Literature DB >> 34896115

FGF binding protein 3 is required for spinal cord motor neuron development and regeneration in zebrafish.

Guangmin Xu1, Zigang Huang1, Jiajing Sheng1, Xiang Gao1, Xin Wang1, Jason Q Garcia2, Guanyun Wei1, Dong Liu3, Jie Gong4.   

Abstract

Fibroblast growth factor binding protein 3 (Fgfbp3) have been known to be crucial for the process of neural proliferation, differentiation, migration, and adhesion. However, the specific role and the molecular mechanisms of fgfbp3 in regulating the development of motor neurons remain unclear. In this study, we have investigated the function of fgfbp3 in morphogenesis and regeneration of motor neuron in zebrafish. Firstly, we found that fgfbp3 was localized in the motor neurons and loss of fgfbp3 caused the significant decrease of the length and branching number of the motor neuron axons, which could be partially rescued by fgfbp3 mRNA injection. Moreover, the fgfbp3 knockdown (KD) embryos demonstrated similar defects of motor neurons as identified in fgfbp3 knockout (KO) embryos. Furthermore, we revealed that the locomotion and startle response of fgfbp3 KO embryos were significantly restricted, which were partially rescued by the fgfbp3 overexpression. In addition, fgfbp3 KO remarkably compromised axonal regeneration of motor neurons after injury. Lastly, the malformation of motor neurons in fgfbp3 KO embryos was rescued by overexpressing drd1b or neurod6a, respectively, which were screened by transcriptome sequencing. Taken together, our results provide strong cellular and molecular evidence that fgfbp3 is crucial for the axonal morphogenesis and regeneration of motor neurons in zebrafish.
Copyright © 2021 Elsevier Inc. All rights reserved.

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Keywords:  Fgfbp3; Morphogenesis; Motor neurons; Regeneration; Zebrafish

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Year:  2021        PMID: 34896115     DOI: 10.1016/j.expneurol.2021.113944

Source DB:  PubMed          Journal:  Exp Neurol        ISSN: 0014-4886            Impact factor:   5.330


  1 in total

Review 1.  Unique advantages of zebrafish larvae as a model for spinal cord regeneration.

Authors:  Samuel R Alper; Richard I Dorsky
Journal:  Front Mol Neurosci       Date:  2022-09-07       Impact factor: 6.261

  1 in total

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