Literature DB >> 25983578

Microcurrent electrical neuromuscular stimulation facilitates regeneration of injured skeletal muscle in mice.

Hiroto Fujiya1, Yuji Ogura2, Yoshitaka Ohno3, Ayumi Goto4, Ayane Nakamura4, Kazuya Ohashi4, Daiki Uematsu3, Haruhito Aoki5, Haruki Musha6, Katsumasa Goto7.   

Abstract

Conservative therapies, mainly resting care for the damaged muscle, are generally used as a treatment for skeletal muscle injuries (such as muscle fragmentation). Several past studies reported that microcurrent electrical neuromuscular stimulation (MENS) facilitates a repair of injured soft tissues and shortens the recovery period. However, the effects of MENS on the regeneration in injured skeletal muscle are still unclear. The purpose of this study was to investigate the effect of MENS on the regenerative process of injured skeletal muscle and to elucidate whether satellite cells in injured skeletal muscle are activated by MENS by using animal models. Male C57BL/6J mice, aged 7 weeks old, were used (n = 30). Mice were randomly divided into two groups: (1) cardiotoxin (CTX)-injected (CX, n = 15) and (2) CTX-injected with MENS treatment (MX, n=15) groups. CTX was injected into tibialis anterior muscle (TA) of mice in CX and MX groups to initiate the necrosis-regeneration cycle of the muscle. TA was dissected 1, 2, and 3 weeks after the injection. Muscle weight, muscle protein content, the mean cross-sectional areas of muscle fibers, the relative percentage of fibers having central nuclei, and the number of muscle satellite cells were evaluated. MENS facilitated the recovery of the muscle dry weight and protein content relative to body weight, and the mean cross-sectional areas of muscle fibers in CTX-induced injured TA muscle. The number of Pax7-positive muscle satellite cells was increased by MENS during the regenerating period. Decrease in the percentages of fibers with central nuclei after CTX-injection was facilitated by MENS. MENS may facilitate the regeneration of injured skeletal muscles by activating the regenerative potential of skeletal muscles. Key pointsMicrocurrent electrical neuromuscular stimulation (MENS) facilitated the recovery of the relative muscle dry weight, the relative muscle protein content, and the mean cross-sectional areas of muscle fibers of injured TA muscle in mice.The number of satellite cells was increased by MENS during the regenerating phase of injured skeletal muscle.Decrease in the percentages of fibers with central nuclei was facilitated by MENS.MENS may facilitate the regeneration of injured skeletal muscles.

Entities:  

Keywords:  Muscle injury; central nuclei; muscle satellite cell; physiotherapy; regenerative potential; sports injury

Year:  2015        PMID: 25983578      PMCID: PMC4424458     

Source DB:  PubMed          Journal:  J Sports Sci Med        ISSN: 1303-2968            Impact factor:   2.988


  38 in total

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  3 in total

1.  Long Term Changes in Muscles around the Knee Joint after ACL Resection in Rats: Comparisons of ACL-Resected, Contralateral and Normal Limb.

Authors:  Mahiro Ohno; Hiroto Fujiya; Katsumasa Goto; Mitsutoshi Kurosaka; Yuji Ogura; Kanaka Yatabe; Takaaki Kudo; Hajime Kobayashi; Hisateru Niki; Haruki Musha
Journal:  J Sports Sci Med       Date:  2017-08-08       Impact factor: 2.988

2.  Short-term microcurrent electrical neuromuscular stimulation to improve muscle function in the elderly: A randomized, double-blinded, sham-controlled clinical trial.

Authors:  Dong Rak Kwon; Jihoon Kim; Yongmin Kim; Sungho An; Jinmyoung Kwak; Sungjae Lee; Suyeon Park; Yoon Hee Choi; Yang Kyun Lee; Ji Woong Park
Journal:  Medicine (Baltimore)       Date:  2017-06       Impact factor: 1.889

3.  Effectiveness of combining microcurrent with resistance training in trained males.

Authors:  Fernando Naclerio; Marcos Seijo; Bettina Karsten; George Brooker; Leandro Carbone; Jack Thirkell; Eneko Larumbe-Zabala
Journal:  Eur J Appl Physiol       Date:  2019-10-17       Impact factor: 3.078

  3 in total

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