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Promoting Long-Term Cultivation of Motor Neurons for 3D Neuromuscular Junction Formation of 3D In Vitro Using Central-Nervous-Tissue-Derived Bioink

  • Jeong Sik Kong
  • , Xuan Huang
  • , Yeong Jin Choi
  • , Hee Gyeong Yi
  • , Junsu Kang
  • , Sejin Kim
  • , Jongmin Kim
  • , Hyungseok Lee
  • , Yeri Alice Rim
  • , Ji Hyeon Ju
  • , Wan Kyun Chung
  • , Clifford J. Woolf
  • , Jinah Jang
  • , Dong Woo Cho
  • Pohang University of Science and Technology
  • Harvard University
  • Korea Institute of Materials Science
  • Chonnam National University
  • Kangwon National University
  • The Catholic University of Korea, College of Medicine
  • Yonsei University

Research output: Contribution to journalArticlepeer-review

30 Scopus citations

Abstract

3D cell printing technology is in the spotlight for producing 3D tissue or organ constructs useful for various medical applications. In printing of neuromuscular tissue, a bioink satisfying all the requirements is a challenging issue. Gel integrity and motor neuron activity are two major characters because a harmonious combination of extracellular materials essential to motor neuron activity consists of disadvantages in mechanical properties. Here, a method for fabrication of 3D neuromuscular tissue is presented using a porcine central nervous system tissue decellularized extracellular matrix (CNSdECM) bioink. CNSdECM retains CNS tissue-specific extracellular molecules, provides rheological properties crucial for extrusion-based 3D cell printing, and reveals positive effects on the growth and maturity of axons of motor neurons compared with Matrigel. It also allows long-term cultivation of human-induced-pluripotent-stem-cell-derived lower motor neurons and sufficiently supports their cellular behavior to carry motor signals to muscle fibers. CNSdECM bioink holds great promise for producing a tissue-engineered motor system using 3D cell printing.

Original languageEnglish
Article number2100581
JournalAdvanced healthcare materials
Volume10
Issue number18
DOIs
StatePublished - 22 Sep 2021

Bibliographical note

Publisher Copyright:
© 2021 Wiley-VCH GmbH

Keywords

  • 3D cell printing bioink
  • central nervous system tissue
  • lower motor neuron
  • neural tissue engineering
  • neuromuscular junction

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