Integrated Manufacturing of Suspended and Aligned Nanofibrous Scaffold for Structural Maturation and Synchronous Contraction of HiPSC-Derived Cardiomyocytes

Author:

Liu Lingling1,Xu Feng1,Jin Hang1,Qiu Bin1,Yang Jianhui1,Zhang Wangzihan1,Gao Qiang23,Lin Bin4,Chen Songyue1ORCID,Sun Daoheng1

Affiliation:

1. Sabondong Micron Nano Science and Technology Research Institute, Xiamen University, Xiamen 361102, China

2. Department of Cardiovascular Surgery, Guangdong Cardiovascular Institute, Guangdong Provincial People’s Hospital, Guangzhou 510080, China

3. Guangdong Academy of Medical Sciences, Southern Medical University, Guangzhou 510080, China

4. Guangdong Beating Origin Regenerative Medicine Co., Ltd., Foshan 528231, China

Abstract

Electrospun nanofiber constructs represent a promising alternative for mimicking the natural extracellular matrix in vitro and have significant potential for cardiac patch applications. While the effect of fiber orientation on the morphological structure of cardiomyocytes has been investigated, fibers only provide contact guidance without accounting for substrate stiffness due to their deposition on rigid substrates (e.g., glass or polystyrene). This paper introduces an in situ fabrication method for suspended and well aligned nanofibrous scaffolds via roller electrospinning, providing an anisotropic microenvironment with reduced stiffness for cardiac tissue engineering. A fiber surface modification strategy, utilizing oxygen plasma treatment combined with sodium dodecyl sulfate solution, was proposed to maintain the hydrophilicity of polycaprolactone (PCL) fibers, promoting cellular adhesion. Human-induced pluripotent stem cell (hiPSC)-derived cardiomyocytes (CMs), cultured on aligned fibers, exhibited an elongated morphology with extension along the fiber axis. In comparison to Petri dishes and suspended random fiber scaffolds, hiPSC-CMs on suspended aligned fiber scaffolds demonstrated enhanced sarcomere organization, spontaneous synchronous contraction, and gene expression indicative of maturation. This work demonstrates the suspended and aligned nano-fibrous scaffold provides a more realistic biomimetic environment for hiPSC-CMs, which promoted further research on the inducing effect of fiber scaffolds on hiPSC-CMs microstructure and gene-level expression.

Funder

Natural Science Foundation of China

GuangZhou Basic and Applied Basic Research Foundation

Publisher

MDPI AG

Subject

Bioengineering

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