4.8 Article

PGS:Gelatin nanofibrous scaffolds with tunable mechanical and structural properties for engineering cardiac tissues

Journal

BIOMATERIALS
Volume 34, Issue 27, Pages 6355-6366

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2013.04.045

Keywords

Scaffold; Nanofibrous; poly(glycerol sebacate):gelatin; Cardiac cells; Tissue engineering

Funding

  1. Presidential Early Career Award for Scientists and Engineers (PECASE)
  2. Office of Naval Research
  3. National Science Foundation CAREER Award [DMR 0847287]
  4. National Institutes of Health [HL092836, AR057837, DE021468, DE019024, EB012597, HL099073, EB008392]
  5. MIT-Portugal Program [MPP-09Call-Langer-47]
  6. Division Of Materials Research
  7. Direct For Mathematical & Physical Scien [0847287] Funding Source: National Science Foundation

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A significant challenge in cardiac tissue engineering is the development of biomimetic grafts that can potentially promote myocardial repair and regeneration. A number of approaches have used engineered scaffolds to mimic the architecture of the native myocardium tissue and precisely regulate cardiac cell functions. However, previous attempts have not been able to simultaneously recapitulate chemical, mechanical, and structural properties of the myocardial extracellular matrix (ECM). In this study, we utilized an electrospinning approach to fabricate elastomeric biodegradable poly(glycerol sebacate) (PGS):gelatin nanofibrous scaffolds with a wide range of chemical composition, stiffness and anisotropy. Our findings demonstrated that through incorporation of PGS, it is possible to create nanofibrous scaffolds with well-defined anisotropy that mimic the left ventricular myocardium architecture. Furthermore, we studied attachment, proliferation, differentiation and alignment of neonatal rat cardiac fibroblast cells (CFs) as well as protein expression, alignment, and contractile function of cardiomyocyte (CMs) on PGS:gelatin scaffolds with variable amount of PGS. Notably, aligned nanofibrous scaffold, consisting of 33 wt. % PGS, induced optimal synchronous contractions of CMs while significantly enhanced cellular alignment. Overall, our study suggests that the aligned nanofibrous PGS:gelatin scaffold support cardiac cell organization, phenotype and contraction and could potentially be used to develop clinically relevant constructs for cardiac tissue engineering. (C) 2013 Elsevier Ltd. All rights reserved.

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