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Published in: Lasers in Medical Science 9/2016

01-12-2016 | Review Article

Low-level phototherapy to improve exercise capacity and muscle performance: a systematic review and meta-analysis

Authors: Fernando Kenji Nampo, Vinícius Cavalheri, Francyelle dos Santos Soares, Solange de Paula Ramos, Enilton Aparecido Camargo

Published in: Lasers in Medical Science | Issue 9/2016

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Abstract

The aim of this study was to evaluate the effectiveness of pre-exercise low-level phototherapy (Light-Emitting Diode therapy [LEDtherapy] or Light Amplification by Stimulate Emission of Radiation therapy [LASERtherapy]) in increasing exercise capacity and muscle performance of people undergoing exercise when compared to placebo treatment. Randomized controlled trials and crossover studies were sought on CENTRAL, MEDLINE, EMBASE, SciELO, PEDro and LILACS from its inception up to February 2015. References lists of included studies were sought for additional relevant research. Two authors independently extracted data on study design, treatment parameters, exercise capacity (number of repetitions, time to exhaustion, blood lactate concentration and lactate dehydrogenase activity) and muscle performance (torque, power and strength) using an structured table. Agreement should be reached by consensus or by a third reviewer. Sixteen studies involving 297 participants were included. Improvement of number of repetitions (mean difference [MD] [95 % confidence interval] = 3.51 repetitions [0.65–6.37]; P = 0.02), delay in time to exhaustion (MD = 4.01 s [2.10–5.91]; P < 0.0001), reduction in lactate levels (MD = 0.34 mmol/L [0.19–0.48]; P < 0.00001) and increased peak torque (MD = 21.51 Nm [10.01–33.01]; P < 0.00001) were observed when LASERtherapy was applied. LEDtherapy meta-analyses were performed with two studies and retrieved no between-group statistically significant difference in power, lactate levels or time to exhaustion. Although our results suggest that LASERtherapy is effective in improving skeletal muscle exercise capacity, the quality of the current evidence is limited.
Literature
1.
go back to reference Bachasson D, Guinot M, Wuyam B, et al. Neuromuscular fatigue and exercise capacity in fibromyalgia syndrome. Arthritis Care Res (Hoboken). Mar 2013;65(3):432-440 Bachasson D, Guinot M, Wuyam B, et al. Neuromuscular fatigue and exercise capacity in fibromyalgia syndrome. Arthritis Care Res (Hoboken). Mar 2013;65(3):432-440
2.
go back to reference Garcia-Hermoso A, Saavedra JM, Escalante Y (2015) Effects of exercise on functional aerobic capacity in adults with fibromyalgia syndrome: a systematic review of randomized controlled trials. J Back Musculoskelet Rehabil 28(4):609:619 Garcia-Hermoso A, Saavedra JM, Escalante Y (2015) Effects of exercise on functional aerobic capacity in adults with fibromyalgia syndrome: a systematic review of randomized controlled trials. J Back Musculoskelet Rehabil 28(4):609:619
3.
go back to reference Kim HC, Mofarrahi M, Hussain SN (2008) Skeletal muscle dysfunction in patients with chronic obstructive pulmonary disease. Int J Chron Obstruct Pulmon Dis 3(4):637–658PubMedPubMedCentral Kim HC, Mofarrahi M, Hussain SN (2008) Skeletal muscle dysfunction in patients with chronic obstructive pulmonary disease. Int J Chron Obstruct Pulmon Dis 3(4):637–658PubMedPubMedCentral
4.
go back to reference Nijs J, Paul L, Wallman K (2008) Chronic fatigue syndrome: an approach combining self-management with graded exercise to avoid exacerbations. J Rehabil Med 40(4):241–247CrossRefPubMed Nijs J, Paul L, Wallman K (2008) Chronic fatigue syndrome: an approach combining self-management with graded exercise to avoid exacerbations. J Rehabil Med 40(4):241–247CrossRefPubMed
5.
go back to reference Baudry S, Klass M, Pasquet B, Duchateau J (2007) Age-related fatigability of the ankle dorsiflexor muscles during concentric and eccentric contractions. Eur J Appl Physiol 100(5):515–525CrossRefPubMed Baudry S, Klass M, Pasquet B, Duchateau J (2007) Age-related fatigability of the ankle dorsiflexor muscles during concentric and eccentric contractions. Eur J Appl Physiol 100(5):515–525CrossRefPubMed
7.
