Published January 2021 | Version v1
Journal article

In situ differentiation of human-induced pluripotent stem cells into functional cardiomyocytes on a coaxial PCL-gelatin nanofibrous scaffold

  • 1. Department of Emergency Medicine, Wexner Medical Center, The Ohio State University, Columbus, OH (United States)
  • 2. Centre for Biomaterials, Cellular and Molecular Theranostics, Vellore Institute of Technology, Vellore (India)
  • 3. Department of Materials Science and Engineering, The Ohio State University, Columbus, OH (United States)
  • 4. Dorothy M. Davis Heart & Lung Research Institute, Wexner Medical Center, The Ohio State University, Columbus, OH (United States)
  • 5. Department of Microbial Infection and Immunity, The Ohio State University, Columbus, OH (United States)
  • 6. Department of Molecular Reproduction Development and Genetics, Indian Institute of Science, C V Raman Road, Bangalore KA-560012 (India)
  • 7. Stanford Cardiovascular Institute, Stanford University School of Medicine, Stanford, CA (United States)
  • 8. Research Department, Shriners Hospitals for Children, Cincinnati, OH (United States)
  • 9. Department of Biomedical Engineering, The Ohio State University, Columbus, OH (United States)
  • 10. Department of Physiology and Cell Biology, Wexner Medical Center, The Ohio State University, Columbus, OH (United States)

Description

Highlights: • hiPSCs can be cultured on an electrospun coaxial PCL-gelatin nanofibrous scaffolds. • hiPSCs can be differentiated into functional cardiomyocytes on 3D scaffolds. • In situ differentiation enables migration and uniform distribution of cells into the scaffold. Human-induced pluripotent stem cells (hiPSCs) derived cardiomyocytes (hiPSC-CMs) have been explored for cardiac regeneration and repair as well as for the development of in vitro 3D cardiac tissue models. Existing protocols for cardiac differentiation of hiPSCs utilize a 2D culture system. However, the efficiency of hiPSC differentiation to cardiomyocytes in 3D culture systems has not been extensively explored. In the present study, we investigated the efficiency of cardiac differentiation of hiPSCs to functional cardiomyocytes on 3D nanofibrous scaffolds. Coaxial polycaprolactone (PCL)-gelatin fibrous scaffolds were fabricated by electrospinning and characterized using scanning electron microscopy (SEM) and fourier transform infrared (FTIR) spectroscopy. hiPSCs were cultured and differentiated into functional cardiomyocytes on the nanofibrous scaffold and compared with 2D cultures. To assess the relative efficiencies of both the systems, SEM, immunofluorescence staining and gene expression analyses were performed. Contractions of differentiated cardiomyocytes were observed in 2D cultures after 2 weeks and in 3D cultures after 4 weeks. SEM analysis showed no significant differences in the morphology of cells differentiated on 2D versus 3D cultures. However, gene expression data showed significantly increased expression of cardiac progenitor genes (ISL-1, SIRPA) in 3D cultures and cardiomyocytes markers (TNNT, MHC6) in 2D cultures. In contrast, immunofluorescence staining showed no substantial differences in the expression of NKX-2.5 and α-sarcomeric actinin. Furthermore, uniform migration and distribution of the in situ differentiated cardiomyocytes was observed in the 3D fibrous scaffold. Overall, our study demonstrates that coaxial PCL-gelatin nanofibrous scaffolds can be used as a 3D culture platform for efficient differentiation of hiPSCs to functional cardiomyocytes.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.msec.2020.111354

Additional details

Identifiers

DOI
10.1016/j.msec.2020.111354;
PII
S0928493120332720;

Publishing Information

Journal Title
Materials Science and Engineering. C, Biomimetic Materials, Sensors and Systems
Journal Volume
118
Journal Page Range
vp.
ISSN
0928-4931

Optional Information

Copyright
Copyright (c) 2020 Elsevier B.V. All rights reserved.