMed Abstract | CrossRef Full Text | Google Scholar

Huang, L., Xuan, Y., Koide, Y., Zhiyentayev, T., Tanaka, M., Hamblin, M. R. (2012). Type I and Type II Mechanisms of Antimicrobial Photodynamic Therapy: An In Vitro Study on Gram-Negative and Gram-Positive Bacteria. Lasers Surg. Med. 44, 490–499. doi: 10.1002/lsm.22045

PubMed Abstract | CrossRef Full Text | Google Scholar

Hutchings, M. I., Truman, A. W., Wilkinson, B. (2019). Antibiotics: Past, Present and Future. Curr. Opin. Microbiol. 51, 72–80. doi: 10.1016/j.mib.2019.10.008

PubMed Abstract | CrossRef Full Text | Google Scholar

Ishiwata, N., Tsunoi, Y., Sarker, R. R., Haruyama, Y., Kawauchi, S., Sekine, Y., et al. (2021). Control of Burn Wound Infection by Methylene Blue-Mediated Photodynamic Treatment With Light-Emitting Diode Array Illumination in Rats. Lasers Surg. Med. 53, 1238–1246. doi: 10.1002/lsm.23395

PubMed Abstract | CrossRef Full Text | Google Scholar

Jiang, Y., Huang, S., Fu, X., Liu, H., Ran, X., Lu, S., et al. (2011). Epidemiology of Chronic Cutaneous Wounds in China. Wound Repair Regener. 19, 181–188. doi: 10.1111/j.1524-475X.2010.00666.x

CrossRef Full Text | Google Scholar

Jouhar, L., Jaafar, R. F., Nasreddine, R., Itani, O., Haddad, F., Rizk, N., et al. (2020). Microbiological Profile and Antimicrobial Resistance Among Diabetic Foot Infections in Lebanon. Int. Wound J. 17, 1764–1773. doi: 10.1111/iwj.13465

PubMed Abstract | CrossRef Full Text | Google Scholar

Kashef, N., Esmaeeli Djavid, G., Siroosy, M., Taghi Khani, A., Hesami Zokai, F., Fateh, M. (2011). Photodynamic Inactivation of Drug-Resistant Bacteria Isolated From Diabetic Foot Ulcers. Iran J. Microbiol. 3, 36–41.

PubMed Abstract | Google Scholar

Kashef, N., Hamblin, M. R. (2017). Can Microbial Cells Develop Resistance to Oxidative Stress in Antimicrobial Photodynamic Inactivation? Drug Resist. Update 31 (1), 31–42. doi: 10.1016/j.drup.2017.07.003

CrossRef Full Text | Google Scholar

Kawczyk-Krupka, A., Pucelik, B., Miedzybrodzka, A., Sieron, A. R., Dabrowski, J. M. (2018). Photodynamic Therapy as an Alternative to Antibiotic Therapy for the Treatment of Infected Leg Ulcers. Photodiagnosis Photodyn. Ther. 23, 132–143. doi: 10.1016/j.pdpdt.2018.05.001

PubMed Abstract | CrossRef Full Text | Google Scholar

Kerr, K. G., Snelling, A. M. (2009). Pseudomonas Aeruginosa: A Formidable and Ever-Present Adversary. J. Hosp Infect. 73, 338–344. doi: 10.1016/j.jhin.2009.04.020

PubMed Abstract | CrossRef Full Text | Google Scholar

Khan, S., Khan, S. N., Meena, R., Dar, A. M., Pal, R., Khan, A. U. (2017). Photoinactivation of Multidrug Resistant Bacteria by Monomeric Methylene Blue Conjugated Gold Nanoparticles. J. Photochem. Photobiol. B: Biol. 174, 150–161. doi: 10.1016/j.jphotobiol.2017.07.011

CrossRef Full Text | Google Scholar

Kiyaga, S., Kyany'a, C., Muraya, A. W., Smith, H. J., Mills, E. G., Kibet, C., et al. (2022). Genetic Diversity, Distribution, and Genomic Characterization of Antibiotic Resistance and Virulence of Clinical Pseudomonas Aeruginosa Strains in Kenya. Front. Microbiol. 13, 835403. doi: 10.3389/fmicb.2022.835403

