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Articles

Gelatin nanoparticles loaded methylene blue as a candidate for photodynamic antimicrobial chemotherapy applications in Candida albicans growth

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Pages 1356-1373 | Received 03 May 2019, Accepted 13 Jun 2019, Published online: 27 Jun 2019

References

  • Vazques JA. Combination antifungal therapy against Candida species: the new frontier are we there yet? Med Mycol. 2003; 41:355–368.
  • Tlamçan Z, Er-Rami M. Fungal opportunist infection: common and emerging fungi in immunocompromised patients. J Immunol Tech Infect Dis. 2013; 2:2–7.
  • Wanke B, Lazéra MS, Nucci M. Light fungal infections in the immunocompromised host. Mem Inst Oswaldo Cruz. 2000; 95:153–158.
  • Gomez-Lopez A, Zaragoza O, Rodriguez-Tudela JL. Pharmacotherapy of yeast infections. Expert Opin Pharmacother. 2008; 9:2801–2816.
  • Sardi JC, Scorzoni L, Bernardi T, et al. Candida species: current epidemiology, pathogenicity, biofilm formation, natural antifungal products and new therapeutic options. J Med Microbiol. 2013; 62:10–24.
  • Teoh F, Pavelka N. How chemotherapy increases the risk of systemic candidiasis in cancer patients: current paradigm and future directions. Pathogens. 2016; 5:6–20.
  • Gualco L, Debbia EA, Bandettini R, et al. Antifungal resistance in Candida spp. isolated in Italy between 2002 and 2005 from children and adults. Int J Antimicrob Agents. 2007; 29:179–184.
  • Denis TG, Dai T, Izikson L. All you need is light: antimicrobial photoinactivation as an evolving and emerging discovery strategy against infectious disease. Virulence. 2011;2:509–520.
  • Dai T, Fuchs BB, Coleman JJ, et al. Concepts and principles of photodynamic therapy as an alternative antifungal discovery platform. Front Microbiol. 2012;3:1–16.
  • Allison RR, Moghissi K. Photodynamic therapy (PDT): PDT mechanisms. Clin Endosc. 2013;46:24–29.
  • Ahmed HYA, Mekawey AA, Morsy ME. Cellular structural changes in two candida species caused by photodynamic therapy. Photodiagnosis Photodyn. Ther. 2016; 4:39–54.
  • Luksiene Z. Photodynamic therapy: mechanism of action and ways to improve the efficiency of treatment. Medicina (Kaunas). 2003; 39:1137–1150.
  • Juzeniene A, Moan J. The history of PDT in Norway Part one: Identification of basic mechanisms of general PDT. Photodiagnosis Photodyn Ther. 2007; 4:3–11.
  • Henderson BW, Dougherty TJ. How does photodynamic therapy work? Photochem Photobiol. 1992; 55:145–157.
  • Baltazar LM, Ray A, Santos DA, et al. Antimicrobial photodynamic therapy: an effective alternative approach to control fungal infections. Front Microbiol. 2015; 6:202–213.
  • Jesus VPS, Raniero L, Lemes GM, et al. Nanoparticles of methylene blue for enhance photodynamic therapy. Photodiagnosis Photodyn Ther. 2018; 23:212–217.
  • Sellera FP, Gargano RG, Dos Anjos C, et al. Methylene blue-mediated antimicrobial photodynamic therapy: a novel strategy for digital dermatitis-associated sole ulcer in a cow – A case report. Photodiagnosis Photodyn Ther. 2018; 24:121–122.
  • Hosseinzadeh R, Khorsandi K. Methylene blue, curcumin and ion pairing nanoparticles effects on photodynamic therapy of MDA-MB-231 breast cancer cell. Photodiagnosis Photodyn Ther. 2017; 18:284–294.
  • Singh S, Aggarwal A, Bhupathiraju N, et al. Glycosylated porphyrins, phthalocyanines, and other porphyrinoids for diagnostics and therapeutics. Chem Rev. 2015; 115:10261–10306.
