A multi-axis robot-based bioprinting system supporting natural cell function preservation and cardiac tissue fabrication

Zeyu Zhang, Chen Ming Wu, Cheng Kai Dai, Qingqing Shi, Guoxin Fang, Dongfang Xie, Xiangjie Zhao, Y. J. Liu, Charlie C.L. Wang, Xiu Jie Wang*

*Corresponding author for this work

    Research output: Contribution to journalArticlepeer-review

    Abstract

    Despite the recent advances in artificial tissue and organ engineering, how to generate large size viable and functional complex organs still remains as a grand challenge for regenerative medicine. Three-dimensional bioprinting has demonstrated its advantages as one of the major methods in fabricating simple tissues, yet it still faces difficulties to generate vasculatures and preserve cell functions in complex organ production. Here, we overcome the limitations of conventional bioprinting systems by converting a six degree-of-freedom robotic arm into a bioprinter, therefore enables cell printing on 3D complex-shaped vascular scaffolds from all directions. We also developed an oil bath-based cell printing method to better preserve cell natural functions after printing. Together with a self-designed bioreactor and a repeated print-and-culture strategy, our bioprinting system is capable to generate vascularized, contractible, and long-term survived cardiac tissues. Such bioprinting strategy mimics the in vivo organ development process and presents a promising solution for in vitro fabrication of complex organs.

    Original languageEnglish
    Pages (from-to)138-150
    Number of pages13
    JournalBioactive Materials
    Volume18
    Early online date19 Feb 2022
    DOIs
    Publication statusPublished - 1 Dec 2022

    Keywords

    • 3D bioprinting
    • Artificial organ engineering
    • Cardiac tissue fabrication
    • Print-and-culture
    • Six degree-of-freedom robot

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