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      Reduced Graphene Oxide-GelMA Hybrid Hydrogels as Scaffolds for Cardiac Tissue Engineering

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          Abstract

          Biomaterials currently used in cardiac tissue engineering have certain limitations, such as lack of electrical conductivity and appropriate mechanical properties, which are two parameters playing a key role in regulating cardiac cellular behavior. In this work, we engineered myocardial tissue constructs based on reduced graphene oxide (rGO)-incorporated gelatin methacrylyol (GelMA) hybrid hydrogels. The incorporation of rGO into the GelMA matrix significantly enhanced the electrical conductivity and mechanical properties of the material. Moreover, cells cultured on composite rGO-GelMA scaffolds exhibited better biological activities such as cell viability, proliferation, and maturation compared to ones cultured on GelMA hydrogels. Cardiomyocytes showed stronger contractility and faster spontaneous beating rate on rGO-GelMA hydrogel sheets compared to those on pristine GelMA hydrogels, as well as GO-GelMA hydrogel sheets with similar mechanical property and particle concentration. Our strategy of integrating rGO within a biocompatible hydrogel is expected to be broadly applicable for future biomaterial design to improve tissue engineering outcomes. The engineered cardiac tissue constructs using rGO incorporated hybrid hydrogels can potentially provide high-fidelity tissue models for drug studies and the investigations of cardiac tissue development and/or disease processes in vitro.

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          Author and article information

          Journal
          101235338
          33154
          Small
          Small
          Small (Weinheim an der Bergstrasse, Germany)
          1613-6810
          1613-6829
          28 December 2016
          02 June 2016
          July 2016
          01 July 2017
          : 12
          : 27
          : 3677-3689
          Affiliations
          [1 ]Biomaterials Innovation Research Center, Department of Medicine, Brigham and Women’s Hospital, Harvard Medical School, Cambridge, MA 02139, USA
          [2 ]Harvard-MIT Division of Health Sciences and Technology, Massachusetts Institute of Technology, Cambridge, MA 02139, USA
          [3 ]Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, MA 02139, USA
          [4 ]Department of Mechanical Engineering, University of Victoria, 3800 Finnerty Rd., Victoria, BC, V8P 2C5, Canada
          [5 ]Department of Chemistry & Waterloo Institute for Nanotechnology, University of Waterloo, 200 University Ave. West, Waterloo, Ontario, N2L 3G1, Canada
          [6 ]Department of Mechanical and Industrial Engineering, Northeastern University, Boston, Massachusetts 02115, USA
          [7 ]Faculty of Engineering, Biomedical Engineering Department, Baskent University, Ankara, Turkey
          [8 ]School of Biological and Health Systems Engineering, Arizona State University, Tempe, AZ, 85251, USA
          [9 ]Department of Physics, King Abdulaziz University, Jeddah 21569, Saudi Arabia
          [10 ]College of Animal Bioscience and Technology, Department of Bioindustrial Technologies, Konkuk University, Hwayang-dong, Kwangjin-gu, Seoul 143-701, Republic of Korea
          Author notes
          CORRESPONDING AUTHOR. Biomaterials Innovation Research Center, Brigham and Women’s Hospital, Harvard Medical School. Cambridge, MA, USA. 02139. alik@ 123456bwh.harvard.edu (A. Khademhosseini), Department of Chemistry, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada. tangxw@ 123456uwaterloo.ca (Xiaowu (Shirley) Tang)
          Article
          PMC5201005 PMC5201005 5201005 nihpa807413
          10.1002/smll.201600178
          5201005
          27254107
          fb421af9-8836-4f3c-bf63-01b6be02a231
          History
          Categories
          Article

          hydrogel,gelatin,reduced graphene oxide,cardiac tissue engineering,bioactuator

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