| Literature DB >> 25355733 |
Natsuko Hemmi1, Shugo Tohyama1, Kazuaki Nakajima1, Hideaki Kanazawa1, Tomoyuki Suzuki1, Fumiyuki Hattori1, Tomohisa Seki1, Yoshikazu Kishino1, Akinori Hirano1, Marina Okada1, Ryota Tabei1, Rei Ohno1, Chihana Fujita1, Tomoko Haruna1, Shinsuke Yuasa1, Motoaki Sano1, Jun Fujita2, Keiichi Fukuda1.
Abstract
Cardiac regenerative therapy with human pluripotent stem cells (hPSCs), such as human embryonic stem cells and induced pluripotent stem cells, has been hampered by the lack of efficient strategies for expanding functional cardiomyocytes (CMs) to clinically relevant numbers. The development of the massive suspension culture system (MSCS) has shed light on this critical issue, although it remains unclear how hPSCs could differentiate into functional CMs using a MSCS. The proliferative rate of differentiating hPSCs in the MSCS was equivalent to that in suspension cultures using nonadherent culture dishes, although the MSCS provided more homogeneous embryoid bodies (EBs), eventually reducing apoptosis. However, pluripotent markers such as Oct3/4 and Tra-1-60 were still expressed in EBs 2 weeks after differentiation, even in the MSCS. The remaining undifferentiated stem cells in such cultures could retain a strong potential for teratoma formation, which is the worst scenario for clinical applications of hPSC-derived CMs. The metabolic purification of CMs in glucose-depleted and lactate-enriched medium successfully eliminated the residual undifferentiated stem cells, resulting in a refined hPSC-derived CM population. In colony formation assays, no Tra-1-60-positive colonies appeared after purification. The nonpurified CMs in the MSCS produced teratomas at a rate of 60%. However, purified CMs never induced teratomas, and enriched CMs showed proper electrophysiological properties and calcium transients. Overall, the combination of a MSCS and metabolic selection is a highly effective and practical approach to purify and enrich massive numbers of functional CMs and provides an essential technique for cardiac regenerative therapy with hPSC-derived CMs. ©AlphaMed Press.Entities:
Keywords: Cardiac; Cell culture; Cellular therapy; Differentiation; Embryonic stem cells; Induced pluripotent stem cells; Stem cell transplantation
Mesh:
Substances:
Year: 2014 PMID: 25355733 PMCID: PMC4250209 DOI: 10.5966/sctm.2014-0072
Source DB: PubMed Journal: Stem Cells Transl Med ISSN: 2157-6564 Impact factor: 6.940