go back to reference Zainuddin Z, Newton M, Sacco P, Nosaka K (2005) Effects of massage on delayed-onset muscle soreness, swelling, and recovery of muscle function. J Athl Train 40(3):174–180PubMedPubMedCentral Zainuddin Z, Newton M, Sacco P, Nosaka K (2005) Effects of massage on delayed-onset muscle soreness, swelling, and recovery of muscle function. J Athl Train 40(3):174–180PubMedPubMedCentral
8.
go back to reference Best TM, Hunter R, Wilcox A, Haq F (2008) Effectiveness of sports massage for recovery of skeletal muscle from strenuous exercise. Clin J Sport Med 18(5):446–460CrossRefPubMed Best TM, Hunter R, Wilcox A, Haq F (2008) Effectiveness of sports massage for recovery of skeletal muscle from strenuous exercise. Clin J Sport Med 18(5):446–460CrossRefPubMed
9.
go back to reference Cheung K, Hume P, Maxwell L (2003) Delayed onset muscle soreness: treatment strategies and performance factors. Sports Med 33(2):145–164CrossRefPubMed Cheung K, Hume P, Maxwell L (2003) Delayed onset muscle soreness: treatment strategies and performance factors. Sports Med 33(2):145–164CrossRefPubMed
10.
go back to reference Pasiakos SM, Lieberman HR, McLellan TM (2014) Effects of protein supplements on muscle damage, soreness and recovery of muscle function and physical performance: a systematic review. Sports Med 44(5):655–670CrossRefPubMed Pasiakos SM, Lieberman HR, McLellan TM (2014) Effects of protein supplements on muscle damage, soreness and recovery of muscle function and physical performance: a systematic review. Sports Med 44(5):655–670CrossRefPubMed
11.
go back to reference Zhong DK, Tang D, Xue L, Wen J, Li YP (2016) Effectiveness of moxibustion for exercise-induced fatigue—a systematic review for randomized controlled trials. Chin J Integr Med 22(2):130−140 Zhong DK, Tang D, Xue L, Wen J, Li YP (2016) Effectiveness of moxibustion for exercise-induced fatigue—a systematic review for randomized controlled trials. Chin J Integr Med 22(2):130−140
12.
go back to reference Dalmonte ME, Forte E, Genova ML, Giuffre A, Sarti P, Lenaz G (2009) Control of respiration by cytochrome c oxidase in intact cells: role of the membrane potential. J Biol Chem 284(47):32331–32335CrossRefPubMedPubMedCentral Dalmonte ME, Forte E, Genova ML, Giuffre A, Sarti P, Lenaz G (2009) Control of respiration by cytochrome c oxidase in intact cells: role of the membrane potential. J Biol Chem 284(47):32331–32335CrossRefPubMedPubMedCentral
13.
go back to reference Tonkonogi M, Sahlin K (2002) Physical exercise and mitochondrial function in human skeletal muscle. Exerc Sport Sci Rev 30(3):129–137CrossRefPubMed Tonkonogi M, Sahlin K (2002) Physical exercise and mitochondrial function in human skeletal muscle. Exerc Sport Sci Rev 30(3):129–137CrossRefPubMed
14.
go back to reference Brooks GA, Dubouchaud H, Brown M, Sicurello JP, Butz CE (1999) Role of mitochondrial lactate dehydrogenase and lactate oxidation in the intracellular lactate shuttle. Proc Natl Acad Sci U S A 96(3):1129–1134CrossRefPubMedPubMedCentral Brooks GA, Dubouchaud H, Brown M, Sicurello JP, Butz CE (1999) Role of mitochondrial lactate dehydrogenase and lactate oxidation in the intracellular lactate shuttle. Proc Natl Acad Sci U S A 96(3):1129–1134CrossRefPubMedPubMedCentral
15.
go back to reference Antonialli FC, De Marchi T, Tomazoni SS, et al (2014) Phototherapy in skeletal muscle performance and recovery after exercise: effect of combination of super-pulsed laser and light-emitting diodes. Lasers Med Sci 29(6): 1967–1976 Antonialli FC, De Marchi T, Tomazoni SS, et al (2014) Phototherapy in skeletal muscle performance and recovery after exercise: effect of combination of super-pulsed laser and light-emitting diodes. Lasers Med Sci 29(6): 1967–1976
16.
