Literature DB >> 25088840

Tissue-engineered nerve constructs under a microgravity system for peripheral nerve regeneration.

Hailang Luo1, Bin Zhu, Yongjie Zhang, Yan Jin.   

Abstract

Mesenchymal stem cells (MSCs) seeded in a 3D scaffold often present characteristics of low proliferation and migration, which affect the microstructure of tissue-engineered nerves (TENs) and impair the therapeutic effects of nerve defects. By promoting MSC differentiation and mass/nutrient transport, rotary cell culture systems (RCCSs) display potential for advancing the construction of MSC-based TENs. Thus, in this study, we attempted to construct a TEN composed of adipose-derived mesenchymal stem cells (ADSCs) and acellular nerve graft (ANG) utilizing an RCCS. Compared to TENs prepared in a static 3D approach, MTT and cell count results displayed an increased number of ADSCs for TENs in an RCCS. The similarity in cell cycle states and high rates of apoptosis in the static 3D culture demonstrated that the higher proliferation in the RCCS was not due to microgravity regulation but a result of preferential mass/nutrient transport. Quantitative PCR and ELISA indicated that the RCCS promoted the expression of ADSC neural differentiation-associated genes compared to the static 3D culture. Furthermore, this difference was eliminated by adding the Notch1 signaling pathway inhibitor DAPT to the 3D static culture. TEM, axon immunostaining, and retrograde labeling analysis after sciatic nerve transplantation indicated that the TENs prepared in the RCCS exhibited more regenerative characteristics for repairing peripheral nerves than those prepared in a static 3D approach. Therefore, these findings suggest that the RCCS can modulate the construction, morphology, and function of engineered nerves as a promising alternative for nerve regeneration.

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Year:  2014        PMID: 25088840     DOI: 10.1089/ten.TEA.2013.0565

Source DB:  PubMed          Journal:  Tissue Eng Part A        ISSN: 1937-3341            Impact factor:   3.845


  6 in total

1.  Evaluation of small intestine submucosa and poly(caprolactone-co-lactide) conduits for peripheral nerve regeneration.

Authors:  Sun Woo Shim; Doo Yeon Kwon; Bit Na Lee; Jin Seon Kwon; Ji Hoon Park; Jun Hee Lee; Jae Ho Kim; Il Woo Lee; Jung-Woog Shin; Hai Bang Lee; Wan-Doo Kim; Moon Suk Kim
Journal:  Tissue Eng Part A       Date:  2015-01-08       Impact factor: 3.845

Review 2.  Augmenting Peripheral Nerve Regeneration with Adipose-Derived Stem Cells.

Authors:  Liangfu Jiang; Thomas Mee; Xijie Zhou; Xiaofeng Jia
Journal:  Stem Cell Rev Rep       Date:  2021-08-20       Impact factor: 5.739

Review 3.  Three-Dimensional Rotating Wall Vessel-Derived Cell Culture Models for Studying Virus-Host Interactions.

Authors:  Jameson K Gardner; Melissa M Herbst-Kralovetz
Journal:  Viruses       Date:  2016-11-09       Impact factor: 5.048

4.  Tissue-engineered rhesus monkey nerve grafts for the repair of long ulnar nerve defects: similar outcomes to autologous nerve grafts.

Authors:  Chang-Qing Jiang; Jun Hu; Jian-Ping Xiang; Jia-Kai Zhu; Xiao-Lin Liu; Peng Luo
Journal:  Neural Regen Res       Date:  2016-11       Impact factor: 5.135

5.  Functional tissue-engineered microtissue formed by self-aggregation of cells for peripheral nerve regeneration.

Authors:  Jian Zhang; Chaochao Li; Fanqi Meng; Yanjun Guan; Tieyuan Zhang; Boyao Yang; Zhiqi Ren; Xiuzhi Liu; Dongdong Li; Jinjuan Zhao; Jie Zhao; Yu Wang; Jiang Peng
Journal:  Stem Cell Res Ther       Date:  2022-01-10       Impact factor: 6.832

6.  An update-tissue engineered nerve grafts for the repair of peripheral nerve injuries.

Authors:  Nitesh P Patel; Kristopher A Lyon; Jason H Huang
Journal:  Neural Regen Res       Date:  2018-05       Impact factor: 5.135

  6 in total

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