  • Vecchio D, Gupta A, Huang L, et al. Bacterial photodynamic inactivation mediated by methylene blue and red light is enhanced by synergistic effect of potassium iodide. Antimicrob Agents Chemother. 2015; 59:5203–5212.
  • Ramasamy M, Lee J. Recent nanotechnology approaches for prevention and treatment of biofilm-associated infections on medical devices. Biomed Res Int. 2016;2016:1851242.
  • Bechet D, Couleaud P, Frochot C, et al. Nanoparticles as vehicles for delivery of photodynamic therapy agents. Trends Biotechnol. 2008; 26:612–621.
  • Haukvik T, Bruzell E, Kristensen S, et al. Photokilling of bacteria by curcumin in selected polyethylene glycol 400 (PEG 400) preparations. Studies on curcumin and curcuminoids, XLI. Pharmazie. 2010; 65:600–606.
  • Klepac-Ceraj V, Patel N, Song X, et al. Photodynamic effects of methylene blue-loaded polymeric nanoparticles on dental plaque bacteria. Lasers Surg Med. 2011; 43:600–606.
  • Megalathan A, Kumarage S, Dilhari A, et al. Natural curcuminoids encapsulated in layered double hydroxides: a novel antimicrobial nanohybrid. Chem Cent J. 2016; 10:35–44.
  • Teixeira M, Alonso MJ, Pinto MMM, et al. Development and characterization of PLGA nanospheres and nanocapsules containing xanthone and 3-methoxyxanthone. Eur J Pharm Biopharm. 2005; 59:491–500.
  • Pietra R, Cruz RC, Melo CN, et al. Evaluation of polymeric PLGA nanoparticles conjugated to curcumin for use in aPDT. Braz J Pharm Sci. 2017; 53:e16043–e16051.
  • Jawahar N, Meyyanathan SN. Polymeric nanoparticles for drug delivery and targeting: a comprehensive review. Int J Health Allied Sci.. 2012; 1:217–223.
  • Singh K, Mishra A. Gelatin nanoparticle: preparation, characterization and application in drug delivery. Int J Pharm Sci Res. 2014; 5:2149–2147.
  • Carvalho JA, Abreu AS, Ferreira VTP, et al. Preparation of gelatin nanoparticles by two step desolvation method for application in photodynamic therapy. J Biomater Sci Polym Ed. 2018; 29:1287–1301.
  • Siqueira-Moura MP, Primo FL, Peti APF, et al. Validated spectrophotometric and spectrofluorimetric methods for determination of chloroaluminum phthalocyanine in nanocarriers. Pharmazie. 2010; 65:1–6.
  • Giroldo LM, Felipe MP, de Oliveira MA, et al. Photodynamic antimicrobial chemotherapy (PACT) with methylene blue increases membrane permeability in Candida albicans. Lasers Med Sci. 2009; 24:109–112.
  • Bliss JM, Bigelow CE, Foster TH, et al. Susceptibility of candida species to photodynamic effects of photofrin. Antimicrob Agents Chemother. 2004; 48: 2000–2006.
  • Andrade MC, Ribeiro APD, Dovigo LN, et al. Effect of different pre-irradiation times on curcumin-mediated photodynamic therapy against planktonic cultures and biofilms of Candida spp. Arch Oral Biol. 2013; 58: 200–210.
  • Taraszkiewicz A, Szewczyk G, Sarna T, et al. Photodynamic inactivation of Candida albicans with imidazoacridinones: influence of irradiance, photosensitizer uptake and reactive oxygen species generation. PLoS One. 2015; 10:e0129301–e0129319.
  • Teixeira AH, Pereira ES, Rodrigues LK, et al. Effect of photodynamic antimicrobial chemotherapy on in vitro and in situ biofilms. Caries Res. 2012; 46:549–554.
  • Acosta-Avalos D, Jedlicka LDL, Costa MS, et al. Photoacoustic spectroscopy of Candida albicans treated with methylene blue. Int J Thermophys. 2012; 33:1864–1869.
  • Moiz AA, Zeeshan F, Saif H. Antifungal action of methylene blue involves mitochondrial dysfunction and disruption of redox and membrane homeostasis in C. albicans. Open Microbiol J. 2016; 10:12–22.
  • Elzoghby AO, Elgohary MM, Kamel NM. Implications of protein- and peptide-based nanoparticles as potential vehicles for anticancer drugs. Adv Protein Chem Struct Biol. 2015; 98:169–221.
