Mechanisms of spinal cord injury regeneration in zebrafish: a systematic review

被引:15
|
作者
Noorimotlagh, Zeynab [1 ]
Babaie, Mahla [1 ]
Safdarian, Mahdi [2 ]
Ghadiri, Tahereh [3 ]
Rahimi-Movaghar, Vafa [4 ]
机构
[1] Iran Univ Med Sci, Sina Trauma & Surg Res Ctr, Tehran, Iran
[2] Iran Univ Med Sci, Sina Trauma & Surg Res Ctr, Tehran, Iran
[3] Tabriz Univ Med Sci, Tabriz, Iran
[4] Univ Tehran Med Sci, Sina Trauma & Surg Res Ctr, Tehran 113653876, Iran
关键词
Regeneration recovery of - function; Spinal cord regeneration; Spinal cord injuries; Zebrafish; PROMOTES LOCOMOTOR RECOVERY; MOTOR-NEURON REGENERATION; CENTRAL-NERVOUS-SYSTEM; ADULT ZEBRAFISH; AXONAL REGENERATION; FUNCTIONAL RECOVERY; PROTEIN; EXPRESSION; DECOMPRESSION; TRANSECTION;
D O I
10.22038/IJBMS.2017.9620
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Objective(s): To determine the molecular and cellular mechanisms of spinal cord regeneration in zebrafish. Materials and Methods: Medical databases of PubMed and Scopus were searched with following key words: Zebrafish; spinal cord injuries; regeneration; recovery of function. The map of mechanisms was performed using Xmind software. Results: Wnt/beta-catenin signaling, L1.1, L1.2, Major vault protein (MVP), contactin-2 and High mobility group box1 (HMGB1) had positive promoting effects on axonal re-growth while Ptena had an inhibitory effect. Neurogenesis is stimulated by Wnt/beta-catenin signaling as well as HMGB1, but inhibited by Notch signaling. Glial cells proliferate in response to fibroblast growth factor (FGF) signaling and Lysophosphatidic acid (LPA). Furthermore, fgf signaling pathway causes glia bridge formation in favor of axonal regeneration. LPA and HMGB1 in acute phase stimulate inflammatory responses around injury and suppress regeneration. LPA also induces microglia activation and neuronal death in addition to glia cell proliferation, but prevents neurite sprouting. Conclusion: This study provides a comprehensive review of the known molecules and mechanisms in the current literature involved in the spinal cord injury (SCI) regeneration in zebrafish, in a time course manner. A better understanding of the whole determining mechanisms for the SCI regeneration should be considered as a main goal for future studies.
引用
收藏
页码:1287 / 1296
页数:10
相关论文
共 50 条
  • [31] Bioinformatic identification of key candidate genes and pathways in axon regeneration after spinal cord injury in zebrafish
    Li, Jia-He
    Shi, Zhong-Ju
    Li, Yan
    Pan, Bin
    Yuan, Shi-Yang
    Shi, Lin-Lin
    Hao, Yan
    Cao, Fu-Jiang
    Feng, Shi-Qing
    NEURAL REGENERATION RESEARCH, 2020, 15 (01) : 103 - 111
  • [32] Cellular Dynamics during Spinal Cord Regeneration in Larval Zebrafish
    Anguita-Salinas, Consuelo
    Sanchez, Mario
    Morales, Rodrigo A.
    Laura Ceci, Maria
    Rojas-Benitez, Diego
    Allende, Miguel L.
    DEVELOPMENTAL NEUROSCIENCE, 2019, 41 (1-2) : 112 - 122
  • [33] Cell Transplantation for Spinal Cord Injury: A Systematic Review
    Li, Jun
    Lepski, Guilherme
    BIOMED RESEARCH INTERNATIONAL, 2013, 2013
  • [34] The role of stem cell secretome on spinal cord injury regeneration: a systematic review and meta-analysis
    Semita, I. Nyoman
    Utomo, Dwikora Novembri
    Suroto, Heri
    BALI MEDICAL JOURNAL, 2023, 12 (02) : 1507 - 1513
  • [35] Activating Transcription Factor 6 Contributes to Functional Recovery After Spinal Cord Injury in Adult Zebrafish
    Ji, Zhe
    Zhou, Zhi-Lan
    Hao, Qin
    Zhao, Lin
    Cui, Chun
    Huang, Shu-Bing
    Yang, Yan-Ling
    Shen, Yan-Qin
    JOURNAL OF MOLECULAR NEUROSCIENCE, 2021, 71 (04) : 734 - 745
  • [36] Wnt/β-catenin signaling promotes regeneration after adult zebrafish spinal cord injury
    Strand, Nicholas S.
    Hoi, Kimberly K.
    Phan, Tien M. T.
    Ray, Catherine A.
    Berndt, Jason D.
    Moon, Randall T.
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2016, 477 (04) : 952 - 956
  • [37] HMGB1 Contributes to Regeneration After Spinal Cord Injury in Adult Zebrafish
    Ping Fang
    Hong-Chao Pan
    Stanley Li Lin
    Wen-Qing Zhang
    Heikki Rauvala
    Melitta Schachner
    Yan-Qin Shen
    Molecular Neurobiology, 2014, 49 : 472 - 483
  • [38] Injury-induced ctgfa directs glial bridging and spinal cord regeneration in zebrafish
    Mokalled, Mayssa H.
    Patra, Chinmoy
    Dickson, Amy L.
    Endo, Toyokazu
    Stainier, Didier Y. R.
    Poss, Kenneth D.
    SCIENCE, 2016, 354 (6312) : 630 - 634
  • [39] A review of published reports on neuroprotection in spinal cord injury
    Onose, G.
    Anghelescu, A.
    Muresanu, D. F.
    Padure, L.
    Haras, M. A.
    Chendreanu, C. O.
    Onose, L. V.
    Mirea, A.
    Ciurea, A. V.
    El Masri, W. S.
    von Wild, K. R. H.
    SPINAL CORD, 2009, 47 (10) : 716 - 726
  • [40] Progenitor-derived glia are required for spinal cord regeneration in zebrafish
    Zhou, Lili
    McAdow, Anthony R.
    Yamada, Hunter
    Burris, Brooke
    Shaw, Dana Klatt
    Oonk, Kelsey
    Poss, Kenneth D.
    Mokalled, Mayssa H.
    DEVELOPMENT, 2023, 150 (10):