Literature DB >> 22846406

Blue light for infectious diseases: Propionibacterium acnes, Helicobacter pylori, and beyond?

Tianhong Dai1, Asheesh Gupta, Clinton K Murray, Mark S Vrahas, George P Tegos, Michael R Hamblin.   

Abstract

Blue light, particularly in the wavelength range of 405-470 nm, has attracted increasing attention due to its intrinsic antimicrobial effect without the addition of exogenous photosensitizers. In addition, it is commonly accepted that blue light is much less detrimental to mammalian cells than ultraviolet irradiation, which is another light-based antimicrobial approach being investigated. In this review, we discussed the blue light sensing systems in microbial cells, antimicrobial efficacy of blue light, the mechanism of antimicrobial effect of blue light, the effects of blue light on mammalian cells, and the effects of blue light on wound healing. It has been reported that blue light can regulate multi-cellular behavior involving cell-to-cell communication via blue light receptors in bacteria, and inhibit biofilm formation and subsequently potentiate light inactivation. At higher radiant exposures, blue light exhibits a broad-spectrum antimicrobial effect against both Gram-positive and Gram-negative bacteria. Blue light therapy is a clinically accepted approach for Propionibacterium acnes infections. Clinical trials have also been conducted to investigate the use of blue light for Helicobacter pylori stomach infections and have shown promising results. Studies on blue light inactivation of important wound pathogenic bacteria, including Staphylococcus aureus and Pseudomonas aeruginosa have also been reported. The mechanism of blue light inactivation of P. acnes, H. pylori, and some oral bacteria is proved to be the photo-excitation of intracellular porphyrins and the subsequent production of cytotoxic reactive oxygen species. Although it may be the case that the mechanism of blue light inactivation of wound pathogens (e.g., S. aureus, P. aeruginosa) is the same as that of P. acnes, this hypothesis has not been rigorously tested. Limited and discordant results have been reported regarding the effects of blue light on mammalian cells and wound healing. Under certain wavelengths and radiant exposures, blue light may cause cell dysfunction by the photo-excitation of blue light sensitizing chromophores, including flavins and cytochromes, within mitochondria or/and peroxisomes. Further studies should be performed to optimize the optical parameters (e.g., wavelength, radiant exposure) to ensure effective and safe blue light therapies for infectious disease. In addition, studies are also needed to verify the lack of development of microbial resistance to blue light.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22846406      PMCID: PMC3438385          DOI: 10.1016/j.drup.2012.07.001

Source DB:  PubMed          Journal:  Drug Resist Updat        ISSN: 1368-7646            Impact factor:   18.500


  79 in total

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Authors:  Patrice Savard; Ramya Gopinath; Wenming Zhu; Brandon Kitchel; J Kamile Rasheed; Tsigereda Tekle; Ava Roberts; Tracy Ross; Jafar Razeq; B Mark Landrum; Lucy E Wilson; Brandi Limbago; Trish M Perl; Karen C Carroll
Journal:  Antimicrob Agents Chemother       Date:  2011-10-03       Impact factor: 5.191

2.  Clinical Efficacy of Self-applied Blue Light Therapy for Mild-to-Moderate Facial Acne.

Authors:  Michael H Gold; Anneke Andriessen; Julie Biron; Hinke Andriessen
Journal:  J Clin Aesthet Dermatol       Date:  2009-03

3.  Blue light induces mitochondrial DNA damage and free radical production in epithelial cells.

Authors:  Bernard F Godley; Farrukh A Shamsi; Fong-Qi Liang; Stuart G Jarrett; Sallyanne Davies; Mike Boulton
Journal:  J Biol Chem       Date:  2005-03-29       Impact factor: 5.157

4.  In vitro bactericidal effects of 405-nm and 470-nm blue light.

Authors:  J Stephen Guffey; Jay Wilborn
Journal:  Photomed Laser Surg       Date:  2006-12       Impact factor: 2.796

5.  Effects of 420-nm intense pulsed light in an acne animal model.

Authors:  X Fan; Y-Z Xing; L-H Liu; C Liu; D-D Wang; R-Y Yang; M Lapidoth
Journal:  J Eur Acad Dermatol Venereol       Date:  2012-02-25       Impact factor: 6.166

6.  Effect of antiseptics, ultraviolet light and lavage on airborne bacteria in a model wound.

Authors:  G J Taylor; J P Leeming; G C Bannister
Journal:  J Bone Joint Surg Br       Date:  1993-09

7.  Visible light-induced killing of bacteria as a function of wavelength: implication for wound healing.

Authors:  Anat Lipovsky; Yeshayahu Nitzan; Aharon Gedanken; Rachel Lubart
Journal:  Lasers Surg Med       Date:  2010-08       Impact factor: 4.025

8.  An assessment of the efficacy of blue light phototherapy in the treatment of acne vulgaris.

Authors:  Sadia Ammad; Maria Gonzales; Chris Edwards; Andrew Y Finlay; Caroline Mills
Journal:  J Cosmet Dermatol       Date:  2008-09       Impact factor: 2.696

9.  Attributable hospital cost and length of stay associated with health care-associated infections caused by antibiotic-resistant gram-negative bacteria.

