» Articles » PMID: 36910676

Effect of Concurrent Aerobic Exercise and Bone Marrow Stromal Cell Transplantation on Time-dependent Changes of Myogenic Differentiation-related Cascades in Soleus Muscle After Sciatic Nerve Injury

Overview
Journal J Exerc Rehabil
Date 2023 Mar 13
PMID 36910676
Authors
Affiliations
Soon will be listed here.
Abstract

The purpose of this study was to investigate the time-dependent alteration in whether concurrent aerobic exercise and bone marrow stromal cell (BMSC) engraftment could regulate myogenic differentiation-related signaling pathway in the soleus up to 35 days after sciatic nerve injury (SNI). The rats were divided as follows: the normal control (CON, n=5), sedentary group (SED, n=20), treadmill exercise group (TEX, n=20), BMSC transplantation group (BMSC, n=20), TEX+BMSC transplantation group (TEX+BMSC, n=20) 7, 14, 21, and 35 days after SNI. SNI was applied into the thigh and treadmill exercise was comprised of walking at a speed of 4 to 8 m/min for 30 min once a day. Harvested BMSC at a density of 5×10 in 50-μL phosphate-buff-ered saline was injected into the injury site. Phosphorylated (p) extracellular signal-regulated kinase 1/2 expression was dramatically upregulated in BMSC and BMSC+EX groups from 21 days after SNI compared to those in the SED group. P-ribosomal s6 kinase (RSK) was sharply increased 14 days later, and then rapidly downregulated from day 21, whereas TEX, BMSC and TEX+ BMSC groups significantly kept up expression levels of p-RSK until 35 days post injury than SED group. TEX+BMSC group significantly increased activation of protein kinase B-mammalian target of rapamycin in the soleus from day 14 and myoblast determination protein 1-myogen-in pathways was activated in TEX+BMSC group from day 21. Present findings provide information that combined intervention of aerobic exercise and BMSC transplantation might be a reliable therapeutic strategy for overcoming the morphological and functional problems in denervated soleus muscle.

References
1.
Wang L, Yuan D, Zhang D, Zhang W, Liu C, Cheng H . Ginsenoside Re Promotes Nerve Regeneration by Facilitating the Proliferation, Differentiation and Migration of Schwann Cells via the ERK- and JNK-Dependent Pathway in Rat Model of Sciatic Nerve Crush Injury. Cell Mol Neurobiol. 2015; 35(6):827-40. PMC: 11486245. DOI: 10.1007/s10571-015-0177-7. View

2.
Gordon T, English A . Strategies to promote peripheral nerve regeneration: electrical stimulation and/or exercise. Eur J Neurosci. 2015; 43(3):336-50. PMC: 4695319. DOI: 10.1111/ejn.13005. View

3.
Mimura T, Dezawa M, Kanno H, Sawada H, Yamamoto I . Peripheral nerve regeneration by transplantation of bone marrow stromal cell-derived Schwann cells in adult rats. J Neurosurg. 2004; 101(5):806-12. DOI: 10.3171/jns.2004.101.5.0806. View

4.
Legerlotz K, Smith H . Role of MyoD in denervated, disused, and exercised muscle. Muscle Nerve. 2008; 38(3):1087-100. DOI: 10.1002/mus.21087. View

5.
Ganassi M, Badodi S, Wanders K, Zammit P, Hughes S . Myogenin is an essential regulator of adult myofibre growth and muscle stem cell homeostasis. Elife. 2020; 9. PMC: 7599067. DOI: 10.7554/eLife.60445. View