Skip to main content
Top
Published in: Lasers in Medical Science 2/2015

01-02-2015 | Original Article

Susceptibility of multispecies biofilm to photodynamic therapy using Photodithazine®

Authors: Cristiane Campos Costa Quishida, Juliana Cabrini Carmello, Ewerton Garcia de Oliveira Mima, Vanderlei Salvador Bagnato, Ana Lúcia Machado, Ana Cláudia Pavarina

Published in: Lasers in Medical Science | Issue 2/2015

Login to get access

Abstract

This in vitro study evaluated the effect of photodynamic therapy (PDT) on the multispecies biofilm of Candida albicans, Candida glabrata, and Streptococcus mutans. Standardized fungal and bacterial suspensions were cultivated appropriately for each species and inoculated in 96-well microtiter plates for mix-biofilm formation. After 48 h of incubation, the biofilms were submitted to PDT (P + L+) using Photodithazine® (PDZ) at 100, 150, 175, 200, or 250 mg/mL for 20 min and 37.5 J/cm2 of light-emitting diode (LED) (660 nm). Additional samples were treated only with PDZ (P + L−) or LED (P−L+), or neither (control, P−L-). Afterwards, the biofilms were evaluated by quantification of colonies (CFU/mL), metabolic activity (XTT reduction assay), total biomass (crystal violet staining), and confocal scanning laser microscopy (CSLM). Data were analyzed by one-way ANOVA and Tukey tests (p < 0.05). Compared with the control, PDT promoted a significant reduction in colonies viability of the three species evaluated with 175 and 200 mg/mL of PDZ. PDT also significantly reduced the metabolic activity of the biofilms compared with the control, despite the PDZ concentration. However, no significant difference was found in the total biomass of samples submitted or not to PDT. For all analysis, no significant difference was verified among P−L−, P + L−, and P−L+. CSLM showed a visual increase of dead cells after PDT. PDT-mediated PDZ was effective in reducing the cell viability of multispecies biofilm.
Literature
3.
go back to reference Li L, Redding S, Dongari-Bagtzoglou A (2007) Candida glabrata: an emerging oral opportunistic pathogen. J Dent Res 86(3):204–215PubMedCrossRef Li L, Redding S, Dongari-Bagtzoglou A (2007) Candida glabrata: an emerging oral opportunistic pathogen. J Dent Res 86(3):204–215PubMedCrossRef
4.
go back to reference Ribeiro DG, Pavarina AC, Dovigo LN, Mima EG, Machado AL, Bagnato VS, Vergani CE (2012) Photodynamic inactivation of microorganisms present on complete dentures. A clinical investigation. Photodynamic disinfection of complete dentures. Lasers Med Sci 27(1):161–168. doi:10.1007/s10103-011-0912-3 PubMedCrossRef Ribeiro DG, Pavarina AC, Dovigo LN, Mima EG, Machado AL, Bagnato VS, Vergani CE (2012) Photodynamic inactivation of microorganisms present on complete dentures. A clinical investigation. Photodynamic disinfection of complete dentures. Lasers Med Sci 27(1):161–168. doi:10.​1007/​s10103-011-0912-3 PubMedCrossRef
5.
go back to reference Krcmery V, Barnes AJ (2002) Non-albicans Candida spp. causing fungaemia: pathogenicity and antifungal resistance. J Hosp Infect 50(4):243–260PubMedCrossRef Krcmery V, Barnes AJ (2002) Non-albicans Candida spp. causing fungaemia: pathogenicity and antifungal resistance. J Hosp Infect 50(4):243–260PubMedCrossRef
6.
go back to reference Hsu LY, Minah GE, Peterson DE, Wingard JR, Merz WG, Altomonte V, Tylenda CA (1990) Coaggregation of oral Candida isolates with bacteria from bone marrow transplant recipients. J Clin Microbiol 28(12):2621–2626PubMedCentralPubMed Hsu LY, Minah GE, Peterson DE, Wingard JR, Merz WG, Altomonte V, Tylenda CA (1990) Coaggregation of oral Candida isolates with bacteria from bone marrow transplant recipients. J Clin Microbiol 28(12):2621–2626PubMedCentralPubMed
9.
go back to reference James A, Beaudette L, Costerton W (1995) Interspecies bacterial interactions in biofilms. J Ind Microbiol 15:257–262CrossRef James A, Beaudette L, Costerton W (1995) Interspecies bacterial interactions in biofilms. J Ind Microbiol 15:257–262CrossRef
