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Erschienen in: Lasers in Medical Science 3/2011

01.05.2011 | Original Article

Effects of low level laser therapy (808 nm) on physical strength training in humans

verfasst von: Cleber Ferraresi, Taysa de Brito Oliveira, Leonardo de Oliveira Zafalon, Rodrigo Bezerra de Menezes Reiff, Vilmar Baldissera, Sérgio Eduardo de Andrade Perez, Euclides Matheucci Júnior, Nivaldo Antônio Parizotto

Erschienen in: Lasers in Medical Science | Ausgabe 3/2011

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Abstract

Recent studies have investigated whether low level laser therapy (LLLT) can optimize human muscle performance in physical exercise. This study tested the effect of LLLT on muscle performance in physical strength training in humans compared with strength training only. The study involved 36 men (20.8±2.2 years old), clinically healthy, with a beginner and/or moderate physical activity training pattern. The subjects were randomly distributed into three groups: TLG (training with LLLT), TG (training only) and CG (control). The training for TG and TLG subjects involved the leg-press exercise with a load equal to 80% of one repetition maximum (1RM) in the leg-press test over 12 consecutive weeks. The LLLT was applied to the quadriceps muscle of both lower limbs of the TLG subjects immediately after the end of each training session. Using an infrared laser device (808 nm) with six diodes of 60 mW each a total energy of 50.4 J of LLLT was administered over 140 s. Muscle strength was assessed using the 1RM leg-press test and the isokinetic dynamometer test. The muscle volume of the thigh of the dominant limb was assessed by thigh perimetry. The TLG subjects showed an increase of 55% in the 1RM leg-press test, which was significantly higher than the increases in the TG subjects (26%, P = 0.033) and in the CG subjects (0.27%, P < 0.001). The TLG was the only group to show an increase in muscle performance in the isokinetic dynamometry test compared with baseline. The increases in thigh perimeter in the TLG subjects and TG subjects were not significantly different (4.52% and 2.75%, respectively; P = 0.775). Strength training associated with LLLT can increase muscle performance compared with strength training only.
Literatur
1.
Zurück zum Zitat Folland JP, Williams AG (2007) The adaptations to strength training: morphological and neurological contributions to increased strength. Sports Med 37(2):145–168. doi:3724 PubMedCrossRef Folland JP, Williams AG (2007) The adaptations to strength training: morphological and neurological contributions to increased strength. Sports Med 37(2):145–168. doi:3724 PubMedCrossRef
2.
Zurück zum Zitat Fry AC (2004) The role of resistance exercise intensity on muscle fibre adaptations. Sports Med 34(10):663–679PubMedCrossRef Fry AC (2004) The role of resistance exercise intensity on muscle fibre adaptations. Sports Med 34(10):663–679PubMedCrossRef
3.
Zurück zum Zitat Tagesson S, Oberg B, Good L, Kvist J (2008) A comprehensive rehabilitation program with quadriceps strengthening in closed versus open kinetic chain exercise in patients with anterior cruciate ligament deficiency: a randomized clinical trial evaluating dynamic tibial translation and muscle function. Am J Sports Med 36(2):298–307. doi:10.1177/0363546507307867 PubMedCrossRef Tagesson S, Oberg B, Good L, Kvist J (2008) A comprehensive rehabilitation program with quadriceps strengthening in closed versus open kinetic chain exercise in patients with anterior cruciate ligament deficiency: a randomized clinical trial evaluating dynamic tibial translation and muscle function. Am J Sports Med 36(2):298–307. doi:10.​1177/​0363546507307867​ PubMedCrossRef
4.