go back to reference de Almeida P, Lopes-Martins RA, Tomazoni SS et al (2011) Low-level laser therapy improves skeletal muscle performance, decreases skeletal muscle damage and modulates mRNA expression of COX-1 and COX-2 in a dose-dependent manner. Photochem Photobiol 87(5):1159–1163CrossRefPubMed de Almeida P, Lopes-Martins RA, Tomazoni SS et al (2011) Low-level laser therapy improves skeletal muscle performance, decreases skeletal muscle damage and modulates mRNA expression of COX-1 and COX-2 in a dose-dependent manner. Photochem Photobiol 87(5):1159–1163CrossRefPubMed
18.
go back to reference Moher D, Liberati A, Tetzlaff J, Altman DG, Group P (2009) Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement. BMJ (Clin Res Ed) 339:b2535CrossRef Moher D, Liberati A, Tetzlaff J, Altman DG, Group P (2009) Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement. BMJ (Clin Res Ed) 339:b2535CrossRef
19.
go back to reference Borenstein M, Hedges LV, Higgins JPT, Rothstein HR (2011) Introduction to meta-analysis. Wiley, Sussex Borenstein M, Hedges LV, Higgins JPT, Rothstein HR (2011) Introduction to meta-analysis. Wiley, Sussex
20.
go back to reference Ferraresi C, Dos Santos RV, Marques G, et al (2015) Light-emitting diode therapy (LEDT) before matches prevents increase in creatine kinase with a light dose response in volleyball players. Lasers Med Sci 30(4): 1281–1287 Ferraresi C, Dos Santos RV, Marques G, et al (2015) Light-emitting diode therapy (LEDT) before matches prevents increase in creatine kinase with a light dose response in volleyball players. Lasers Med Sci 30(4): 1281–1287
21.
go back to reference Leal Junior ECP, Nassar FR, Tomazoni SS, Bjordal JM, Lopes-Martins RAB (2010) Low-level laser therapy enhances muscular performance as measured by isokinetic dynamometry in humans. Fisioter Pesqui 2010/-1/2PY - 2010:317–321 Leal Junior ECP, Nassar FR, Tomazoni SS, Bjordal JM, Lopes-Martins RAB (2010) Low-level laser therapy enhances muscular performance as measured by isokinetic dynamometry in humans. Fisioter Pesqui 2010/-1/2PY - 2010:317–321
22.
go back to reference Vieira WHB, Bezerra RM, Queiroz RAS, Maciel NFB, Parizotto NA, Ferraresi C (2014) Use of low-level laser therapy (808 nm) to muscle fatigue resistance: a randomized double-blind crossover trial. Photomed Laser Surg 32(12):678–685CrossRef Vieira WHB, Bezerra RM, Queiroz RAS, Maciel NFB, Parizotto NA, Ferraresi C (2014) Use of low-level laser therapy (808 nm) to muscle fatigue resistance: a randomized double-blind crossover trial. Photomed Laser Surg 32(12):678–685CrossRef
23.
go back to reference Maciel TD, Silva J, Jorge FS, Nicolau RA (2013) The influence of the 830 nm laser on the jump performance of female volleyball athletes. Rev Bras Eng Bioméd 2013:199–205CrossRef Maciel TD, Silva J, Jorge FS, Nicolau RA (2013) The influence of the 830 nm laser on the jump performance of female volleyball athletes. Rev Bras Eng Bioméd 2013:199–205CrossRef
25.
go back to reference Baroni BM, Leal Junior EC, Geremia JM, Diefenthaeler F, Vaz MA (2010) Effect of light-emitting diodes therapy (LEDT) on knee extensor muscle fatigue. Photomed Laser Surg 28(5):653–658CrossRefPubMed Baroni BM, Leal Junior EC, Geremia JM, Diefenthaeler F, Vaz MA (2010) Effect of light-emitting diodes therapy (LEDT) on knee extensor muscle fatigue. Photomed Laser Surg 28(5):653–658CrossRefPubMed
26.
go back to reference De Marchi T, Leal ECP Jr, Bortoli C, Tomazoni SS, Lopes-Martins RAB, Salvador M (2012) Low-level laser therapy (LLLT) in human progressive-intensity running: effects on exercise performance, skeletal muscle status, and oxidative stress. Lasers Med Sci 27(1):231–236CrossRefPubMed De Marchi T, Leal ECP Jr, Bortoli C, Tomazoni SS, Lopes-Martins RAB, Salvador M (2012) Low-level laser therapy (LLLT) in human progressive-intensity running: effects on exercise performance, skeletal muscle status, and oxidative stress. Lasers Med Sci 27(1):231–236CrossRefPubMed
27.