10.
11.
go back to reference Ramage G, Tomsett K, Wickes BL, López-Ribot JL, Redding SW (2004) Denture stomatitis: a role for Candida biofilms. Oral Surg Oral Med Oral Pathol Oral Radiol Endod 98(1):53–59PubMedCrossRef Ramage G, Tomsett K, Wickes BL, López-Ribot JL, Redding SW (2004) Denture stomatitis: a role for Candida biofilms. Oral Surg Oral Med Oral Pathol Oral Radiol Endod 98(1):53–59PubMedCrossRef
13.
go back to reference Pallasch TJ (2002) Antifungal and antiviral chemotherapy. Periodontol 2000(28):240–255CrossRef Pallasch TJ (2002) Antifungal and antiviral chemotherapy. Periodontol 2000(28):240–255CrossRef
14.
go back to reference Chandra J, Mukherjee PK, Leidich SD, Faddoul FF, Hoyer LL, Douglas LJ, Ghannoum MA (2001) Antifungal resistance of candidal biofilms formed on denture acrylic in vitro. J Dent Res 80(3):903–908PubMedCrossRef Chandra J, Mukherjee PK, Leidich SD, Faddoul FF, Hoyer LL, Douglas LJ, Ghannoum MA (2001) Antifungal resistance of candidal biofilms formed on denture acrylic in vitro. J Dent Res 80(3):903–908PubMedCrossRef
16.
go back to reference Bonnett R, Martínez G (2001) Photobleaching of sensitisers used in photodynamic therapy. Tetrahedron 57:9513–9547CrossRef Bonnett R, Martínez G (2001) Photobleaching of sensitisers used in photodynamic therapy. Tetrahedron 57:9513–9547CrossRef
17.
go back to reference Donnelly RF, McCarron PA, Tunney MM (2008) Antifungal photodynamic therapy. Microbiol Res 163:1–12PubMedCrossRef Donnelly RF, McCarron PA, Tunney MM (2008) Antifungal photodynamic therapy. Microbiol Res 163:1–12PubMedCrossRef
18.
go back to reference Strakhovskaia MG, Belenikina NS, Ivanova EV, Chemeris IK, Stranadko EF (2002) The photodynamic inactivation of Candida guilliermondii in the presence of photodithazine. Mikrobiologiia 71(3):349–353PubMed Strakhovskaia MG, Belenikina NS, Ivanova EV, Chemeris IK, Stranadko EF (2002) The photodynamic inactivation of Candida guilliermondii in the presence of photodithazine. Mikrobiologiia 71(3):349–353PubMed
19.
go back to reference Andrade MC, Ribeiro AP, Dovigo LN, Brunetti IL, Giampaolo ET, Bagnato VS, Pavarina AC (2012) Effect of different pre-irradiation times on curcumin-mediated photodynamic therapy against planktonic cultures and biofilms of Candida spp. Arch Oral Biol 12 Andrade MC, Ribeiro AP, Dovigo LN, Brunetti IL, Giampaolo ET, Bagnato VS, Pavarina AC (2012) Effect of different pre-irradiation times on curcumin-mediated photodynamic therapy against planktonic cultures and biofilms of Candida spp. Arch Oral Biol 12
20.
go back to reference Dovigo LN, Pavarina AC, Carmello JC, Machado AL, Brunetti IL, Bagnato VS (2011) Susceptibility of clinical isolates of Candida to photodynamic effects of curcumin. Lasers Surg Med 43(9):927–934. doi:10.1002/lsm.21110 PubMedCrossRef Dovigo LN, Pavarina AC, Carmello JC, Machado AL, Brunetti IL, Bagnato VS (2011) Susceptibility of clinical isolates of Candida to photodynamic effects of curcumin. Lasers Surg Med 43(9):927–934. doi:10.​1002/​lsm.​21110 PubMedCrossRef
21.
go back to reference Pereira CA, Romeiro RL, Costa AC, Machado AK, Junqueira JC, Jorge AO (2011) Susceptibility of Candida albicans, Staphylococcus aureus, and Streptococcus mutans biofilms to photodynamic inactivation: an in vitro study. Lasers Med Sci 26(3):341–348. doi:10.1007/s10103-010-0852-3 PubMedCrossRef Pereira CA, Romeiro RL, Costa AC, Machado AK, Junqueira JC, Jorge AO (2011) Susceptibility of Candida albicans, Staphylococcus aureus, and Streptococcus mutans biofilms to photodynamic inactivation: an in vitro study. Lasers Med Sci 26(3):341–348. doi:10.​1007/​s10103-010-0852-3 PubMedCrossRef
22.