Authors:  Patrick D Mauldin; Cassandra D Salgado; Ida Solhøj Hansen; Darshana T Durup; John A Bosso
Journal:  Antimicrob Agents Chemother       Date:  2009-10-19       Impact factor: 5.191

10.  Biological effects of blue light from dental curing units.

Authors:  John C Wataha; Petra E Lockwood; Jill B Lewis; Frederick A Rueggeberg; Regina L W Messer
Journal:  Dent Mater       Date:  2004-02       Impact factor: 5.304

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  83 in total

1.  The relative antimicrobial effect of blue 405 nm LED and blue 405 nm laser on methicillin-resistant Staphylococcus aureus in vitro.

Authors:  Daniela Santos Masson-Meyers; Violet Vakunseh Bumah; Gabriel Biener; Valerica Raicu; Chukuka Samuel Enwemeka
Journal:  Lasers Med Sci       Date:  2015-09-11       Impact factor: 3.161

2.  Phototargeting human periodontal pathogens in vivo.

Authors:  Nikolaos S Soukos; Jacyn Stultz; Abraham D Abernethy; J Max Goodson
Journal:  Lasers Med Sci       Date:  2013-12-18       Impact factor: 3.161

Review 3.  Topical antimicrobials for burn infections - an update.

Authors:  Mert Sevgi; Ani Toklu; Daniela Vecchio; Michael R Hamblin
Journal:  Recent Pat Antiinfect Drug Discov       Date:  2013-12

4.  Photoinactivation of Neisseria gonorrhoeae: A Paradigm-Changing Approach for Combating Antibiotic-Resistant Gonococcal Infection.

Authors:  Ying Wang; Raquel Ferrer-Espada; Yan Baglo; Xueping S Goh; Kathryn D Held; Yonatan H Grad; Ying Gu; Jeffrey A Gelfand; Tianhong Dai
Journal:  J Infect Dis       Date:  2019-07-31       Impact factor: 5.226

5.  Antimicrobial blue light inactivation of Candida albicans: In vitro and in vivo studies.

Authors:  Yunsong Zhang; Yingbo Zhu; Jia Chen; Yucheng Wang; Margaret E Sherwood; Clinton K Murray; Mark S Vrahas; David C Hooper; Michael R Hamblin; Tianhong Dai
Journal:  Virulence       Date:  2016-02-24       Impact factor: 5.882

6.  Antimicrobial Blue Light Inactivation of Gram-Negative Pathogens in Biofilms: In Vitro and In Vivo Studies.

Authors:  Yucheng Wang; Ximing Wu; Jia Chen; Rehab Amin; Min Lu; Brijesh Bhayana; Jie Zhao; Clinton K Murray; Michael R Hamblin; David C Hooper; Tianhong Dai
Journal:  J Infect Dis       Date:  2016-02-17       Impact factor: 5.226

7.  Photobiomodulation therapy at different wavelength impacts on retinoid acid-dependent SH-SY5Y differentiation.

Authors:  Luisa Zupin; Fulvio Celsi; Giulia Ottaviani; Sergio Crovella
Journal:  Lasers Med Sci       Date:  2019-03-25       Impact factor: 3.161

8.  The antimicrobial effect of blue light: What are behind?

Authors:  Tianhong Dai
Journal:  Virulence       Date:  2017-01-04       Impact factor: 5.882

9.  In Vivo Investigation of Antimicrobial Blue Light Therapy for Multidrug-resistant Acinetobacter baumannii Burn Infections Using Bioluminescence Imaging.

Authors:  Yucheng Wang; Olivia D Harrington; Ying Wang; Clinton K Murray; Michael R Hamblin; Tianhong Dai
Journal:  J Vis Exp       Date:  2017-04-28       Impact factor: 1.355

Review 10.  Can light-based approaches overcome antimicrobial resistance?

Authors:  Michael R Hamblin; Heidi Abrahamse
Journal:  Drug Dev Res       Date:  2018-08-02       Impact factor: 4.360

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