PubMed Abstract | CrossRef Full Text | Google Scholar

Leanse, L. G., Harrington, O. D., Fang, Y., Ahmed, I., Goh, X. S., Dai, T. (2018). Evaluating the Potential for Resistance Development to Antimicrobial Blue Light (at 405 Nm) in Gram-Negative Bacteria: In Vitro and In Vivo Studies. Front. Microbiol. 9, 2403. doi: 10.3389/fmicb.2018.02403

PubMed Abstract | CrossRef Full Text | Google Scholar

Lebreton, F., Snesrud, E., Hall, L., Mills, E., Galac, M., Stam, J., et al. (2021). A Panel of Diverse Pseudomonas Aeruginosa Clinical Isolates for Research and Development. JAC Antimicrob. Resist. 3, dlab179. doi: 10.1093/jacamr/dlab179

PubMed Abstract | CrossRef Full Text | Google Scholar

Lewis, K. (1999). Multidrug Resistance: Versatile Drug Sensors of Bacterial Cells. Curr. Biol. 9, R403–R407. doi: 10.1016/S0960-9822(99)80254-1

PubMed Abstract | CrossRef Full Text | Google Scholar

Li, X., Qi, X., Yuan, G., Ju, S., Yu, Z., Deng, W., et al. (2018). Microbiological Profile and Clinical Characteristics of Diabetic Foot Infection in Northern China: A Retrospective Multicentre Survey in the Beijing Area. J. Med. Microbiol. 67(3), 160–168. doi: 10.1099/jmm.0.000658

PubMed Abstract | CrossRef Full Text | Google Scholar

Liu, Y., Qin, R., Zaat, S. A. J., Breukink, E., Heger, M. (2015). Antibacterial Photodynamic Therapy: Overview of a Promising Approach to Fight Antibiotic-Resistant Bacterial Infections. J. Clin. Transl. Res. 1 (3), 140–167.

PubMed Abstract | Google Scholar

Longo, F., Vuotto, C., Donelli, G. (2014). Biofilm Formation in Acinetobacter Baumannii. New Microbiol. 37 (2), 119–127.

PubMed Abstract | Google Scholar

Maisch, T., Eichner, A., Spath, A., Gollmer, A., Konig, B., Regensburger, J., et al. (2014). Fast and Effective Photodynamic Inactivation of Multiresistant Bacteria by Cationic Riboflavin Derivatives. PLoS One 9, e111792. doi: 10.1371/journal.pone.0111792

PubMed Abstract | CrossRef Full Text | Google Scholar

Marcolan De Mello, M., De Barros, P. P., de Cassia Bernardes, R., Alves, S. R., Ramanzini, N. P., Figueiredo-Godoi, L. M. A., et al. (2019a). Antimicrobial Photodynamic Therapy Against Clinical Isolates of Carbapenem-Susceptible and Carbapenem-Resistant Acinetobacter Baumannii. Lasers Med. Sci. doi: 10.1007/s10103-019-02773-w

PubMed Abstract | CrossRef Full Text | Google Scholar

Medina, E., Pieper, D. H. (2016). Tackling Threats and Future Problems of Multidrug-Resistant Bacteria. Curr. Top. Microbiol. Immunol. 398, 3–33. doi: 10.1007/82_2016_492

PubMed Abstract | CrossRef Full Text | Google Scholar

Merigo, E., Conti, S., Ciociola, T., Manfredi, M., Vescovi, P., Fornaini, C. (2019). Antimicrobial Photodynamic Therapy Protocols on Streptococcus Mutans With Different Combinations of Wavelengths and Photosensitizing Dyes. Bioengineering (Basel) 6 (2), 42. doi: 10.3390/bioengineering6020042