Zurück zum Zitat Augustsson J, Esko A, Thomee R, Svantesson U (1998) Weight training of the thigh muscles using closed vs. open kinetic chain exercises: a comparison of performance enhancement. J Orthop Sports Phys Ther 27(1):3–8PubMed Augustsson J, Esko A, Thomee R, Svantesson U (1998) Weight training of the thigh muscles using closed vs. open kinetic chain exercises: a comparison of performance enhancement. J Orthop Sports Phys Ther 27(1):3–8PubMed
7.
Zurück zum Zitat Wawrzyniak JR, Tracy JE, Catizone PV, Storrow RR (1996) Effect of closed chain exercise on quadriceps femoris peak torque and functional performance. J Athl Train 31(4):335–340PubMed Wawrzyniak JR, Tracy JE, Catizone PV, Storrow RR (1996) Effect of closed chain exercise on quadriceps femoris peak torque and functional performance. J Athl Train 31(4):335–340PubMed
12.
Zurück zum Zitat Leal Junior EC, Lopes-Martins RA, Vanin AA, Baroni BM, Grosselli D, De Marchi T, Iversen VV, Bjordal JM (2009) Effect of 830 nm low-level laser therapy in exercise-induced skeletal muscle fatigue in humans. Lasers Med Sci 24(3):425–431. doi:10.1007/s10103-008-0592-9 PubMedCrossRef Leal Junior EC, Lopes-Martins RA, Vanin AA, Baroni BM, Grosselli D, De Marchi T, Iversen VV, Bjordal JM (2009) Effect of 830 nm low-level laser therapy in exercise-induced skeletal muscle fatigue in humans. Lasers Med Sci 24(3):425–431. doi:10.​1007/​s10103-008-0592-9 PubMedCrossRef
14.
Zurück zum Zitat Enwemeka CS, Parker JC, Dowdy DS, Harkness EE, Sanford LE, Woodruff LD (2004) The efficacy of low-power lasers in tissue repair and pain control: a meta-analysis study. Photomed Laser Surg 22(4):323–329. doi:10.1089/1549541041797841 PubMedCrossRef Enwemeka CS, Parker JC, Dowdy DS, Harkness EE, Sanford LE, Woodruff LD (2004) The efficacy of low-power lasers in tissue repair and pain control: a meta-analysis study. Photomed Laser Surg 22(4):323–329. doi:10.​1089/​1549541041797841​ PubMedCrossRef
15.
Zurück zum Zitat Bakeeva LE, Manteifel VM, Rodichev EB, Karu TI (1993) Formation of gigantic mitochondria in human blood lymphocytes under the effect of an He-Ne laser. Mol Biol (Mosk) 27(3):608–617 Bakeeva LE, Manteifel VM, Rodichev EB, Karu TI (1993) Formation of gigantic mitochondria in human blood lymphocytes under the effect of an He-Ne laser. Mol Biol (Mosk) 27(3):608–617
16.
Zurück zum Zitat Manteifel VM, Karu TI (2005) Structure of mitochondria and activity of their respiratory chain in subsequent generations of yeast cells exposed to He-Ne laser light. Izv Akad Nauk Ser Biol 6:672–683PubMed Manteifel VM, Karu TI (2005) Structure of mitochondria and activity of their respiratory chain in subsequent generations of yeast cells exposed to He-Ne laser light. Izv Akad Nauk Ser Biol 6:672–683PubMed
17.
Zurück zum Zitat Leal Junior EC, Lopes-Martins RA, Dalan F, Ferrari M, Sbabo FM, Generosi RA, Baroni BM, Penna SC, Iversen VV, Bjordal JM (2008) Effect of 655-nm low-level laser therapy on exercise-induced skeletal muscle fatigue in humans. Photomed Laser Surg 26(5):419–424. doi:10.1089/pho.2007.2160 PubMedCrossRef Leal Junior EC, Lopes-Martins RA, Dalan F, Ferrari M, Sbabo FM, Generosi RA, Baroni BM, Penna SC, Iversen VV, Bjordal JM (2008) Effect of 655-nm low-level laser therapy on exercise-induced skeletal muscle fatigue in humans. Photomed Laser Surg 26(5):419–424. doi:10.​1089/​pho.​2007.​2160 PubMedCrossRef
18.
Zurück zum Zitat Leal Junior EC, Lopes-Martins RA, Baroni BM, De Marchi T, Taufer D, Manfro DS, Rech M, Danna V, Grosselli D, Generosi RA, Marcos RL, Ramos L, Bjordal JM (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):857–863. doi:10.1007/s10103-008-0633-4 PubMedCrossRef Leal Junior EC, Lopes-Martins RA, Baroni BM, De Marchi T, Taufer D, Manfro DS, Rech M, Danna V, Grosselli D, Generosi RA, Marcos RL, Ramos L, Bjordal JM (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):857–863. doi:10.​1007/​s10103-008-0633-4 PubMedCrossRef
19.
