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  Zebrafish spinal cord repair is accompanied by transient tissue stiffening

Möllmert, S., Kharlamova, M. A., Hoche, T., Taubenberger, A. V., Abuhattum, S., Kuscha, V., Kurth, T., Brand, M., & Guck, J. (2020). Zebrafish spinal cord repair is accompanied by transient tissue stiffening. Biophysical Journal, 118(2), 448-463. doi:10.1016/j.bpj.2019.10.044.

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アイテムのパーマリンク: https://hdl.handle.net/21.11116/0000-0006-0A64-F 版のパーマリンク: https://hdl.handle.net/21.11116/0000-0006-8112-3
資料種別: 学術論文

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 作成者:
Möllmert, Stephanie1, 著者
Kharlamova, Maria A.1, 著者
Hoche, Tobias1, 著者
Taubenberger, Anna V.1, 著者
Abuhattum, Shada1, 2, 3, 著者           
Kuscha, Veronika4, 著者
Kurth, Thomas4, 著者
Brand, Michael4, 著者
Guck, Jochen2, 3, 著者           
所属:
1Biotechnology Center, Technische Universität Dresden, Dresden, Germany, ou_persistent22              
2Max-Planck-Zentrum für Physik und Medizin, Max Planck Institute for the Science of Light, Max Planck Society, ou_3164414              
3Guck Division, Max Planck Institute for the Science of Light, Max Planck Society, ou_3164416              
4external, ou_persistent22              

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 要旨: Severe injury to the mammalian spinal cord results in permanent loss of function due to the formation of a glial-fibrotic scar. Both the chemical composition and the mechanical properties of the scar tissue have been implicated to inhibit neuronal regrowth and functional recovery. By contrast, adult zebrafish are able to repair spinal cord tissue and restore motor function after complete spinal cord transection owing to a complex cellular response that includes neurogenesis and axon regrowth. The mechanical mechanisms contributing to successful spinal cord repair in adult zebrafish are, however, currently unknown. Here, we employ AFM-enabled nano-indentation to determine the spatial distributions of apparent elastic moduli of living spinal cord tissue sections obtained from uninjured zebrafish and at distinct time points after complete spinal cord transection. In uninjured specimens, spinal gray matter regions were stiffer than white matter regions. During regeneration after transection, the spinal cord tissues displayed a significant increase of the respective apparent elastic moduli that transiently obliterated the mechanical difference between the two types of matter, before returning to baseline values after completion of repair. Tissue stiffness correlated variably with cell number density, oligodendrocyte interconnectivity, axonal orientation, and vascularization. The presented work constitutes the first quantitative mapping of the spatio-temporal changes of spinal cord tissue stiffness in regenerating adult zebrafish and provides the tissue mechanical basis for future studies into the role of mechanosensing in spinal cord repair.

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言語: eng - English
 日付: 2020-01-21
 出版の状態: 出版
 ページ: -
 出版情報: -
 目次: -
 査読: -
 識別子(DOI, ISBNなど): DOI: 10.1016/j.bpj.2019.10.044
 学位: -

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出版物 1

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出版物名: Biophysical Journal
種別: 学術雑誌
 著者・編者:
所属:
出版社, 出版地: Cambridge, MA, USA : Cell Press
ページ: 15 巻号: 118 (2) 通巻号: - 開始・終了ページ: 448 - 463 識別子(ISBN, ISSN, DOIなど): ISSN: 0006-3495