Literature DB >> 24402674

Mechanical loading by fluid shear stress of myotube glycocalyx stimulates growth factor expression and nitric oxide production.

Petra Juffer1, Astrid D Bakker, Jenneke Klein-Nulend, Richard T Jaspers.   

Abstract

Skeletal muscle fibers have the ability to increase their size in response to a mechanical overload. Finite element modeling data suggest that mechanically loaded muscles in vivo may experience not only tensile strain but also shear stress. However, whether shear stress affects biological pathways involved in muscle fiber size adaptation in response to mechanical loading is unknown. Therefore, our aim was twofold: (1) to determine whether shear stress affects growth factor expression and nitric oxide (NO) production by myotubes, and (2) to explore the mechanism by which shear stress may affect myotubes in vitro. C2C12 myotubes were subjected to a laminar pulsating fluid flow (PFF; mean shear stress 0.4, 0.7 or 1.4 Pa, 1 Hz) or subjected to uni-axial cyclic strain (CS; 15 % strain, 1 Hz) for 1 h. NO production during 1-h PFF or CS treatment was quantified using Griess reagent. The glycocalyx was degraded using hyaluronidase, and stretch-activated ion channels (SACs) were blocked using GdCl3. Gene expression was analyzed immediately after 1-h PFF (1.4 Pa, 1 Hz) and at 6 h post-PFF treatment. PFF increased IGF-I Ea, MGF, VEGF, IL-6, and COX-2 mRNA, but decreased myostatin mRNA expression. Shear stress enhanced NO production in a dose-dependent manner, while CS induced no quantifiable increase in NO production. Glycocalyx degradation and blocking of SACs ablated the shear stress-stimulated NO production. In conclusion, shear stress activates signaling pathways involved in muscle fiber size adaptation in myotubes, likely via membrane-bound mechanoreceptors. These results suggest that shear stress exerted on myofiber extracellular matrix plays an important role in mechanotransduction in muscle.

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Year:  2014        PMID: 24402674     DOI: 10.1007/s12013-013-9812-4

Source DB:  PubMed          Journal:  Cell Biochem Biophys        ISSN: 1085-9195            Impact factor:   2.194


  26 in total

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2.  Characterization of Optimal Strain, Frequency and Duration of Mechanical Loading on Skeletal Myotubes' Biological Responses.

Authors:  Athanasios Moustogiannis; Anastassios Philippou; Evangelos Zevolis; Orjona Taso; Antonios Chatzigeorgiou; Michael Koutsilieris
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Review 4.  IL-6 and IGF-1 Signaling Within and Between Muscle and Bone: How Important is the mTOR Pathway for Bone Metabolism?

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7.  The effect of low intensity shockwave treatment (Li-SWT) on human myoblasts and mouse skeletal muscle.

Authors:  Lise K Hansen; Henrik D Schrøder; Lars Lund; Karthikeyan Rajagopal; Vrisha Maduri; Jeeva Sellathurai
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9.  Alpha-ketoglutarate promotes skeletal muscle hypertrophy and protein synthesis through Akt/mTOR signaling pathways.

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Journal:  Sci Rep       Date:  2016-05-26       Impact factor: 4.379

10.  Pulsating fluid flow affects pre-osteoblast behavior and osteogenic differentiation through production of soluble factors.

Authors:  Jianfeng Jin; Hadi Seddiqi; Astrid D Bakker; Gang Wu; Johanna F M Verstappen; Mohammad Haroon; Joannes A M Korfage; Behrouz Zandieh-Doulabi; Arie Werner; Jenneke Klein-Nulend; Richard T Jaspers
Journal:  Physiol Rep       Date:  2021-06
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