Zurück zum Zitat Caspersen CJ, Pereira MA, Curran KM (2000) Changes in physical activity patterns in the United States, by sex and cross-sectional age. Med Sci Sports Exerc 32(9):1601–1609PubMedCrossRef Caspersen CJ, Pereira MA, Curran KM (2000) Changes in physical activity patterns in the United States, by sex and cross-sectional age. Med Sci Sports Exerc 32(9):1601–1609PubMedCrossRef
20.
Zurück zum Zitat Nakagawa TH, Muniz TB, Baldon Rde M, Dias Maciel C, de Menezes Reiff RB, Serrao FV (2008) The effect of additional strengthening of hip abductor and lateral rotator muscles in patellofemoral pain syndrome: a randomized controlled pilot study. Clin Rehabil 22(12):1051–1060PubMedCrossRef Nakagawa TH, Muniz TB, Baldon Rde M, Dias Maciel C, de Menezes Reiff RB, Serrao FV (2008) The effect of additional strengthening of hip abductor and lateral rotator muscles in patellofemoral pain syndrome: a randomized controlled pilot study. Clin Rehabil 22(12):1051–1060PubMedCrossRef
21.
Zurück zum Zitat Gulick DT, Chiappa JJ, Crowley KR, Schade ME, Wescott SR (1998) Predicting 1-RM isotonic knee extension strength utilizing isokinetic dynamometry. Isokinet Exerc Sci 7(4):145–149 Gulick DT, Chiappa JJ, Crowley KR, Schade ME, Wescott SR (1998) Predicting 1-RM isotonic knee extension strength utilizing isokinetic dynamometry. Isokinet Exerc Sci 7(4):145–149
23.
Zurück zum Zitat Wernbom M, Augustsson J, Thomee R (2007) The influence of frequency, intensity, volume and mode of strength training on whole muscle cross-sectional area in humans. Sports Med 37(3):225–264PubMedCrossRef Wernbom M, Augustsson J, Thomee R (2007) The influence of frequency, intensity, volume and mode of strength training on whole muscle cross-sectional area in humans. Sports Med 37(3):225–264PubMedCrossRef
24.
25.
Zurück zum Zitat Stone M, Plisk S, Collins D (2002) Training principles: evaluation of modes and methods of resistance training – a coaching perspective. Sports Biomech 1(1):79–103PubMedCrossRef Stone M, Plisk S, Collins D (2002) Training principles: evaluation of modes and methods of resistance training – a coaching perspective. Sports Biomech 1(1):79–103PubMedCrossRef
26.
Zurück zum Zitat Tonkonogi M, Walsh B, Svensson M, Sahlin K (2000) Mitochondrial function and antioxidative defence in human muscle: effects of endurance training and oxidative stress. J Physiol 528(Pt 2):379–388PubMedCrossRef Tonkonogi M, Walsh B, Svensson M, Sahlin K (2000) Mitochondrial function and antioxidative defence in human muscle: effects of endurance training and oxidative stress. J Physiol 528(Pt 2):379–388PubMedCrossRef
27.
Zurück zum Zitat Tonkonogi M, Sahlin K (2002) Physical exercise and mitochondrial function in human skeletal muscle. Exerc Sport Sci Rev 30(3):129–137PubMedCrossRef Tonkonogi M, Sahlin K (2002) Physical exercise and mitochondrial function in human skeletal muscle. Exerc Sport Sci Rev 30(3):129–137PubMedCrossRef
28.
Zurück zum Zitat Sahlin K, Mogensen M, Bagger M, Fernstrom M, Pedersen PK (2007) The potential for mitochondrial fat oxidation in human skeletal muscle influences whole body fat oxidation during low-intensity exercise. Am J Physiol Endocrinol Metab 292(1):E223–E230PubMedCrossRef Sahlin K, Mogensen M, Bagger M, Fernstrom M, Pedersen PK (2007) The potential for mitochondrial fat oxidation in human skeletal muscle influences whole body fat oxidation during low-intensity exercise. Am J Physiol Endocrinol Metab 292(1):E223–E230PubMedCrossRef
30.
Zurück zum Zitat Goreham C, Green HJ, Ball-Burnett M, Ranney D (1999) High-resistance training and muscle metabolism during prolonged exercise. Am J Physiol 276(3 Pt 1):E489–E496PubMed Goreham C, Green HJ, Ball-Burnett M, Ranney D (1999) High-resistance training and muscle metabolism during prolonged exercise. Am J Physiol 276(3 Pt 1):E489–E496PubMed
31.
Zurück zum Zitat 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):1129–1134PubMedCrossRef 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):1129–1134PubMedCrossRef
32.
