血小板生成素
血小板
离体
生物
细胞生物学
生物发生
体内
止血
巨核细胞
免疫学
干细胞
生物化学
内科学
造血
生物技术
基因
医学
作者
Yukitaka Ito,Sou Nakamura,Naoshi Sugimoto,Tomohiro Shigemori,Yoshikazu Kato,Mikiko Ohno,Shinya Sakuma,Keitaro Ito,H Kumon,Hidenori Hirose,Haruki Okamoto,Masayuki Nogawa,Mio Iwasaki,S. Kihara,Kosuke Fujio,Takuya Matsumoto,Natsumi Higashi,Kazuya Hashimoto,Akira Sawaguchi,Ken-ichi Harimoto
出处
期刊:Cell
[Elsevier]
日期:2018-07-01
卷期号:174 (3): 636-648.e18
被引量:253
标识
DOI:10.1016/j.cell.2018.06.011
摘要
The ex vivo generation of platelets from human-induced pluripotent cells (hiPSCs) is expected to compensate donor-dependent transfusion systems. However, manufacturing the clinically required number of platelets remains unachieved due to the low platelet release from hiPSC-derived megakaryocytes (hiPSC-MKs). Here, we report turbulence as a physical regulator in thrombopoiesis in vivo and its application to turbulence-controllable bioreactors. The identification of turbulent energy as a determinant parameter allowed scale-up to 8 L for the generation of 100 billion-order platelets from hiPSC-MKs, which satisfies clinical requirements. Turbulent flow promoted the release from megakaryocytes of IGFBP2, MIF, and Nardilysin to facilitate platelet shedding. hiPSC-platelets showed properties of bona fide human platelets, including circulation and hemostasis capacities upon transfusion in two animal models. This study provides a concept in which a coordinated physico-chemical mechanism promotes platelet biogenesis and an innovative strategy for ex vivo platelet manufacturing.
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