go back to reference Higashi RH, Toma RL, Tucci HT et al (2013) Effects of low-level laser therapy on biceps braquialis muscle fatigue in young women. Photomed Laser Surg 31(12):586–594CrossRefPubMed Higashi RH, Toma RL, Tucci HT et al (2013) Effects of low-level laser therapy on biceps braquialis muscle fatigue in young women. Photomed Laser Surg 31(12):586–594CrossRefPubMed
28.
go back to reference Larkin-Kaiser KA, Christou E, Tillman M, George S, Borsa PA (2015) Near-infrared light therapy to attenuate strength loss after strenuous resistance exercise. J Athl Train 50(1):45–50CrossRefPubMedPubMedCentral Larkin-Kaiser KA, Christou E, Tillman M, George S, Borsa PA (2015) Near-infrared light therapy to attenuate strength loss after strenuous resistance exercise. J Athl Train 50(1):45–50CrossRefPubMedPubMedCentral
29.
go back to reference Leal Junior EC, Lopes-Martins RA, Baroni BM et al (2009) Comparison between single-diode low-level laser therapy (LLLT) and LED multi-diode (cluster) therapy (LEDT) applications before high-intensity exercise. Photomed Laser Surg 27(4):617–623CrossRefPubMed Leal Junior EC, Lopes-Martins RA, Baroni BM et al (2009) Comparison between single-diode low-level laser therapy (LLLT) and LED multi-diode (cluster) therapy (LEDT) applications before high-intensity exercise. Photomed Laser Surg 27(4):617–623CrossRefPubMed
30.
go back to reference Leal ECP Jr, Lopes-Martins RAB, Baroni BM et al (2009) Effect of 830 nm low-level laser therapy applied before high-intensity exercises on skeletal muscle recovery in athletes. Lasers Med Sci 24(6):857–863CrossRef Leal ECP Jr, Lopes-Martins RAB, Baroni BM et al (2009) Effect of 830 nm low-level laser therapy applied before high-intensity exercises on skeletal muscle recovery in athletes. Lasers Med Sci 24(6):857–863CrossRef
31.
go back to reference Leal ECP Jr, Lopes-Martins RAB, Rossi RP et al (2009) Effect of cluster multi-diode Light Emitting Diode Therapy (LEDT) on exercise-induced skeletal muscle fatigue and skeletal muscle recovery in humans. Lasers Surg Med 41(8):572–577CrossRef Leal ECP Jr, Lopes-Martins RAB, Rossi RP et al (2009) Effect of cluster multi-diode Light Emitting Diode Therapy (LEDT) on exercise-induced skeletal muscle fatigue and skeletal muscle recovery in humans. Lasers Surg Med 41(8):572–577CrossRef
32.
go back to reference Leal Junior EC, Lopes-Martins RA, Vanin AA et al (2009) Effect of 830 nm low-level laser therapy in exercise-induced skeletal muscle fatigue in humans. Lasers Med Sci 24(3):425–431CrossRefPubMed Leal Junior EC, Lopes-Martins RA, Vanin AA et al (2009) Effect of 830 nm low-level laser therapy in exercise-induced skeletal muscle fatigue in humans. Lasers Med Sci 24(3):425–431CrossRefPubMed
33.
go back to reference Leal ECP Jr, Lopes-Martins RAB, Frigo L et al (2010) Effects of low-level laser therapy (LLLT) in the development of exercise-induced skeletal muscle fatigue and changes in biochemical markers related to postexercise recovery. J Orthop Sports Phys Ther 40(8):524–532CrossRef Leal ECP Jr, Lopes-Martins RAB, Frigo L et al (2010) Effects of low-level laser therapy (LLLT) in the development of exercise-induced skeletal muscle fatigue and changes in biochemical markers related to postexercise recovery. J Orthop Sports Phys Ther 40(8):524–532CrossRef
34.
go back to reference Toma RL, Tucci HT, Antunes HKM et al (2013) Effect of 808 nm low-level laser therapy in exercise-induced skeletal muscle fatigue in elderly women. Lasers Med Sci 28(5):1375–1382CrossRefPubMed Toma RL, Tucci HT, Antunes HKM et al (2013) Effect of 808 nm low-level laser therapy in exercise-induced skeletal muscle fatigue in elderly women. Lasers Med Sci 28(5):1375–1382CrossRefPubMed
35.