Zurück zum Zitat Hashimoto T, Hussien R, Brooks GA (2006) Colocalization of MCT1, CD147, and LDH in mitochondrial inner membrane of L6 muscle cells: evidence of a mitochondrial lactate oxidation complex. Am J Physiol Endocrinol Metab 290(6):E1237–E1244PubMedCrossRef Hashimoto T, Hussien R, Brooks GA (2006) Colocalization of MCT1, CD147, and LDH in mitochondrial inner membrane of L6 muscle cells: evidence of a mitochondrial lactate oxidation complex. Am J Physiol Endocrinol Metab 290(6):E1237–E1244PubMedCrossRef
34.
35.
Zurück zum Zitat Petrella JK, Kim JS, Mayhew DL, Cross JM, Bamman MM (2008) Potent myofiber hypertrophy during resistance training in humans is associated with satellite cell-mediated myonuclear addition: a cluster analysis. J Appl Physiol 104(6):1736–1742PubMedCrossRef Petrella JK, Kim JS, Mayhew DL, Cross JM, Bamman MM (2008) Potent myofiber hypertrophy during resistance training in humans is associated with satellite cell-mediated myonuclear addition: a cluster analysis. J Appl Physiol 104(6):1736–1742PubMedCrossRef
37.
Zurück zum Zitat Hawke TJ, Garry DJ (2001) Myogenic satellite cells: physiology to molecular biology. J Appl Physiol 91(2):534–551PubMed Hawke TJ, Garry DJ (2001) Myogenic satellite cells: physiology to molecular biology. J Appl Physiol 91(2):534–551PubMed
38.
Zurück zum Zitat Holterman CE, Rudnicki MA (2005) Molecular regulation of satellite cell function. Semin Cell Dev Biol 16(4-5):575–584PubMedCrossRef Holterman CE, Rudnicki MA (2005) Molecular regulation of satellite cell function. Semin Cell Dev Biol 16(4-5):575–584PubMedCrossRef
39.
Zurück zum Zitat Weiss N, Oron U (1992) Enhancement of muscle regeneration in the rat gastrocnemius muscle by low energy laser irradiation. Anat Embryol (Berl) 186(5):497–503CrossRef Weiss N, Oron U (1992) Enhancement of muscle regeneration in the rat gastrocnemius muscle by low energy laser irradiation. Anat Embryol (Berl) 186(5):497–503CrossRef
40.
Zurück zum Zitat Shefer G, Partridge TA, Heslop L, Gross JG, Oron U, Halevy O (2002) Low-energy laser irradiation promotes the survival and cell cycle entry of skeletal muscle satellite cells. J Cell Sci 115(Pt 7):1461–1469PubMed Shefer G, Partridge TA, Heslop L, Gross JG, Oron U, Halevy O (2002) Low-energy laser irradiation promotes the survival and cell cycle entry of skeletal muscle satellite cells. J Cell Sci 115(Pt 7):1461–1469PubMed
41.
Zurück zum Zitat Ben-Dov N, Shefer G, Irintchev A, Wernig A, Oron U, Halevy O (1999) Low-energy laser irradiation affects satellite cell proliferation and differentiation in vitro. Biochim Biophys Acta 1448(3):372–380PubMedCrossRef Ben-Dov N, Shefer G, Irintchev A, Wernig A, Oron U, Halevy O (1999) Low-energy laser irradiation affects satellite cell proliferation and differentiation in vitro. Biochim Biophys Acta 1448(3):372–380PubMedCrossRef
42.
Zurück zum Zitat Coffey VG, Hawley JA (2007) The molecular bases of training adaptation. Sports Med 37(9):737–763PubMedCrossRef Coffey VG, Hawley JA (2007) The molecular bases of training adaptation. Sports Med 37(9):737–763PubMedCrossRef
43.
Zurück zum Zitat Hawley JA (2009) Molecular responses to strength and endurance training: are they incompatible? Appl Physiol Nutr Metab 34(3):355–361PubMedCrossRef Hawley JA (2009) Molecular responses to strength and endurance training: are they incompatible? Appl Physiol Nutr Metab 34(3):355–361PubMedCrossRef
Metadaten
Titel
Effects of low level laser therapy (808 nm) on physical strength training in humans
verfasst von
Cleber Ferraresi
Taysa de Brito Oliveira
Leonardo de Oliveira Zafalon
Rodrigo Bezerra de Menezes Reiff
Vilmar Baldissera
Sérgio Eduardo de Andrade Perez
Euclides Matheucci Júnior
Nivaldo Antônio Parizotto
Publikationsdatum
01.05.2011
Verlag
Springer-Verlag
Erschienen in
Lasers in Medical Science / Ausgabe 3/2011
Print ISSN: 0268-8921
Elektronische ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-010-0855-0

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