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An Assessment of Myotube Morphology, Matrix Deformation, and Myogenic MRNA Expression in Custom-Built and Commercially Available Engineered Muscle Chamber Configurations

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Journal Front Physiol
Date 2018 Jun 6
PMID 29867538
Citations 10
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Abstract

There are several three-dimensional (3D) skeletal muscle (SkM) tissue engineered models reported in the literature. 3D SkM tissue engineering (TE) aims to recapitulate the structure and function of native () tissue, within an environment. This requires the differentiation of myoblasts into aligned multinucleated myotubes surrounded by a biologically representative extracellular matrix (ECM). In the present work, a new commercially available 3D SkM TE culture chamber manufactured from polyether ether ketone (PEEK) that facilitates suitable development of these myotubes is presented. To assess the outcomes of the myotubes within these constructs, morphological, gene expression, and ECM remodeling parameters were compared against a previously published custom-built model. No significant differences were observed in the morphological and gene expression measures between the newly introduced and the established construct configuration, suggesting biological reproducibility irrespective of manufacturing process. However, TE SkM fabricated using the commercially available PEEK chambers displayed reduced variability in both construct attachment and matrix deformation, likely due to increased reproducibility within the manufacturing process. The mechanical differences between systems may also have contributed to such differences, however, investigation of these variables was beyond the scope of the investigation. Though more expensive than the custom-built models, these PEEK chambers are also suitable for multiple use after autoclaving. As such this would support its use over the previously published handmade culture chamber system, particularly when seeking to develop higher-throughput systems or when experimental cost is not a factor.

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References
1.
Ito A, Yamamoto Y, Sato M, Ikeda K, Yamamoto M, Fujita H . Induction of functional tissue-engineered skeletal muscle constructs by defined electrical stimulation. Sci Rep. 2014; 4:4781. PMC: 3998029. DOI: 10.1038/srep04781. View

2.
Snyman C, Goetsch K, Myburgh K, Niesler C . Simple silicone chamber system for in vitro three-dimensional skeletal muscle tissue formation. Front Physiol. 2013; 4:349. PMC: 3842895. DOI: 10.3389/fphys.2013.00349. View

3.
Player D, Martin N, Passey S, Sharples A, Mudera V, Lewis M . Acute mechanical overload increases IGF-I and MMP-9 mRNA in 3D tissue-engineered skeletal muscle. Biotechnol Lett. 2014; 36(5):1113-24. DOI: 10.1007/s10529-014-1464-y. View

4.
Okano T, Matsuda T . Tissue engineered skeletal muscle: preparation of highly dense, highly oriented hybrid muscular tissues. Cell Transplant. 1998; 7(1):71-82. DOI: 10.1177/096368979800700110. View

5.
Mudera V, Smith A, Brady M, Lewis M . The effect of cell density on the maturation and contractile ability of muscle derived cells in a 3D tissue-engineered skeletal muscle model and determination of the cellular and mechanical stimuli required for the synthesis of a postural phenotype. J Cell Physiol. 2010; 225(3):646-53. DOI: 10.1002/jcp.22271. View