go back to reference Almeida P, Lopes-Martins RAB, De Marchi T et al (2012) Red (660 nm) and infrared (830 nm) low-level laser therapy in skeletal muscle fatigue in humans: what is better? Lasers Med Sci 27(2):453–458CrossRefPubMed Almeida P, Lopes-Martins RAB, De Marchi T et al (2012) Red (660 nm) and infrared (830 nm) low-level laser therapy in skeletal muscle fatigue in humans: what is better? Lasers Med Sci 27(2):453–458CrossRefPubMed
36.
go back to reference Baroni BM, Leal ECP Jr, de Marchi T, Lopes AL, Salvador M, Vaz MA (2010) Low level laser therapy before eccentric exercise reduces muscle damage markers in humans. Eur J Appl Physiol 110(4):789–796CrossRefPubMed Baroni BM, Leal ECP Jr, de Marchi T, Lopes AL, Salvador M, Vaz MA (2010) Low level laser therapy before eccentric exercise reduces muscle damage markers in humans. Eur J Appl Physiol 110(4):789–796CrossRefPubMed
37.
go back to reference Dos Reis FA, da Silva BA, Laraia EM et al (2014) Effects of pre- or post-exercise low-level laser therapy (830 nm) on skeletal muscle fatigue and biochemical markers of recovery in humans: double-blind placebo-controlled trial. Photomed Laser Surg 32(2):106–112CrossRefPubMed Dos Reis FA, da Silva BA, Laraia EM et al (2014) Effects of pre- or post-exercise low-level laser therapy (830 nm) on skeletal muscle fatigue and biochemical markers of recovery in humans: double-blind placebo-controlled trial. Photomed Laser Surg 32(2):106–112CrossRefPubMed
38.
go back to reference Leal ECP, Lopes-Martins RAB, Dalan F et al (2008) Effect of 655-nm low-level laser therapy on exercise-induced skeletal muscle fatigue in humans. Photomed Laser Surg 26(5):419–424CrossRef Leal ECP, Lopes-Martins RAB, Dalan F et al (2008) Effect of 655-nm low-level laser therapy on exercise-induced skeletal muscle fatigue in humans. Photomed Laser Surg 26(5):419–424CrossRef
39.
go back to reference Miranda EF, Leal-Junior ECP, Marchetti PH, Dal CS (2014) Acute effects of light emitting diodes therapy (LEDT) in muscle function during isometric exercise in patients with chronic obstructive pulmonary disease: preliminary results of a randomized controlled trial. Lasers Med Sci 29(1):359–365CrossRefPubMed Miranda EF, Leal-Junior ECP, Marchetti PH, Dal CS (2014) Acute effects of light emitting diodes therapy (LEDT) in muscle function during isometric exercise in patients with chronic obstructive pulmonary disease: preliminary results of a randomized controlled trial. Lasers Med Sci 29(1):359–365CrossRefPubMed
40.
go back to reference Denis R, O’Brien C, Delahunt E (2013) The effects of light emitting diode therapy following high intensity exercise. Phys Ther Sport 14(2):110–115CrossRefPubMed Denis R, O’Brien C, Delahunt E (2013) The effects of light emitting diode therapy following high intensity exercise. Phys Ther Sport 14(2):110–115CrossRefPubMed
41.
go back to reference Guyatt GH, Oxman AD, Vist GE et al (2008) GRADE: an emerging consensus on rating quality of evidence and strength of recommendations British medical journal 336(7650):924–926. Guyatt GH, Oxman AD, Vist GE et al (2008) GRADE: an emerging consensus on rating quality of evidence and strength of recommendations British medical journal 336(7650):924–926.
42.
go back to reference Goodwin ML, Harris JE, Hernández A, Gladden LB (2007) Blood lactate measurements and analysis during exercise: a guide for clinicians. J Diabetes Sci Technol 1(4):558–569CrossRefPubMedPubMedCentral Goodwin ML, Harris JE, Hernández A, Gladden LB (2007) Blood lactate measurements and analysis during exercise: a guide for clinicians. J Diabetes Sci Technol 1(4):558–569CrossRefPubMedPubMedCentral
43.
go back to reference Ferraresi C, de Sousa MV, Huang YY, Bagnato VS, Parizotto NA, Hamblin MR (2015) Time response of increases in ATP and muscle resistance to fatigue after low-level laser (light) therapy (LLLT) in mice. Lasers Med Sci 30(4):1259–1267CrossRefPubMed Ferraresi C, de Sousa MV, Huang YY, Bagnato VS, Parizotto NA, Hamblin MR (2015) Time response of increases in ATP and muscle resistance to fatigue after low-level laser (light) therapy (LLLT) in mice. Lasers Med Sci 30(4):1259–1267CrossRefPubMed
44.
