| Literature DB >> 28376365 |
Vahid Serpooshan1, Pu Chen2, Haodi Wu1, Soah Lee3, Arun Sharma1, Daniel A Hu1, Sneha Venkatraman4, Adarsh Venkataraman Ganesan5, Osman Berk Usta6, Martin Yarmush7, Fan Yang8, Joseph C Wu9, Utkan Demirci10, Sean M Wu11.
Abstract
The creation of physiologically-relevant human cardiac tissue with defined cell structure and function is essential for a wide variety of therapeutic, diagnostic, and drug screening applications. Here we report a new scalable method using Faraday waves to enable rapid aggregation of human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) into predefined 3D constructs. At packing densities that approximate native myocardium (108-109 cells/ml), these hiPSC-CM-derived 3D tissues demonstrate significantly improved cell viability, metabolic activity, and intercellular connection when compared to constructs with random cell distribution. Moreover, the patterned hiPSC-CMs within the constructs exhibit significantly greater levels of contractile stress, beat frequency, and contraction-relaxation rates, suggesting their improved maturation. Our results demonstrate a novel application of Faraday waves to create stem cell-derived 3D cardiac tissue that resembles the cellular architecture of a native heart tissue for diverse basic research and clinical applications.Entities:
Keywords: Cardiac regenerative medicine; Cardiomyocytes; Human induced pluripotent stem cells; Sound wave cellular patterning
Mesh:
Year: 2017 PMID: 28376365 PMCID: PMC5446052 DOI: 10.1016/j.biomaterials.2017.03.037
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479