| Literature DB >> 27710832 |
Yu Shrike Zhang1, Andrea Arneri2, Simone Bersini3, Su-Ryon Shin4, Kai Zhu5, Zahra Goli-Malekabadi6, Julio Aleman7, Cristina Colosi8, Fabio Busignani9, Valeria Dell'Erba10, Colin Bishop11, Thomas Shupe11, Danilo Demarchi12, Matteo Moretti13, Marco Rasponi14, Mehmet Remzi Dokmeci4, Anthony Atala11, Ali Khademhosseini15.
Abstract
Engineering cardiac tissues and organ models remains a great challenge due to the hierarchical structure of the native myocardium. The need of integrating blood vessels brings additional complexity, limiting the available approaches that are suitable to produce integrated cardiovascular organoids. In this work we propose a novel hybrid strategy based on 3D bioprinting, to fabricate endothelialized myocardium. Enabled by the use of our composite bioink, endothelial cells directly bioprinted within microfibrous hydrogel scaffolds gradually migrated towards the peripheries of the microfibers to form a layer of confluent endothelium. Together with controlled anisotropy, this 3D endothelial bed was then seeded with cardiomyocytes to generate aligned myocardium capable of spontaneous and synchronous contraction. We further embedded the organoids into a specially designed microfluidic perfusion bioreactor to complete the endothelialized-myocardium-on-a-chip platform for cardiovascular toxicity evaluation. Finally, we demonstrated that such a technique could be translated to human cardiomyocytes derived from induced pluripotent stem cells to construct endothelialized human myocardium. We believe that our method for generation of endothelialized organoids fabricated through an innovative 3D bioprinting technology may find widespread applications in regenerative medicine, drug screening, and potentially disease modeling.Entities:
Keywords: Bioprinting; Cardiac tissue engineering; Cardiovascular toxicity; Heart-on-a-chip; Vascularization
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Year: 2016 PMID: 27710832 PMCID: PMC5198581 DOI: 10.1016/j.biomaterials.2016.09.003
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479