go back to reference Allen DG, Lamb GD, Westerblad H (2008) Skeletal muscle fatigue: cellular mechanisms. Physiol Rev 88(1):287–332CrossRefPubMed Allen DG, Lamb GD, Westerblad H (2008) Skeletal muscle fatigue: cellular mechanisms. Physiol Rev 88(1):287–332CrossRefPubMed
45.
go back to reference Ferraresi C, de Brito OT, de Oliveira ZL et al (2011) Effects of low level laser therapy (808 nm) on physical strength training in humans. Lasers Med Sci 26(3):349–358CrossRefPubMed Ferraresi C, de Brito OT, de Oliveira ZL et al (2011) Effects of low level laser therapy (808 nm) on physical strength training in humans. Lasers Med Sci 26(3):349–358CrossRefPubMed
46.
go back to reference Borsa PA, Larkin KA, True JM (2013) Does phototherapy enhance skeletal muscle contractile function and postexercise recovery? A systematic review. J Athl Train 48(1):57–67PubMedPubMedCentral Borsa PA, Larkin KA, True JM (2013) Does phototherapy enhance skeletal muscle contractile function and postexercise recovery? A systematic review. J Athl Train 48(1):57–67PubMedPubMedCentral
47.
go back to reference Leal-Junior EC, Vanin AA, Miranda EF, de Carvalho PD, Dal Corso S, Bjordal JM (2013) Effect of phototherapy (low-level laser therapy and light-emitting diode therapy) on exercise performance and markers of exercise recovery: a systematic review with meta-analysis. Lasers Med Sci 30(2): 925–939 Leal-Junior EC, Vanin AA, Miranda EF, de Carvalho PD, Dal Corso S, Bjordal JM (2013) Effect of phototherapy (low-level laser therapy and light-emitting diode therapy) on exercise performance and markers of exercise recovery: a systematic review with meta-analysis. Lasers Med Sci 30(2): 925–939
48.
go back to reference Dall Agnol MA, Nicolau RA, de Lima CJ, Munin E (2009) Comparative analysis of coherent light action (laser) versus non-coherent light (light-emitting diode) for tissue repair in diabetic rats. Lasers Med Sci 24(6):909–916CrossRefPubMed Dall Agnol MA, Nicolau RA, de Lima CJ, Munin E (2009) Comparative analysis of coherent light action (laser) versus non-coherent light (light-emitting diode) for tissue repair in diabetic rats. Lasers Med Sci 24(6):909–916CrossRefPubMed
49.
go back to reference Kelencz CA, Munoz IS, Amorim CF, Nicolau RA (2010) Effect of low-power gallium-aluminum-arsenium noncoherent light (640nm) on muscle activity: a clinical study. Photomed Laser Surg 28(5):647–652CrossRefPubMed Kelencz CA, Munoz IS, Amorim CF, Nicolau RA (2010) Effect of low-power gallium-aluminum-arsenium noncoherent light (640nm) on muscle activity: a clinical study. Photomed Laser Surg 28(5):647–652CrossRefPubMed
50.
go back to reference Muñoz ISS, Hauck LA, Nicolau RA, Kelencz CA, Maciel TdS, Paula Júnior AR (2013) Effect of laser vs LED in the near infrared region on the skeletal muscle activity: clinical study. Rev Bras Eng Bioméd 2013/-0/9PY - 2013:262–268 Muñoz ISS, Hauck LA, Nicolau RA, Kelencz CA, Maciel TdS, Paula Júnior AR (2013) Effect of laser vs LED in the near infrared region on the skeletal muscle activity: clinical study. Rev Bras Eng Bioméd 2013/-0/9PY - 2013:262–268
Metadata
Title
Low-level phototherapy to improve exercise capacity and muscle performance: a systematic review and meta-analysis
Authors
Fernando Kenji Nampo
Vinícius Cavalheri
Francyelle dos Santos Soares
Solange de Paula Ramos
Enilton Aparecido Camargo
Publication date
01-12-2016
Publisher
Springer London
Published in
Lasers in Medical Science / Issue 9/2016
Print ISSN: 0268-8921
Electronic ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-016-1977-9

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