Skip to main content
Erschienen in: Lasers in Medical Science 9/2019

04.04.2019 | Original Article

A transient protective effect of low-level laser irradiation against disuse-induced atrophy of rats

verfasst von: Yung-Ting Kou, Hui-Tien Liu, Chun-Yin Hou, Chuang-Yu Lin, Chung-Min Tsai, Hsi Chang

Erschienen in: Lasers in Medical Science | Ausgabe 9/2019

Einloggen, um Zugang zu erhalten

Abstract

Satellite cells, a population of skeletal muscular stem cells, are generally recognized as the main and, possibly, the sole source of postnatal muscle regeneration. Previous studies have revealed the potential of low-level laser (LLL) irradiation in promoting satellite cell proliferation, which, thereby, boosts the recovery of skeletal muscle from atrophy. The purpose of this study is to investigate the beneficial effect of LLL on disuse-induced atrophy. The optimal irradiation condition of LLL (808 nm) enhancing the proliferation of Pax7+ve cells, isolated from tibialis anterior (TA) muscle, was examined and applied on TA muscle of disuse-induced atrophy model of the rats accordingly. Healthy rats were used as the control. On one hand, transiently, LLL was able to postpone the progression of atrophy for 1 week through a reduction of apoptosis in Pax7−veMyoD+ve (myocyte) population. Simultaneously, a significant enhancement was observed in Pax7+veMyoD+ve population; however, most of the increased cells underwent apoptosis since the second week, which suggested an impaired maturation of the population. On the other hand, in normal control rats with LLL irradiation, a significant increase in Pax7+veMyoD+ve cells and a significant decrease of apoptosis were observed. As a result, a strengthened muscle contraction was observed. Our data showed the capability of LLL in postponing the progression of disuse-induced atrophy for the first time. Furthermore, the result of normal rats with LLL irradiation showed the effectiveness of LLL to strengthen muscle contraction in healthy control.
Anhänge
Nur mit Berechtigung zugänglich
Literatur
3.
Zurück zum Zitat Ferrans CE, Lipscomb J, Gotay CC, Snyder C (2004) Outcome assessment in cancer, definitions and conceptual models of quality of life. Cambridge University Press Ferrans CE, Lipscomb J, Gotay CC, Snyder C (2004) Outcome assessment in cancer, definitions and conceptual models of quality of life. Cambridge University Press
5.
Zurück zum Zitat Mauro A (1961) Satellite cell of skeletal muscle fibers. J Biophys Biochem Cytol 9:493–495CrossRef Mauro A (1961) Satellite cell of skeletal muscle fibers. J Biophys Biochem Cytol 9:493–495CrossRef
6.
Zurück zum Zitat Seale P, Sabourin LA, Girgis-Gabardo A, Mansouri A, Gruss P, Rudnicki MA (2000) Pax7 is required for the specification of myogenic satellite cells. Cell 102(6):777–786CrossRef Seale P, Sabourin LA, Girgis-Gabardo A, Mansouri A, Gruss P, Rudnicki MA (2000) Pax7 is required for the specification of myogenic satellite cells. Cell 102(6):777–786CrossRef
7.
Zurück zum Zitat Rudnicki MA, Schnegelsberg PN, Stead RH, Braun T, Arnold HH, Jaenisch R (1993) MyoD or Myf-5 is required for the formation of skeletal muscle. Cell 75(7):1351–1359CrossRef Rudnicki MA, Schnegelsberg PN, Stead RH, Braun T, Arnold HH, Jaenisch R (1993) MyoD or Myf-5 is required for the formation of skeletal muscle. Cell 75(7):1351–1359CrossRef
12.
Zurück zum Zitat Zammit PS, Heslop L, Hudon V, Rosenblatt JD, Tajbakhsh S, Buckingham ME, Beauchamp JR, Partridge TA (2002) Kinetics of myoblast proliferation show that resident satellite cells are competent to fully regenerate skeletal muscle fibers. Exp Cell Res 281(1):39–49CrossRef Zammit PS, Heslop L, Hudon V, Rosenblatt JD, Tajbakhsh S, Buckingham ME, Beauchamp JR, Partridge TA (2002) Kinetics of myoblast proliferation show that resident satellite cells are competent to fully regenerate skeletal muscle fibers. Exp Cell Res 281(1):39–49CrossRef
16.
