4.1 Article

Fabrication and Characterization of Electrospun Decellularized Muscle-Derived Scaffolds

Journal

TISSUE ENGINEERING PART C-METHODS
Volume 25, Issue 5, Pages 276-287

Publisher

MARY ANN LIEBERT, INC
DOI: 10.1089/ten.tec.2018.0339

Keywords

extracellular matrix; decellularized muscle; electrospinning; skeletal muscle

Funding

  1. National Institutes of Health [P41 EB023833]
  2. National Science Foundation Graduate Research Fellowship
  3. Ford Foundation Predoctoral Research Fellowship
  4. Ruth L. Kirschstein Fellowship from the National Institute of Dental and Craniofacial Research [F31 DE027586]

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Although skeletal muscle has a high potential for self-repair, volumetric muscle loss can result in impairment beyond the endogenous regenerative capacity. There is a clinical need to improve on current clinical treatments that fail to fully restore the structure and function of lost muscle. Decellularized extracellular matrix (dECM) scaffolds have been an attractive platform for regenerating skeletal muscle, as dECM contains many biochemical cues that aid in cell adhesion, proliferation, and differentiation. However, there is limited capacity to tune physicochemical properties in current dECM technologies to improve outcome. In this study, we aim to create a novel, high-throughput technique to fabricate dECM scaffolds with tunable physicochemical properties while retaining proregenerative matrix components. We demonstrate a successful decellularization protocol that effectively removes DNA. We also identified key steps for the successful production of electrospun muscle dECM without the use of a carrier polymer; electrospinning allows for rapid scaffold fabrication with high control over material properties, which can be optimized to mimic native muscle. To this end, fiber orientation and degree of crosslinking of these dECM scaffolds were modulated and the corollary effects on fiber swelling, mechanical properties, and degradation kinetics were investigated. Beyond application in skeletal muscle, the versatility of this technology has the potential to serve as a foundation for dECM scaffold fabrication in a variety of tissue engineering applications.

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