go back to reference Teixeira AH, Pereira ES, Rodrigues LK, Saxena D, Duarte S, Zanin IC (2012) Effect of photodynamic antimicrobial chemotherapy on in vitro and in situ biofilms. Caries Res 46(6):549–554. doi:10.1159/000341190 PubMedCrossRef Teixeira AH, Pereira ES, Rodrigues LK, Saxena D, Duarte S, Zanin IC (2012) Effect of photodynamic antimicrobial chemotherapy on in vitro and in situ biofilms. Caries Res 46(6):549–554. doi:10.​1159/​000341190 PubMedCrossRef
23.
go back to reference Mima EG, Pavarina AC, Dovigo LN, Vergani CE, Costa CA, Kurachi C, Bagnato VS (2010) Susceptibility of Candida albicans to photodynamic therapy in a murine model of oral candidosis. Oral Surg Oral Med Oral Pathol Oral Radiol Endod 109(3):392–401. doi:10.1016/j.tripleo.2009.10.006 PubMedCrossRef Mima EG, Pavarina AC, Dovigo LN, Vergani CE, Costa CA, Kurachi C, Bagnato VS (2010) Susceptibility of Candida albicans to photodynamic therapy in a murine model of oral candidosis. Oral Surg Oral Med Oral Pathol Oral Radiol Endod 109(3):392–401. doi:10.​1016/​j.​tripleo.​2009.​10.​006 PubMedCrossRef
25.
go back to reference Mima EG, Vergani CE, Machado AL, Massucato EM, Colombo AL, Bagnato VS, Pavarina AC (2012) Comparison of Photodynamic Therapy versus conventional antifungal therapy for the treatment of denture stomatitis: a randomized clinical trial. Clin Microbiol Infect 18(10):E380-E388. doi:10.1111/j.1469-0691.2012.03933.x Mima EG, Vergani CE, Machado AL, Massucato EM, Colombo AL, Bagnato VS, Pavarina AC (2012) Comparison of Photodynamic Therapy versus conventional antifungal therapy for the treatment of denture stomatitis: a randomized clinical trial. Clin Microbiol Infect 18(10):E380-E388. doi:10.​1111/​j.​1469-0691.​2012.​03933.​x
26.
go back to reference Mazor O, Brandis A, Plaks V, Neumark E, Rosenbach-Belkin V, Salomon Y, Scherz A (2005) WST11, a novel water-soluble bacteriochlorophyll derivative; cellular uptake, pharmacokinetics, biodistribution and vascular-targeted photodynamic activity using melanoma tumors as a model. Photochem Photobiol 81(2):342–351PubMedCrossRef Mazor O, Brandis A, Plaks V, Neumark E, Rosenbach-Belkin V, Salomon Y, Scherz A (2005) WST11, a novel water-soluble bacteriochlorophyll derivative; cellular uptake, pharmacokinetics, biodistribution and vascular-targeted photodynamic activity using melanoma tumors as a model. Photochem Photobiol 81(2):342–351PubMedCrossRef
27.
go back to reference Kostenich GA, Zhuravkin IN, Zhavrid EA (1994) Experimental grounds for using chlorin e6 in the photodynamic therapy of malignant tumors. J Photochem Photobiol B 22(3):211–217PubMedCrossRef Kostenich GA, Zhuravkin IN, Zhavrid EA (1994) Experimental grounds for using chlorin e6 in the photodynamic therapy of malignant tumors. J Photochem Photobiol B 22(3):211–217PubMedCrossRef
29.
go back to reference Soukos NS, Mulholland SE, Socransky SS, Doukas AG (2003) Photodestruction of human dental plaque bacteria: enhancement of photodynamic effect by photomechanical waves in an oral biofilm model. Lasers Surg Med 33:161–168PubMedCrossRef Soukos NS, Mulholland SE, Socransky SS, Doukas AG (2003) Photodestruction of human dental plaque bacteria: enhancement of photodynamic effect by photomechanical waves in an oral biofilm model. Lasers Surg Med 33:161–168PubMedCrossRef
31.
32.
33.
go back to reference Fontana CR, Abernethy AD, Som S, Ruggiero K, Doucette S, Marcantonio RC, Boussios CI, Kent R, Goodson JM, Tanner AC, Soukos NS (2009) The antibacterial effect of photodynamic therapy in dental plaque-derived biofilms. J Periodontal Res 44:751–759PubMedCentralPubMedCrossRef Fontana CR, Abernethy AD, Som S, Ruggiero K, Doucette S, Marcantonio RC, Boussios CI, Kent R, Goodson JM, Tanner AC, Soukos NS (2009) The antibacterial effect of photodynamic therapy in dental plaque-derived biofilms. J Periodontal Res 44:751–759PubMedCentralPubMedCrossRef
34.
go back to reference Hope CK, Wilson M (2006) Induction of lethal photosensitization in biofilms using a confocal scanning laser as the excitation source. J Antimicrob Chemother 57(6):1227–1230PubMedCrossRef Hope CK, Wilson M (2006) Induction of lethal photosensitization in biofilms using a confocal scanning laser as the excitation source. J Antimicrob Chemother 57(6):1227–1230PubMedCrossRef