CrossRef Full Text | Google Scholar

Mosca, R. C., Ong, A. A., Albasha, O., Bass, K., Arany, P. (2019). Photobiomodulation Therapy for Wound Care: A Potent, Noninvasive, Photoceutical Approach. Adv. Skin Wound Care 32, 157–167. doi: 10.1097/01.ASW.0000553600.97572.d2

PubMed Abstract | CrossRef Full Text | Google Scholar

Mulani, M. S., Kamble, E. E., Kumkar, S. N., Tawre, M. S., Pardesi, K. R. (2019). Emerging Strategies to Combat ESKAPE Pathogens in the Era of Antimicrobial Resistance: A Review. Front. Microbiol. 10, 539. doi: 10.3389/fmicb.2019.00539

PubMed Abstract | CrossRef Full Text | Google Scholar

Murphy, T. F., Kirkham, C., Sethi, S., Lesse, A. J. (2005). Expression of a Peroxiredoxin-Glutaredoxin by Haemophilus Influenzae in Biofilms and During Human Respiratory Tract Infection. FEMS Immunol. Med. Microbiol. 44, 81–89. doi: 10.1016/j.femsim.2004.12.008

PubMed Abstract | CrossRef Full Text | Google Scholar

Oyama, J., Fernandes Herculano Ramos-Milare, A. C., Lopes Lera-Nonose, D. S. S., Nesi-Reis, V., Galhardo Demarchi, I., Alessi Aristides, S. M., et al. (2020). Photodynamic Therapy in Wound Healing In Vivo: A Systematic Review. Photodiagnosis Photodyn. Ther. 2020, 101682. doi: 10.1016/j.pdpdt.2020.101682

CrossRef Full Text | Google Scholar

Park, Y. K., Choi, J. Y., Shin, D., Ko, K. S. (2011). Correlation Between Overexpression and Amino Acid Substitution of the PmrAB Locus and Colistin Resistance in Acinetobacter Baumannii. Int. J. Antimicrob. Agents 37, 525–530. doi: 10.1016/j.ijantimicag.2011.02.008

PubMed Abstract | CrossRef Full Text | Google Scholar

Paulsen, I. T., Brown, M. H., Skurray, R. A. (1996). Proton-Dependent Multidrug Efflux Systems. Microbiol. Rev. 60, 575–608. doi: 10.1128/mr.60.4.575-608.1996

PubMed Abstract | CrossRef Full Text | Google Scholar

Pereira, A. H. C., Pinto, J. G., Freitas, M. A. A., Fontana, L. C., Pacheco Soares, C., Ferreira-Strixino, J. (2018). Methylene Blue Internalization and Photodynamic Action Against Clinical and ATCC Pseudomonas Aeruginosa and Staphyloccocus Aureus Strains. Photodiagnosis Photodyn. Ther. 22, 43–50. doi: 10.1016/j.pdpdt.2018.02.008

PubMed Abstract | CrossRef Full Text | Google Scholar

Pieranski, M., Sitkiewicz, I., Grinholc, M. (2020). Increased Photoinactivation Stress Tolerance of Streptococcus Agalactiae Upon Consecutive Sublethal Phototreatments. Free Radic. Biol. Med. 160, 657–669. doi: 10.1016/j.freeradbiomed.2020.09.003

PubMed Abstract | CrossRef Full Text | Google Scholar

Prescott, J. F. (2014). The Resistance Tsunami, Antimicrobial Stewardship, and the Golden Age of Microbiology. Vet. Microbiol. 171, 273–278. doi: 10.1016/j.vetmic.2014.02.035

PubMed Abstract | CrossRef Full Text | Google Scholar

Ramirez, M. S., Bonomo, R. A., Tolmasky, M. E. (2020). Carbapenemases: Transforming Acinetobacter Baumannii Into a Yet More Dangerous Menace. Biomolecules 10 (5), 720. doi: 10.3390/biom10050720

CrossRef Full Text | Google Scholar

Reginato, E., Wolf, P., Hamblin, M. R. (2014). Immune Response After Photodynamic Therapy Increases Anti-Cancer and Anti-Bacterial Effects. World J. Immunol. 4, 1–11. doi: 10.5411/wji.v4.i1.1

