4.2 Article

Pre-Conditioning Stem Cells in a Biomimetic Environment for Enhanced Cardiac Tissue Repair: In Vitro and In Vivo Analysis

期刊

CELLULAR AND MOLECULAR BIOENGINEERING
卷 11, 期 5, 页码 321-336

出版社

SPRINGER
DOI: 10.1007/s12195-018-0543-x

关键词

Mechanical stimulation; Myogenic differentiation; Angiogenesis; Cardiac repair

资金

  1. Institutional Development Award (IDeA) from the National Institute of General Medical Sciences (NIGMS) of the NIH [P20GM103638]
  2. Umbilical Cord Matrix Project fund from State of Kansas
  3. National Institute of Health (NIH) [1R01HL-10690]
  4. AHA [16GRNT31030030]
  5. NIH [GM102801]
  6. Institutional Development Award (IDeA) from the NIGMS from the NIH [P20GM103418]

向作者/读者索取更多资源

Introduction-Stem cell-based therapies represent a valid approach to restore cardiac function due to their beneficial effect in reducing scar area formation and promoting angiogenesis. However, their translation into the clinic is limited by the poor differentiation and inability to secrete sufficient therapeutic factors. To address this issue, several strategies such as genetic modification and biophysical preconditioning have been used to enhance the efficacy of stem cells for cardiac tissue repair. Methods-In this study, a biomimetic approach was used to mimic the natural mechanical stimulation of the myocardium tissue. Specifically, human adipose-derived stem cells (hASCs) were cultured on a thin gelatin methacrylamide (GelMA) hydrogel disc and placed on top of a beating cardiomyocyte layer. qPCR studies and metatranscriptomic analysis of hASCs gene expression were investigated to confirm the correlation between mechanical stimuli and cardiomyogenic differentiation. In vivo intramyocardial delivery of pre-conditioned hASCs was carried out to evaluate their efficacy to restore cardiac function in mice hearts post-myocardial infarction. Results-The cyclic strain generated by cardiomyocytes significantly upregulated the expression of both mechan- otransduction and cardiomyogenic genes in hASCs as compared to the static control group. The inherent angiogenic secretion profile of hASCs was not hindered by the mechanical stimulation provided by the designed biomimetic system. Finally, in vivo analysis confirmed the regenerative potential of the pre-conditioned hASCs by displaying a significant improvement in cardiac function and enhanced angiogenesis in the peri-infarct region. Conclusion-Overall, these findings indicate that cyclic strain provided by the designed biomimetic system is an essential stimulant for hASCs cardiomyogenic differentiation, and therefore can be a potential solution to improve stem-cell based efficacy for cardiovascular repair.

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