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Mechanical stimulation improves tissue-engineered human skeletal muscle

American Journal of Physiology-Cell Physiology · 2002 · Vol. 283(5) · pp. C1557–C1565
Courtney PowellBeth L. SmileyJohn F. MillsHerman H. Vandenburgh

Abstract

Human bioartificial muscles (HBAMs) are tissue engineered by suspending muscle cells in collagen/MATRIGEL, casting in a silicone mold containing end attachment sites, and allowing the cells to differentiate for 8 to 16 days. The resulting HBAMs are representative of skeletal muscle in that they contain parallel arrays of postmitotic myofibers; however, they differ in many other morphological characteristics. To engineer improved HBAMs, i.e., more in vivo-like, we developed Mechanical Cell Stimulator (MCS) hardware to apply in vivo-like forces directly to the engineered tissue. A sensitive force transducer attached to the HBAM measured real-time, internally generated, as well as externally applied, forces. The muscle cells generated increasing internal forces during formation which were inhibitable with a cytoskeleton depolymerizer. Repetitive stretch/relaxation for 8 days increased the HBAM elasticity two- to threefold, mean myofiber diameter 12%, and myofiber area percent 40%. This system allows engineering of improved skeletal muscle analogs as well as a nondestructive method to determine passive force and viscoelastic properties of the resulting tissue.

Tissue Engineering and Regenerative MedicineMuscle Physiology and DisordersElectrospun Nanofibers in Biomedical ApplicationsSkeletal muscleTissue engineeringMyocyteBiomedical engineeringMatrigelIn vivoMaterials scienceMuscle tissueStimulationMyogenesis

MeSH terms

Biocompatible MaterialsCollagenCytoskeletonDrug CombinationsElasticityHumansHypertrophyLamininMuscle ContractionPhysiologyProteoglycansStress, MechanicalMuscle, SkeletalMuscle Fibers, SkeletalTissue Engineering
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