PubMed Abstract | CrossRef Full Text | Google Scholar

Rice, L. B. (2008). Federal Funding for the Study of Antimicrobial Resistance in Nosocomial Pathogens: No ESKAPE. J. Infect. Dis. 197, 1079–1081. doi: 10.1086/533452

PubMed Abstract | CrossRef Full Text | Google Scholar

Sarker, R. R., Tsunoi, Y., Haruyama, Y., Ichiki, Y., Sato, S., Nishidate, I. (2021). Combined Addition of Ethanol and Ethylenediaminetetraacetic Acid Enhances Antibacterial and Antibiofilm Effects in Methylene Blue-Mediated Photodynamic Treatment Against Pseudomonas Aeruginosa In Vitro. Photochem. Photobiol. 97, 600–606. doi: 10.1111/php.13358

PubMed Abstract | CrossRef Full Text | Google Scholar

Schembri, M. A., Hjerrild, L., Gjermansen, M., Klemm, P. (2003). Differential Expression of the Escherichia Coli Autoaggregation Factor Antigen 43. J. Bacteriol 185, 2236–2242. doi: 10.1128/JB.185.7.2236-2242.2003

PubMed Abstract | CrossRef Full Text | Google Scholar

Shen, J. J., Jemec, G. B. E., Arendrup, M. C., Saunte, D. M. L. (2020). Photodynamic Therapy Treatment of Superficial Fungal Infections: A Systematic Review. Photodiagnosis Photodyn. Ther. 31, 101774. doi: 10.1016/j.pdpdt.2020.101774

PubMed Abstract | CrossRef Full Text | Google Scholar

Sperandio, F. F., Huang, Y. Y., Hamblin, M. R. (2013). Antimicrobial Photodynamic Therapy to Kill Gram-Negative Bacteria. Recent Pat. Antiinfect Drug Discovery 8, 108–120. doi: 10.2174/1574891X113089990012

CrossRef Full Text | Google Scholar

Srinivasan, V. B., Singh, B. B., Priyadarshi, N., Chauhan, N. K., Rajamohan, G. (2014). Role of Novel Multidrug Efflux Pump Involved in Drug Resistance in Klebsiella Pneumoniae. PLoS One 9, e96288. doi: 10.1371/journal.pone.0096288

PubMed Abstract | CrossRef Full Text | Google Scholar

St Denis, T. G., Vecchio, D., Zadlo, A., Rineh, A., Sadasivam, M., Avci, P., et al. (2013). Thiocyanate Potentiates Antimicrobial Photodynamic Therapy: In Situ Generation of the Sulfur Trioxide Radical Anion by Singlet Oxygen. Free Radic. Biol. Med. 65, 800–810. doi: 10.1016/j.freeradbiomed.2013.08.162

PubMed Abstract | CrossRef Full Text | Google Scholar

Subedi, D., Vijay, A. K., Kohli, G. S., Rice, S. A., Willcox, M. (2018). Comparative Genomics of Clinical Strains of Pseudomonas Aeruginosa Strains Isolated From Different Geographic Sites. Sci. Rep. 8, 15668. doi: 10.1038/s41598-018-34020-7

PubMed Abstract | CrossRef Full Text | Google Scholar

Sugandhi, P., Prasanth, D. A. (2014). Microbiological Profile of Bacterial Pathogens From Diabetic Foot Infections in Tertiary Care Hospitals, Salem. Diabetes Metab. Syndr. 8, 129–132. doi: 10.1016/j.dsx.2014.07.004

PubMed Abstract | CrossRef Full Text | Google Scholar

Sun, Y., Ogawa, R., Xiao, B. H., Feng, Y. X., Wu, Y., Chen, L. H., et al. (2020). Antimicrobial Photodynamic Therapy in Skin Wound Healing: A Systematic Review of Animal Studies. Int. Wound J. 17, 285–299. doi: 10.1111/iwj.13269