  • Farrugia CA, Groves MJ. Gelatin behaviour in dilute aqueous solution: designing a nanoparticulate formulation. J Pharm Pharmacol. 1999; 51:643–649.
  • Coester CJ, Langer K, Briesen HV, et al. Gelatin nanoparticles by two-step desolvation-a new preparation method, surface modifications and cell uptake. J Microencapsul. 2000; 17:187–193.
  • Bajpai AK, Choubey J. Release study of sulphamethoxazole controlled by swelling of gelatin nanoparticles and drug‐biopolymer interaction. J Polym Sci A. 2005; 42:253–275.
  • Pal SL, Jana U, Manna PK, et al. Nanoparticle: an overview of preparation and characterization. J Appl Pharm Sci. 2011; 4:228–234.
  • Bajpai AK, Choubey J. Design of gelatin nanoparticles as swelling controlled delivery system for chloroquine phosphate. J Mater Sci Mater Med. 2006; 17:345–358.
  • De Frates K, Markiewicz T, Gallo P, et al. Protein polymer-based nanoparticles: fabrication and medical applications. IJMS. 2018; 19:1717–1736.
  • Gutiérrez-Valenzuela CA, Rodríguez-Córdova R, Hernández-Giottonini Y, et al. Methylene blue loaded plga nanoparticles: combined emulsion, drug release analysis and photodynamic activity. Microsc Microanal. 2017; 23:1212–1213.
  • Cannavà C, Stancanelli R, Marabeti MR, et al. Nanospheres based on PLGA/amphiphilic cyclodextrin assemblies as potential enhancers of Methylene Blue neuroprotective effect. RSC Adv. 2016; 6:16720–16729.
  • González AG, Herrador MA, Asuero AG, et al. The correlation coefficient attacks again. Accred Qual Assur. 2006; 11:256–258.
  • Howland RH. Methylene blue: the long and winding road from stain to brain: part 1. J Psychosoc Nurs Ment Health Serv. 2016; 54:21–24.
  • Tardivo JP, Del Giglio A, de Oliveira CS, et al. Methylene blue in photodynamic therapy: from basic mechanisms to clinical applications. Photodiagnosis Photodyn Ther. 2005; 2:175–191.
  • Terdale S, Tantray A. Spectroscopic study of the dimerization of rhodamine 6G in water and different organic solvents. J Mol Liq. 2017; 225:662–671.
  • Simioni AR, Primo FL, Tedesco AC. Silicon (IV) phthalocyanine-loaded-nanoparticles for application in photodynamic process. J Laser Appl. 2012; 24:012004–012009.
  • Mukherjee B, Santra K, Pattnaik G, et al. Preparation, characterization and in-vitro evaluation of sustained release protein-loaded nanoparticles based on biodegradable polymers. Int J Nanomedicine. 2008; 3:487–496.
  • Rasmussen K, Rauscher H, Mech A, et al. Physico-chemical properties of manufactured nanomaterials - Characterisation and relevant methods. An outlook based on the OECD testing programme. Regul Toxicol Pharmacol. 2018; 92:8–58.
  • Clayton KN, Salameh JW, Wereley ST, et al. Physical characterization of nanoparticle size and surface modification using particle scattering diffusometry. Biomicrofluidics. 2016; 10:054107–054114.
  • Renliang X. Progress in nanoparticles characterization: sizing and zeta potential measurement. Particuology. 2008; 6:112–115.
  • Chavanpatil MD, Khdair A, Patil Y, et al. Polymer-surfactant nanoparticles for sustained release of water-soluble drugs. J Pharm Sci. 2007; 96:3379–3389.
  • Munin E, Giroldo LM, Alves LP, et al. Study of germ tube formation by Candida albicans after photodynamic antimicrobial chemotherapy (PACT). J Photochem Photobiol. 2007; 88:16–20.
  • Kashef N, Huang YY, Hamblin MR. Advances in antimicrobial photodynamic inactivation at the nanoscale. Nanophotonics. 2017; 6:853–879.

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