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Published in: Lasers in Medical Science 4/2015

01-05-2015 | Original Article

Low-level red laser improves healing of second-degree burn when applied during proliferative phase

Authors: Eduardo Tavares Lima Trajano, Larissa Alexsandra da Trajano, Marco Aurélio dos Santos Silva, Neil Grant Venter, Luís Cristóvão de Porto, Adenilson de Fonseca, Andréa Monte-Alto-Costa

Published in: Lasers in Medical Science | Issue 4/2015

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Abstract

The aim of this study was to investigate the effects of low-level red laser on tissue repair in rats submitted to second-degree burn, evaluating if the timing of laser treatment influences the healing process. The animals had their backs shaved and divided as follows: control group (n = 12)—rats burned and not irradiated, early laser group (n = 12)—rats burned and irradiated from day 1 after injury for five consecutive days, and late laser group (n = 14)—rats burned and irradiated from day 4 after injury for five consecutive days. Laser irradiation was according to a clinical protocol (20 J/cm2, 100 mW, continuous wave emission mode, 660 nm) as recommended by the laser device manufacturer. Half of the animals were sacrificed 10 days after burn, and the other animals were sacrificed 21 days after burn. The late laser group accelerated wound contraction 10 and 21 days after burn. The late laser group accelerated reepithelialization 18 days after burn. The late laser group increases the granulation tissue 10 and 21 days after burn. Both irradiated groups increased type III collagen expression and TGF-β 21 days after burn. Both irradiated groups increased macrophage and myofibroblast numbers 10 days after burn and decreased 21 days after. Low-level red laser exposure contributes to the process of tissue repair of second-degree burns, but the intervention during proliferative phase is crucial in the final outcome of the repair process.
Literature
1.
go back to reference Peck MD (2011) Epidemiology of burns throughout the world. Part I: distribution and risk factors. Burns 37:1087–1100CrossRefPubMed Peck MD (2011) Epidemiology of burns throughout the world. Part I: distribution and risk factors. Burns 37:1087–1100CrossRefPubMed
3.
go back to reference Gurtner GC, Werner S, Barrandon Y, Longaker MT (2008) Wound repair and regeneration. Nature 453:314–321CrossRefPubMed Gurtner GC, Werner S, Barrandon Y, Longaker MT (2008) Wound repair and regeneration. Nature 453:314–321CrossRefPubMed
5.
go back to reference Nunez SC, Franca CM, Silva DF, Nogueira GE, Prates RA, Ribeiro MS (2013) The influence of red laser irradiation timeline on burn healing in rats. Lasers Med Sci 28:633–641CrossRefPubMed Nunez SC, Franca CM, Silva DF, Nogueira GE, Prates RA, Ribeiro MS (2013) The influence of red laser irradiation timeline on burn healing in rats. Lasers Med Sci 28:633–641CrossRefPubMed
6.
go back to reference Zhang X, Liu L, Wei X, Tan YS, Tong L, Chang R, Ghanamah MS, Reinblatt M, Marti GP, Harmon JW, Semenza GP (2010) Impaired angiogenesis and mobilization of circulating angiogenic cells in HIF-1alpha heterozygous-null mice after burn wounding. Wound Repair Regen 18:193–201CrossRefPubMedCentralPubMed Zhang X, Liu L, Wei X, Tan YS, Tong L, Chang R, Ghanamah MS, Reinblatt M, Marti GP, Harmon JW, Semenza GP (2010) Impaired angiogenesis and mobilization of circulating angiogenic cells in HIF-1alpha heterozygous-null mice after burn wounding. Wound Repair Regen 18:193–201CrossRefPubMedCentralPubMed
7.
go back to reference Abrahamse H (2012) Regenerative medicine, stem cells, and low-level laser therapy: future directives. Photomed Laser Surg 30:681–682CrossRefPubMed Abrahamse H (2012) Regenerative medicine, stem cells, and low-level laser therapy: future directives. Photomed Laser Surg 30:681–682CrossRefPubMed
8.
go back to reference Karu TI (2010) Multiple roles of cytochrome c oxidase in mammalian cells under action of red and IR-A radiation. IUBMB Life 62:607–610CrossRefPubMed Karu TI (2010) Multiple roles of cytochrome c oxidase in mammalian cells under action of red and IR-A radiation. IUBMB Life 62:607–610CrossRefPubMed
9.
