Literature DB >> 31535634

Classic axon guidance molecules control correct nerve bridge tissue formation and precise axon regeneration.

Xin-Peng Dun1, David B Parkinson2.   

Abstract

The peripheral nervous system has an astonishing ability to regenerate following a compression or crush injury; however, the potential for full repair following a transection injury is much less. Currently, the major clinical challenge for peripheral nerve repair come from long gaps between the proximal and distal nerve stumps, which prevent regenerating axons reaching the distal nerve. Precise axon targeting during nervous system development is controlled by families of axon guidance molecules including Netrins, Slits, Ephrins and Semaphorins. Several recent studies have indicated key roles of Netrin1, Slit3 and EphrinB2 signalling in controlling the formation of new nerve bridge tissue and precise axon regeneration after peripheral nerve transection injury. Inside the nerve bridge, nerve fibroblasts express EphrinB2 while migrating Schwann cells express the receptor EphB2. EphrinB2/EphB2 signalling between nerve fibroblasts and migrating Schwann cells is required for Sox2 upregulation in Schwann cells and the formation of Schwann cell cords within the nerve bridge to allow directional axon growth to the distal nerve stump. Macrophages in the outermost layer of the nerve bridge express Slit3 while migrating Schwann cells and regenerating axons express the receptor Robo1; within Schwann cells, Robo1 expression is also Sox2-dependent. Slit3/Robo1 signalling is required to keep migrating Schwann cells and regenerating axons inside the nerve bridge. In addition to the Slit3/Robo1 signalling system, migrating Schwann cells also express Netrin1 and regenerating axons express the DCC receptor. It appears that migrating Schwann cells could also use Netrin1 as a guidance cue to direct regenerating axons across the peripheral nerve gap. Engineered neural tissues have been suggested as promising alternatives for the repair of large peripheral nerve gaps. Therefore, understanding the function of classic axon guidance molecules in nerve bridge formation and their roles in axon regeneration could be highly beneficial in developing engineered neural tissue for more effective peripheral nerve repair.

Entities:  

Keywords:  EphrinB2; Netrin1; Slit3; Sox2; axonal guidance; nerve bridge; peripheral nerve; regeneration; transection injury

Year:  2020        PMID: 31535634     DOI: 10.4103/1673-5374.264441

Source DB:  PubMed          Journal:  Neural Regen Res        ISSN: 1673-5374            Impact factor:   5.135


  10 in total

Review 1.  Crosstalk between Bone and Nerves within Bone.

Authors:  Qian-Qian Wan; Wen-Pin Qin; Yu-Xuan Ma; Min-Juan Shen; Jing Li; Zi-Bin Zhang; Ji-Hua Chen; Franklin R Tay; Li-Na Niu; Kai Jiao
Journal:  Adv Sci (Weinh)       Date:  2021-02-10       Impact factor: 16.806

Review 2.  Signals Orchestrating Peripheral Nerve Repair.

Authors:  Michela Rigoni; Samuele Negro
Journal:  Cells       Date:  2020-07-24       Impact factor: 6.600

3.  Asparagine Endopeptidase (δ Secretase), an Enzyme Implicated in Alzheimer's Disease Pathology, Is an Inhibitor of Axon Regeneration in Peripheral Nerves.

Authors:  Arthur W English; Xia Liu; Olivia C Mistretta; Patricia J Ward; Keqiang Ye
Journal:  eNeuro       Date:  2021-01-15

4.  A shape-adjusted ellipse approach corrects for varied axonal dispersion angles and myelination in primate nerve roots.

Authors:  Petra M Bartmeyer; Natalia P Biscola; Leif A Havton
Journal:  Sci Rep       Date:  2021-02-04       Impact factor: 4.996

Review 5.  Another Example of Conditioned Taste Aversion: Case of Snails.

Authors:  Junko Nakai; Yuki Totani; Dai Hatakeyama; Varvara E Dyakonova; Etsuro Ito
Journal:  Biology (Basel)       Date:  2020-11-26

Review 6.  Role of Slit/Robo Signaling pathway in Bone Metabolism.

Authors:  Lingyu Jiang; Jianxun Sun; Dingming Huang
Journal:  Int J Biol Sci       Date:  2022-01-09       Impact factor: 6.580

7.  Long-Term Outcome of Sciatic Nerve Regeneration Using Bio3D Conduit Fabricated from Human Fibroblasts in a Rat Sciatic Nerve Model.

Authors:  Maki Ando; Ryosuke Ikeguchi; Tomoki Aoyama; Mai Tanaka; Takashi Noguchi; Yudai Miyazaki; Shizuka Akieda; Koichi Nakayama; Shuichi Matsuda
Journal:  Cell Transplant       Date:  2021 Jan-Dec       Impact factor: 4.064

8.  Magnetic separation of peripheral nerve-resident cells underscores key molecular features of human Schwann cells and fibroblasts: an immunochemical and transcriptomics approach.

Authors:  Kaiwen Peng; David Sant; Natalia Andersen; Risset Silvera; Vladimir Camarena; Gonzalo Piñero; Regina Graham; Aisha Khan; Xiao-Ming Xu; Gaofeng Wang; Paula V Monje
Journal:  Sci Rep       Date:  2020-10-28       Impact factor: 4.379

9.  Interaction between Schwann cells and other cells during repair of peripheral nerve injury.

Authors:  Wen-Rui Qu; Zhe Zhu; Jun Liu; De-Biao Song; Heng Tian; Bing-Peng Chen; Rui Li; Ling-Xiao Deng
Journal:  Neural Regen Res       Date:  2021-01       Impact factor: 5.135

Review 10.  New Frontiers in Peripheral Nerve Regeneration: Concerns and Remedies.

Authors:  Polina Klimovich; Kseniya Rubina; Veronika Sysoeva; Ekaterina Semina
Journal:  Int J Mol Sci       Date:  2021-12-13       Impact factor: 5.923

  10 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.