PubMed Abstract | CrossRef Full Text | Google Scholar

Tacconelli, E., Carrara, E., Savoldi, A., Harbarth, S., Mendelson, M., Monnet, D. L., et al. (2018). Discovery, Research, and Development of New Antibiotics: The WHO Priority List of Antibiotic-Resistant Bacteria and Tuberculosis. Lancet Infect. Dis. 18, 318–327. doi: 10.1016/S1473-3099(17)30753-3

PubMed Abstract | CrossRef Full Text | Google Scholar

Tegos, G. P., Hamblin, M. R. (2006). Phenothiazinium Antimicrobial Photosensitizers are Substrates of Bacterial Multidrug Resistance Pumps. Antimicrob. Agents Chemother. 50, 196–203. doi: 10.1128/AAC.50.1.196-203.2006

PubMed Abstract | CrossRef Full Text | Google Scholar

Tegos, G. P., Masago, K., Aziz, F., Higginbotham, A., Stermitz, F. R., Hamblin, M. R. (2008). Inhibitors of Bacterial Multidrug Efflux Pumps Potentiate Antimicrobial Photoinactivation. Antimicrob. Agents Chemother. 52, 3202–3209. doi: 10.1128/AAC.00006-08

PubMed Abstract | CrossRef Full Text | Google Scholar

Tekin, R., Dal, T., Bozkurt, F., Deveci, O., Palanc, Y., Arslan, E., et al. (2014). Risk Factors for Nosocomial Burn Wound Infection Caused by Multidrug Resistant Acinetobacter Baumannii. J. Burn Care Res. 35, e73–e80. doi: 10.1097/BCR.0b013e31828a493f

PubMed Abstract | CrossRef Full Text | Google Scholar

Ughachukwu, P., Unekwe, P. (2012). Efflux Pump-Mediated Resistance in Chemotherapy. Ann. Med. Health Sci. Res. 2, 191–198. doi: 10.4103/2141-9248.105671

PubMed Abstract | CrossRef Full Text | Google Scholar

Vatansever, F., de Melo, W. C., Avci, P., Vecchio, D., Sadasivam, M., Gupta, A., et al. (2013). Antimicrobial Strategies Centered Around Reactive Oxygen Species–Bactericidal Antibiotics, Photodynamic Therapy, and Beyond. FEMS Microbiol. Rev. 37, 955–989. doi: 10.1111/1574-6976.12026

PubMed Abstract | CrossRef Full Text | Google Scholar

Vecchio, D., Gupta, A., Huang, L., Landi, G., Avci, P., Rodas, A., et al. (2015). Bacterial Photodynamic Inactivation Mediated by Methylene Blue and Red Light is Enhanced by Synergistic Effect of Potassium Iodide. Antimicrob. Agents Chemother. 59, 5203–5212. doi: 10.1128/AAC.00019-15

PubMed Abstract | CrossRef Full Text | Google Scholar

Villa, F., Remelli, W., Forlani, F., Gambino, M., Landini, P., Cappitelli, F. (2012). Effects of Chronic Sub-Lethal Oxidative Stress on Biofilm Formation by Azotobacter Vinelandii. Biofouling 28, 823–833. doi: 10.1080/08927014.2012.715285

PubMed Abstract | CrossRef Full Text | Google Scholar

Wang, C. H., Hsieh, Y. H., Powers, Z. M., Kao, C. Y. (2020). Defeating Antibiotic-Resistant Bacteria: Exploring Alternative Therapies for a Post-Antibiotic Era. Int. J. Mol. Sci. 21 (3), 1061. doi: 10.3390/ijms21031061

CrossRef Full Text | Google Scholar

Weinstein, MP (2021). Clinical, Laboratory Standards I. Performance standards for antimicrobial susceptibility testing. 31st edition. ed. Wayne, Pennsylvania: Clinical and Laboratory Standards Institute,. xxxii, 316, illustrations p.

