4.8 Article

Rock inhibitor may compromise human induced pluripotent stem cells for cardiac differentiation in 3D

Journal

BIOACTIVE MATERIALS
Volume 9, Issue -, Pages 508-522

Publisher

KEAI PUBLISHING LTD
DOI: 10.1016/j.bioactmat.2021.07.013

Keywords

Episomal; iPSC; Cardiomyocyte; Spheroid; GelMA

Funding

  1. Maryland Stem Cell Research Fund [2021-MSCRFD-5660]
  2. National Institutes of Health [NIH R01EB023632]
  3. National Science Foundation [NSF CBET-1831019]

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The use of Rock inhibitor (RI) in 3D cardiac differentiation of human induced pluripotent stem cells (iPSCs) poses challenges, but reducing the RI concentration can improve efficiency and homogeneity, which is important for understanding and treating heart diseases.
Cardiomyocytes differentiated from human induced pluripotent stem cells (iPSCs) are valuable for the understanding/treatment of the deadly heart diseases and their drug screening. However, the very much needed homogeneous 3D cardiac differentiation of human iPSCs is still challenging. Here, it is discovered surprisingly that Rock inhibitor (RI), used ubiquitously to improve the survival/yield of human iPSCs, induces early gastrulation-like change to human iPSCs in 3D culture and may cause their heterogeneous differentiation into all the three germ layers (i.e., ectoderm, mesoderm, and endoderm) at the commonly used concentration (10 mu M). This greatly compromises the capacity of human iPSCs for homogeneous 3D cardiac differentiation. By reducing the RI to 1 mu M for 3D culture, the human iPSCs retain high pluripotency/quality in inner cell mass-like solid 3D spheroids. Consequently, the beating efficiency of 3D cardiac differentiation can be improved to more than 95 % in similar to 7 days (compared to less than similar to 50 % in 14 days for the 10 mu M RI condition). Furthermore, the outset beating time (OBT) of all resultant cardiac spheroids (CSs) is synchronized within only 1 day and they form a synchronously beating 3D construct after 5-day culture in gelatin methacrylol (GelMA) hydrogel, showing high homogeneity (in terms of the OBT) in functional maturity of the CSs. Moreover, the resultant cardiomyocytes are of high quality with key functional ultrastructures and highly responsive to cardiac drugs. These discoveries may greatly facilitate the utilization of human iPSCs for understanding and treating heart diseases.

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