Zurück zum Zitat Nawrotzki R, Blake DJ, Davies KE (1996) The genetic basis of neuromuscular disorders. Trends Genet 12(8):294–298CrossRef Nawrotzki R, Blake DJ, Davies KE (1996) The genetic basis of neuromuscular disorders. Trends Genet 12(8):294–298CrossRef
17.
Zurück zum Zitat Deitrick JE (1948) The effect of immobilization on metabolic and physiological functions of normal men. Bull N Y Acad Med 24(6):364–375PubMedPubMedCentral Deitrick JE (1948) The effect of immobilization on metabolic and physiological functions of normal men. Bull N Y Acad Med 24(6):364–375PubMedPubMedCentral
18.
Zurück zum Zitat Tomanek RJ, Lund DD (1973) Degeneration of different types of skeletal muscle fibres. I Denervation. J Anat 116(Pt 3):395–407PubMedPubMedCentral Tomanek RJ, Lund DD (1973) Degeneration of different types of skeletal muscle fibres. I Denervation. J Anat 116(Pt 3):395–407PubMedPubMedCentral
22.
Zurück zum Zitat Passarella S, Casamassima E, Molinari S, Pastore D, Quagliariello E, Catalano IM, Cingolani A (1984) Increase of proton electrochemical potential and ATP synthesis in rat liver mitochondria irradiated in vitro by helium-neon laser. FEBS Lett 175(1):95–99CrossRef Passarella S, Casamassima E, Molinari S, Pastore D, Quagliariello E, Catalano IM, Cingolani A (1984) Increase of proton electrochemical potential and ATP synthesis in rat liver mitochondria irradiated in vitro by helium-neon laser. FEBS Lett 175(1):95–99CrossRef
23.
25.
Zurück zum Zitat Conlan MJ, Rapley JW, Cobb CM (1996) Biostimulation of wound healing by low-energy laser irradiation. A review. J Clin Periodontol 23(5):492–496CrossRef Conlan MJ, Rapley JW, Cobb CM (1996) Biostimulation of wound healing by low-energy laser irradiation. A review. J Clin Periodontol 23(5):492–496CrossRef
26.
Zurück zum Zitat Yaakobi T, Maltz L, Oron U (1996) Promotion of bone repair in the cortical bone of the tibia in rats by low energy laser (He-Ne) irradiation. Calcif Tissue Int 59(4):297–300CrossRef Yaakobi T, Maltz L, Oron U (1996) Promotion of bone repair in the cortical bone of the tibia in rats by low energy laser (He-Ne) irradiation. Calcif Tissue Int 59(4):297–300CrossRef
28.
Zurück zum Zitat Bibikova A, Belkin V, Oron U (1994) Enhancement of angiogenesis in regenerating gastrocnemius muscle of the toad (Bufo viridis) by low-energy laser irradiation. Anat Embryol 190(6):597–602CrossRef Bibikova A, Belkin V, Oron U (1994) Enhancement of angiogenesis in regenerating gastrocnemius muscle of the toad (Bufo viridis) by low-energy laser irradiation. Anat Embryol 190(6):597–602CrossRef
29.
Zurück zum Zitat Amaral AC, Parizotto NA, Salvini TF (2001) Dose-dependency of low-energy HeNe laser effect in regeneration of skeletal muscle in mice. Lasers Med Sci 16(1):44–51CrossRef Amaral AC, Parizotto NA, Salvini TF (2001) Dose-dependency of low-energy HeNe laser effect in regeneration of skeletal muscle in mice. Lasers Med Sci 16(1):44–51CrossRef
30.
Zurück zum Zitat Wollman Y, Rochkind S (1993) Muscle fiber formation in vitro is delayed by low power laser irradiation. J Photochem Photobiol B 17(3):287–290CrossRef Wollman Y, Rochkind S (1993) Muscle fiber formation in vitro is delayed by low power laser irradiation. J Photochem Photobiol B 17(3):287–290CrossRef
32.
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):372–380CrossRef 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):372–380CrossRef
34.
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
36.
Metadaten
Titel
A transient protective effect of low-level laser irradiation against disuse-induced atrophy of rats
verfasst von
Yung-Ting Kou
Hui-Tien Liu
Chun-Yin Hou
Chuang-Yu Lin
Chung-Min Tsai
Hsi Chang
Publikationsdatum
04.04.2019
Verlag
Springer London
Erschienen in
Lasers in Medical Science / Ausgabe 9/2019
Print ISSN: 0268-8921
Elektronische ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-019-02778-5

Weitere Artikel der Ausgabe 9/2019

Lasers in Medical Science 9/2019 Zur Ausgabe