Google Scholar

Weber, C. E., Li, N. Y., Wai, P. Y., Kuo, P. C. (2012). Epithelial-Mesenchymal Transition, TGF-Beta, and Osteopontin in Wound Healing and Tissue Remodeling After Injury. J. Burn Care Res. 33, 311–318. doi: 10.1097/BCR.0b013e318240541e

PubMed Abstract | CrossRef Full Text | Google Scholar

Wen, Z. T., Suntharaligham, P., Cvitkovitch, D. G., Burne, R. A. (2005). Trigger Factor in Streptococcus Mutans is Involved in Stress Tolerance, Competence Development, and Biofilm Formation. Infect. Immun. 73, 219–225. doi: 10.1128/IAI.73.1.219-225.2005

PubMed Abstract | CrossRef Full Text | Google Scholar

Wozniak, A., Rapacka-Zdonczyk, A., Mutters, N. T., Grinholc, M. (2019). Antimicrobials Are a Photodynamic Inactivation Adjuvant for the Eradication of Extensively Drug-Resistant Acinetobacter Baumannii. Front. Microbiol. 10, 229. doi: 10.3389/fmicb.2019.00229

PubMed Abstract | CrossRef Full Text | Google Scholar

Yang, M. Y., Chang, K. C., Chen, L. Y., Hu, A. (2018). Low-Dose Blue Light Irradiation Enhances the Antimicrobial Activities of Curcumin Against Propionibacterium Acnes. J. Photochem. Photobiol. B 189, 21–28. doi: 10.1016/j.jphotobiol.2018.09.021

PubMed Abstract | CrossRef Full Text | Google Scholar

Yuan, Y., Liu, Z. Q., Jin, H., Sun, S., Liu, T. J., Wang, X., et al. (2017). Photodynamic Antimicrobial Chemotherapy With the Novel Amino Acid-Porphyrin Conjugate 4I: In Vitro and In Vivo Studies. PLoS One 12, e0176529. doi: 10.1371/journal.pone.0176529

PubMed Abstract | CrossRef Full Text | Google Scholar

Zeina, B., Greenman, J., Purcell, W. M., Das, B. (2001). Killing of Cutaneous Microbial Species by Photodynamic Therapy. Br. J. Dermatol. 144, 274–278. doi: 10.1046/j.1365-2133.2001.04013.x

PubMed Abstract | CrossRef Full Text | Google Scholar

Zhang, H. Y., Ji, J., Tan, Y. M., Zhang, L. L., Wang, X. J., Wang, P. R., et al. (2014). Evaluation of 5-Aminolevulinic Acid-Mediated Photorejuvenation of Neck Skin. Photodiagnosis Photodyn. Ther. 11, 498–509. doi: 10.1016/j.pdpdt.2014.10.003

PubMed Abstract | CrossRef Full Text | Google Scholar

Keywords: photodynamic therapy, methylene blue (MB), antimicrobials, multidrug resistance (MDR), nosocomial infection

Citation: Songsantiphap C, Vanichanan J, Chatsuwan T, Asawanonda P and Boontaveeyuwat E (2022) Methylene Blue–Mediated Antimicrobial ​Photodynamic Therapy Against Clinical Isolates of Extensively Drug Resistant ​Gram-Negative Bacteria Causing Nosocomial Infections in Thailand, An In Vitro Study. Front. Cell. Infect. Microbiol. 12:929242. doi: 10.3389/fcimb.2022.929242

Received: 27 April 2022; Accepted: 31 May 2022;
Published: 01 July 2022.

Edited by:

Krisztina M. Papp-Wallace, United States Department of Veterans Affairs, United States

Reviewed by:

Roma Rani Sarker, Bangladesh Agricultural University, Bangladesh
Hans Bäumler, Charité Universitätsmedizin Berlin, Germany

Copyright © 2022 Songsantiphap, Vanichanan, Chatsuwan, Asawanonda and Boontaveeyuwat. 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: Einapak Boontaveeyuwat, ZWluYXBhay5iQGNodWxhLmFjLnRo

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