go back to reference da Silva JP, da Silva MA, Almeida AP, Lombardi Junior I, Matos AP (2010) Laser therapy in the tissue repair process: a literature review. Photomed Laser Surg 28:17–21CrossRefPubMed da Silva JP, da Silva MA, Almeida AP, Lombardi Junior I, Matos AP (2010) Laser therapy in the tissue repair process: a literature review. Photomed Laser Surg 28:17–21CrossRefPubMed
10.
go back to reference Meireles GC, Santos JN, Chagas PO, Moura AP, Pinheiro AL (2008) Effectiveness of laser photobiomodulation at 660 or 780 nanometers on the repair of third-degree burns in diabetic rats. Photomed Laser Surg 26:47–54CrossRefPubMed Meireles GC, Santos JN, Chagas PO, Moura AP, Pinheiro AL (2008) Effectiveness of laser photobiomodulation at 660 or 780 nanometers on the repair of third-degree burns in diabetic rats. Photomed Laser Surg 26:47–54CrossRefPubMed
11.
go back to reference Vasheghani MM, Bayat M, Rezaei F, Bayat A, Karimipour M (2008) Effect of low-level laser therapy on mast cells in second degree burns in rats. Photomed Laser Surg 26:1–5CrossRefPubMed Vasheghani MM, Bayat M, Rezaei F, Bayat A, Karimipour M (2008) Effect of low-level laser therapy on mast cells in second degree burns in rats. Photomed Laser Surg 26:1–5CrossRefPubMed
12.
go back to reference Gupta A, Daí T, Hamblin MR (2014) Effect of red and near-infrared wavelengths on low-level laser (light) therapy-induced healing of partial-thickness dermal abrasion in mice. Lasers Med Sci 29:257–265CrossRefPubMed Gupta A, Daí T, Hamblin MR (2014) Effect of red and near-infrared wavelengths on low-level laser (light) therapy-induced healing of partial-thickness dermal abrasion in mice. Lasers Med Sci 29:257–265CrossRefPubMed
13.
go back to reference Goncalves RV, Novaes RD, Cupertino Mdo C, Moraes B, Leite JP, Peluzio Mdo C, Pinto MV, da Matta SL (2013) Time-dependent effects of low-level laser therapy on the morphology and oxidative response in the skin wound healing in rats. Lasers Med Sci 28:383–390CrossRefPubMed Goncalves RV, Novaes RD, Cupertino Mdo C, Moraes B, Leite JP, Peluzio Mdo C, Pinto MV, da Matta SL (2013) Time-dependent effects of low-level laser therapy on the morphology and oxidative response in the skin wound healing in rats. Lasers Med Sci 28:383–390CrossRefPubMed
14.
go back to reference de Moraes JM, de Oliveira E, Mendonca D, Moura VB, Oliveira MA, Afonso CL, Vinaud MC, Bachion MM, de Souza Lino R Jr (2013) Anti-inflammatory effect of low-intensity laser on the healing of third-degree burn wounds in rats. Lasers Med Sci 28:1169–1176CrossRefPubMed de Moraes JM, de Oliveira E, Mendonca D, Moura VB, Oliveira MA, Afonso CL, Vinaud MC, Bachion MM, de Souza Lino R Jr (2013) Anti-inflammatory effect of low-intensity laser on the healing of third-degree burn wounds in rats. Lasers Med Sci 28:1169–1176CrossRefPubMed
16.
go back to reference Reddy GK (2004) Photobiological basis and clinical role of low-intensity lasers in biology and medicine. J Clin Laser Med Surg 22:141–150CrossRefPubMed Reddy GK (2004) Photobiological basis and clinical role of low-intensity lasers in biology and medicine. J Clin Laser Med Surg 22:141–150CrossRefPubMed
17.
go back to reference Fonseca AS, Geller M, Bernardo Filho M, Valenca SS, de Paoli F (2012) Low-level infrared laser effect on plasmid DNA. Lasers Med Sci 27:121–130CrossRefPubMed Fonseca AS, Geller M, Bernardo Filho M, Valenca SS, de Paoli F (2012) Low-level infrared laser effect on plasmid DNA. Lasers Med Sci 27:121–130CrossRefPubMed
18.
go back to reference Farahani RM, Kloth LC (2008) The hypothesis of ‘biophysical matrix contraction’: wound contraction revisited. Int Wound J 5:477–482CrossRefPubMed Farahani RM, Kloth LC (2008) The hypothesis of ‘biophysical matrix contraction’: wound contraction revisited. Int Wound J 5:477–482CrossRefPubMed
19.
20.
go back to reference Broughton G 2nd, Janis JE, Attinger CE (2006) Wound healing: an overview. Plast Reconstr Surg 117:1e-S–32e-SCrossRef Broughton G 2nd, Janis JE, Attinger CE (2006) Wound healing: an overview. Plast Reconstr Surg 117:1e-S–32e-SCrossRef
21.
go back to reference Fiorio FB, Albertini R, Leal-Junior EC, de Carvalho PT (2014) Effect of low-level laser therapy on types I and III collagen and inflammatory cells in rats with induced third-degree burns. Lasers Med Sci 29:313–319CrossRefPubMed Fiorio FB, Albertini R, Leal-Junior EC, de Carvalho PT (2014) Effect of low-level laser therapy on types I and III collagen and inflammatory cells in rats with induced third-degree burns. Lasers Med Sci 29:313–319CrossRefPubMed
