Tuning pro-survival effects of human induced pluripotent stem cell-derived exosomes using elastin-like polypeptides

  • Chen Hung Lee*
  • , Daniel Hunt
  • , Julien George Roth
  • , Ching Chi Chiu
  • , Riley A. Suhar
  • , Bauer L. LeSavage
  • , Alexis Jane Seymour
  • , Chris Lindsay
  • , Brad A. Krajina
  • , Yi Tung Chen
  • , Kuo Hsuan Chang
  • , I. Chang Hsieh
  • , Pao Hsien Chu
  • , Ming Shien Wen
  • , Sarah C. Heilshorn*
  • *此作品的通信作者

研究成果: 期刊稿件文章同行評審

7 引文 斯高帕斯(Scopus)

摘要

Exosome-based regenerative therapies are potentially easier to manufacture and safer to apply compared to cell-based therapies. However, many questions remain about how to bio-manufacture reproducible and potent exosomes using animal-free reagents. Here we evaluate the hypothesis that designer biomaterial substrates can be used to alter the potency of exosomes secreted by human induced pluripotent stem cells (iPSCs). Two animal-free designer matrices were fabricated based on recombinant elastin-like polypeptides (ELPs): one including a cell-adhesive RGD ligand and a second with a non-adhesive RDG peptide. While iPSCs cultured on these two substrates and Matrigel-coated controls had similar levels of proliferation, the RDG-ELP substrate significantly increased protein expression of stemness markers OCT4 and SOX2 and suppressed spontaneous differentiation compared to those on RGD-ELP. The pro-survival potency of iPSC-derived exosomes was evaluated using three distinct stress tests: serum starvation in murine fibroblasts, hypoxia in human endothelial cells, and hyperosmolarity in canine kidney cells. In all three cases, exosomes produced by iPSCs grown on RDG-ELP substrates had similar pro-survival effects to those produced using iPSCs grown on Matrigel, while use of RGD-ELP substrates led to significantly reduced exosome potency. These data demonstrate that recombinant substrates can be designed for the robust bio-manufacturing of iPSC-derived, pro-survival exosomes.

原文英語
文章編號121864
期刊Biomaterials
291
DOIs
出版狀態已出版 - 12 2022

文獻附註

Publisher Copyright:
© 2022 Elsevier Ltd

UN SDG

此研究成果有助於以下永續發展目標

  1. SDG9 工業、創新基礎建設
    SDG9 工業、創新基礎建設

指紋

深入研究「Tuning pro-survival effects of human induced pluripotent stem cell-derived exosomes using elastin-like polypeptides」主題。共同形成了獨特的指紋。

引用此