Literature DB >> 25714129

Mechanical Characterization and Shape Optimization of Fascicle-Like 3D Skeletal Muscle Tissues Contracted with Electrical and Optical Stimuli.

Devin Neal1, Mahmut Selman Sakar2, Rashid Bashir3, Vincent Chan1, Haruhiko Harry Asada1.   

Abstract

In this study, we present a quantitative approach to construct effective 3D muscle tissues through shape optimization and load impedance matching with electrical and optical stimulation. We have constructed long, thin, fascicle-like skeletal muscle tissue and optimized its form factor through mechanical characterization. A new apparatus was designed and built, which allowed us to measure force-displacement characteristics with diverse load stiffnesses. We have found that (1) there is an optimal form factor that maximizes the muscle stress, (2) the energy transmitted to the load can be maximized with matched load stiffness, and (3) optical stimulation using channelrhodopsin2 in the muscle tissue can generate a twitch force as large as its electrical counterpart for well-developed muscle tissue. Using our tissue construct method, we found that an optimal initial diameter of 500 μm outperformed tissues using 250 μm by more than 60% and tissues using 760 μm by 105%. Using optimal load stiffness, our tissues have generated 12 pJ of energy per twitch at a peak generated stress of 1.28 kPa. Additionally, the difference in optically stimulated twitch performance versus electrically stimulated is a function of how well the overall tissue performs, with average or better performing strips having less than 10% difference. The unique mechanical characterization method used is generalizable to diverse load conditions and will be used to match load impedance to muscle tissue impedance for a wide variety of applications.

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Year:  2015        PMID: 25714129      PMCID: PMC4449701          DOI: 10.1089/ten.TEA.2014.0317

Source DB:  PubMed          Journal:  Tissue Eng Part A        ISSN: 1937-3341            Impact factor:   3.845


  19 in total

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Authors:  H H Vandenburgh; S Swasdison; P Karlisch
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Authors:  Vincent Chan; H Harry Asada; Rashid Bashir
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7.  Formation of elongated fascicle-inspired 3D tissues consisting of high-density, aligned cells using sacrificial outer molding.

Authors:  Devin Neal; Mahmut Selman Sakar; Lee-Ling S Ong; H Harry Asada
Journal:  Lab Chip       Date:  2014-04-17       Impact factor: 6.799

8.  Viscoelasticity of the sarcomere matrix of skeletal muscles. The titin-myosin composite filament is a dual-stage molecular spring.

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Journal:  Biophys J       Date:  1993-04       Impact factor: 4.033

9.  The variation in isometric tension with sarcomere length in vertebrate muscle fibres.

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Journal:  J Physiol       Date:  1966-05       Impact factor: 5.182

10.  Tension and compression in the cytoskeleton of PC-12 neurites. II: Quantitative measurements.

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  9 in total

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Review 2.  Biomaterials for skeletal muscle tissue engineering.

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Review 3.  3D Bioprinting in Skeletal Muscle Tissue Engineering.

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Journal:  Small       Date:  2019-04-23       Impact factor: 13.281

Review 4.  Contractile force assessment methods for in vitro skeletal muscle tissues.

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Journal:  Elife       Date:  2022-05-23       Impact factor: 8.713

Review 5.  Hydrogel biomaterials and their therapeutic potential for muscle injuries and muscular dystrophies.

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Journal:  J R Soc Interface       Date:  2018-01       Impact factor: 4.118

6.  Extracellular matrix remodelling induced by alternating electrical and mechanical stimulations increases the contraction of engineered skeletal muscle tissues.

Authors:  Hyeonyu Kim; Min-Cheol Kim; H Harry Asada
Journal:  Sci Rep       Date:  2019-02-25       Impact factor: 4.379

7.  Controlling scaffold conductivity and pore size to direct myogenic cell alignment and differentiation.

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Review 8.  Stem Cell Differentiation Toward the Myogenic Lineage for Muscle Tissue Regeneration: A Focus on Muscular Dystrophy.

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Review 9.  Cardiac Meets Skeletal: What's New in Microfluidic Models for Muscle Tissue Engineering.

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  9 in total

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