22.
go back to reference Wong VW, Gurtner GC, Longaker MT (2013) Wound healing: a paradigm for regeneration. Mayo Clin Proc 88:1022–1031CrossRefPubMed Wong VW, Gurtner GC, Longaker MT (2013) Wound healing: a paradigm for regeneration. Mayo Clin Proc 88:1022–1031CrossRefPubMed
23.
go back to reference Boo S, Dagnino L (2013) Integrins as modulators of transforming growth factor beta signaling in dermal fibroblasts during skin regeneration after injury. Adv Wound Care (New Rochelle) 2:238–246CrossRef Boo S, Dagnino L (2013) Integrins as modulators of transforming growth factor beta signaling in dermal fibroblasts during skin regeneration after injury. Adv Wound Care (New Rochelle) 2:238–246CrossRef
24.
go back to reference dos Santos SA, Alves AC, Leal-Junior EC, Albertini R, Vieira Rde P, Ligeiro AP, Junior JA, de Carvalho PT (2014) Comparative analysis of two low-level laser doses on the expression of inflammatory mediators and on neutrophils and macrophages in acute joint inflammation. Lasers Med Sci 29:1051–1058CrossRefPubMed dos Santos SA, Alves AC, Leal-Junior EC, Albertini R, Vieira Rde P, Ligeiro AP, Junior JA, de Carvalho PT (2014) Comparative analysis of two low-level laser doses on the expression of inflammatory mediators and on neutrophils and macrophages in acute joint inflammation. Lasers Med Sci 29:1051–1058CrossRefPubMed
25.
go back to reference Alves AC, Vieira R, Leal-Junior E, dos Santos S, Ligeiro AP, Albertini R (2013) Effect of low-level laser therapy on the expression of inflammatory mediators and on neutrophils and macrophages in acute joint inflammation. Arthritis Res Ther 15:R116CrossRefPubMedCentralPubMed Alves AC, Vieira R, Leal-Junior E, dos Santos S, Ligeiro AP, Albertini R (2013) Effect of low-level laser therapy on the expression of inflammatory mediators and on neutrophils and macrophages in acute joint inflammation. Arthritis Res Ther 15:R116CrossRefPubMedCentralPubMed
26.
27.
go back to reference Lucas T, Waisman A, Ranjan R, Roes J, Krieg T, Muller W (2010) Differential roles of macrophages in diverse phases of skin repair. J Immunol 184:3964–3977CrossRefPubMed Lucas T, Waisman A, Ranjan R, Roes J, Krieg T, Muller W (2010) Differential roles of macrophages in diverse phases of skin repair. J Immunol 184:3964–3977CrossRefPubMed
28.
go back to reference Jetten N, Roumans N, Gijbels MJ, Romano A, Post MJ, de Winther MP (2014) Wound administration of M2-polarized macrophages does not improve murine cutaneous healing responses. PLoS One 9:e102994CrossRefPubMedCentralPubMed Jetten N, Roumans N, Gijbels MJ, Romano A, Post MJ, de Winther MP (2014) Wound administration of M2-polarized macrophages does not improve murine cutaneous healing responses. PLoS One 9:e102994CrossRefPubMedCentralPubMed
29.
go back to reference Chiarotto GB, Neves LM, Esquisatto MA, do Amaral ME, Dos Santos GM, Mendonça FA (2014) Effects of laser irradiation (670-nm InGaP and 830-nm GaAlAs) on burn of second degree in rats. Lasers Med Sci 29:1685–1693CrossRefPubMed Chiarotto GB, Neves LM, Esquisatto MA, do Amaral ME, Dos Santos GM, Mendonça FA (2014) Effects of laser irradiation (670-nm InGaP and 830-nm GaAlAs) on burn of second degree in rats. Lasers Med Sci 29:1685–1693CrossRefPubMed
30.
go back to reference de Vasconcelos Catao MH, Nonaka CF, de Albuquerque RL Jr, Bento PM, de Oliveira Costa R. (2014) Effects of red laser, infrared, photodynamic therapy, and green LED on the healing process of third-degree burns: clinical and histological study in rats. Lasers Med Sci 30(1):421-428 de Vasconcelos Catao MH, Nonaka CF, de Albuquerque RL Jr, Bento PM, de Oliveira Costa R. (2014) Effects of red laser, infrared, photodynamic therapy, and green LED on the healing process of third-degree burns: clinical and histological study in rats. Lasers Med Sci 30(1):421-428
Metadata
Title
Low-level red laser improves healing of second-degree burn when applied during proliferative phase
Authors
Eduardo Tavares Lima Trajano
Larissa Alexsandra da Trajano
Marco Aurélio dos Santos Silva
Neil Grant Venter
Luís Cristóvão de Porto
Adenilson de Fonseca
Andréa Monte-Alto-Costa
Publication date
01-05-2015
Publisher
Springer London
Published in
Lasers in Medical Science / Issue 4/2015
Print ISSN: 0268-8921
Electronic ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-015-1729-2

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