35.
go back to reference Garcez AS, Ribeiro MS, Tegos GP, Núñez SC, Jorge AO, Hamblin MR (2007) Antimicrobial photodynamic therapy combined with conventional endodontic treatment to eliminate root canal biofilm infection. Lasers Surg Med 39(1):59–66PubMedCentralPubMedCrossRef Garcez AS, Ribeiro MS, Tegos GP, Núñez SC, Jorge AO, Hamblin MR (2007) Antimicrobial photodynamic therapy combined with conventional endodontic treatment to eliminate root canal biofilm infection. Lasers Surg Med 39(1):59–66PubMedCentralPubMedCrossRef
36.
go back to reference Müller P, Guggenheim B, Schmidlin PR (2007) Efficacy of gasiform ozone and photodynamic therapy on a multispecies oral biofilm in vitro. Eur J Oral Sci 115(1):77–80PubMedCrossRef Müller P, Guggenheim B, Schmidlin PR (2007) Efficacy of gasiform ozone and photodynamic therapy on a multispecies oral biofilm in vitro. Eur J Oral Sci 115(1):77–80PubMedCrossRef
37.
go back to reference Zeina B, Greenman J, Purcell WM, Das B (2001) Killing of cutaneous microbial species by photodynamic therapy. Br J Dermatol 144(2):274–278PubMedCrossRef Zeina B, Greenman J, Purcell WM, Das B (2001) Killing of cutaneous microbial species by photodynamic therapy. Br J Dermatol 144(2):274–278PubMedCrossRef
39.
go back to reference Wainwright M (1998) Photodynamic antimicrobial chemotherapy (PACT). J Antimicrob Chemother 42:13–28PubMedCrossRef Wainwright M (1998) Photodynamic antimicrobial chemotherapy (PACT). J Antimicrob Chemother 42:13–28PubMedCrossRef
40.
go back to reference Peeters E, Nelis HJ, Coenye T (2008) Comparison of multiple methods for quantification of microbial biofilms grown in microtiter plates. J Microbiol Methods 72(2):157–165PubMedCrossRef Peeters E, Nelis HJ, Coenye T (2008) Comparison of multiple methods for quantification of microbial biofilms grown in microtiter plates. J Microbiol Methods 72(2):157–165PubMedCrossRef
41.
go back to reference Ramage G, Vandewalle K, Wickes BL, Lopez-Ribot JL (2001) Characteristics of biofilm formation by Candida albicans. Rev Iberoam Micol 18:163–170PubMed Ramage G, Vandewalle K, Wickes BL, Lopez-Ribot JL (2001) Characteristics of biofilm formation by Candida albicans. Rev Iberoam Micol 18:163–170PubMed
42.
go back to reference Ribeiro AP, Pavarina AC, Dovigo LN, Brunetti IL, Bagnato VS, Vergani CE, Costa CA (2013) Phototoxic effect of curcumin on methicillin-resistant Staphylococcus aureus and L929 fibroblasts. Lasers Med Sci 28(2):391–398. doi:10.1007/s10103-012-1064-9 PubMedCrossRef Ribeiro AP, Pavarina AC, Dovigo LN, Brunetti IL, Bagnato VS, Vergani CE, Costa CA (2013) Phototoxic effect of curcumin on methicillin-resistant Staphylococcus aureus and L929 fibroblasts. Lasers Med Sci 28(2):391–398. doi:10.​1007/​s10103-012-1064-9 PubMedCrossRef
44.
go back to reference Pathak AK, Sharma S, Shrivastva P (2012) Multi-species biofilm of Candida albicans and non-Candida albicans Candida species on acrylic substrate. J Appl Oral Sci 20(1):70–75PubMedCrossRef Pathak AK, Sharma S, Shrivastva P (2012) Multi-species biofilm of Candida albicans and non-Candida albicans Candida species on acrylic substrate. J Appl Oral Sci 20(1):70–75PubMedCrossRef
Metadata
Title
Susceptibility of multispecies biofilm to photodynamic therapy using Photodithazine®
Authors
Cristiane Campos Costa Quishida
Juliana Cabrini Carmello
Ewerton Garcia de Oliveira Mima
Vanderlei Salvador Bagnato
Ana Lúcia Machado
Ana Cláudia Pavarina
Publication date
01-02-2015
Publisher
Springer London
Published in
Lasers in Medical Science / Issue 2/2015
Print ISSN: 0268-8921
Electronic ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-013-1397-z

Other articles of this Issue 2/2015

Lasers in Medical Science 2/2015 Go to the issue