Heparan Sulfate Chain‐Conjugated Laminin‐E8 Fragments Advance Paraxial Mesodermal Differentiation Followed by High Myogenic Induction from hiPSCs

Author:

Zhao Mingming12ORCID,Taniguchi Yukimasa3,Shimono Chisei3,Jonouchi Tatsuya1,Cheng Yushen4,Shimizu Yasuhiro3,Nalbandian Minas1,Yamamoto Takuya4,Nakagawa Masato4,Sekiguchi Kiyotoshi3,Sakurai Hidetoshi1

Affiliation:

1. Department of Clinical Application Center for iPS Cell Research and Application (CiRA) Kyoto University 53 Shogoin‐Kawahara‐cho, Sakyo‐ku Kyoto 606‐8507 Japan

2. Center for Medical Epigenetics School of Basic Medical Sciences Chongqing Medical University 1 Yixueyuan Road, Yuzhong District Chongqing 400016 China

3. Division of Matrixome Research and Application Institute for Protein Research Osaka University 3‐2 Yamadaoka, Suita Osaka 565‐0871 Japan

4. Department of Life Science Frontiers Center for iPS Cell Research and Application (CiRA) Kyoto University 53 Shogoin‐Kawahara‐cho, Sakyo‐ku Kyoto 606‐8507 Japan

Abstract

AbstractHuman‐induced pluripotent stem cells (hiPSCs) have great therapeutic potential. The cell source differentiated from hiPSCs requires xeno‐free and robust methods for lineage‐specific differentiation. Here, a system is described for differentiating hiPSCs on new generation laminin fragments (NGLFs), a recombinant form of a laminin E8 fragment conjugated to the heparan sulfate chains (HS) attachment domain of perlecan. Using NGLFs, hiPSCs are highly promoted to direct differentiation into a paraxial mesoderm state with high‐efficiency muscle lineage generation. HS conjugation to the C‐terminus of Laminin E8 fragments brings fibroblast growth factors (FGFs) bound to the HS close to the cell surface of hiPSCs, thereby facilitating stronger FGF signaling pathways stimulation and initiating HOX gene expression, which triggers the paraxial mesoderm differentiation of hiPSCs. This highly efficient differentiation system can provide a roadmap for paraxial mesoderm development and an infinite source of myocytes and muscle stem cells for disease modeling and regenerative medicine.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

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