Electric‐Field‐Driven Printed 3D Highly Ordered Microstructure with Cell Feature Size Promotes the Maturation of Engineered Cardiac Tissues

Author:

Zhang Guangming1,Li Wenhai1,Yu Miao2,Huang Hui1,Wang Yaning2,Han Zhifeng1,Shi Kai1,Ma Lingxuan1,Yu Zhihao1,Zhu Xiaoyang1,Peng Zilong1,Xu Yue2,Li Xiaoyun2,Hu Shijun2,He Jiankang3,Li Dichen3,Xi Yongming4,Lan Hongbo1ORCID,Xu Lin56,Tang Mingliang27,Xiao Miao2

Affiliation:

1. Shandong Engineering Research Center for Additive Manufacturing Qingdao University of Technology Qingdao 266520 P. R. China

2. Institute for Cardiovascular Science & Department of Cardiovascular Surgery of the First Affiliated Hospital Medical College Soochow University Suzhou 215000 P. R. China

3. State Key Laboratory for Manufacturing System Engineering Xi'an Jiaotong University Xi'an 710049 P. R. China

4. Department of Spinal Surgery The Affilliated Hosepital of Qingdao University Qingdao 266003 P. R. China

5. Yantai Affiliated Hospital Binzhou Medical University Yantai 264100 P. R. China

6. Institute of Rehabilitation Engineering Binzhou Medical University Yantai 264100 P. R. China

7. Co‐innovation Center of Neuroregeneration Nantong University Nantong 226001 P. R. China

Abstract

AbstractEngineered cardiac tissues (ECTs) derived from human induced pluripotent stem cells (hiPSCs) are viable alternatives for cardiac repair, patient‐specific disease modeling, and drug discovery. However, the immature state of ECTs limits their clinical utility. The microenvironment fabricated using 3D scaffolds can affect cell fate, and is crucial for the maturation of ECTs. Herein, the authors demonstrate an electric‐field‐driven (EFD) printed 3D highly ordered microstructure with cell feature size to promote the maturation of ECTs. The simulation and experimental results demonstrate that the EFD jet microscale 3D printing overcomes the jet repulsion without any prior requirements for both conductive and insulating substrates. Furthermore, the 3D highly ordered microstructures with a fiber diameter of 10–20 µm and spacing of 60–80 µm have been fabricated by maintaining a vertical jet, achieving the largest ratio of fiber diameter/spacing of 0.29. The hiPSCs‐derived cardiomyocytes formed ordered ECTs with their sarcomere growth along the fiber and developed synchronous functional ECTs inside the 3D‐printed scaffold with matured calcium handling compared to the 2D coverslip. Therefore, the EFD jet 3D microscale printing process facilitates the fabrication of scaffolds providing a suitable microenvironment to promote the maturation of ECTs, thereby showing great potential for cardiac tissue engineering.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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