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CELF RNA binding proteins promote axon regeneration in C. elegans and mammals through alternative splicing of syntaxins

  • Lizhen Chen
  • , Zhijie Liu
  • , Bing Zhou
  • , Chaoliang Wei
  • , Yu Zhou
  • , Michael G. Rosenfeld
  • , Xiang Dong Fu
  • , Andrew D. Chisholm
  • , Yishi Jin
  • University of California at San Diego
  • University of Texas Health Sciences Center at San Antonio and South Texas Veterans Health Care System
  • University of California

Research output: Contribution to journalArticlepeer-review

30 Scopus citations

Abstract

Axon injury triggers dramatic changes in gene expression. While transcriptional regulation of injury-induced gene expression is widely studied, less is known about the roles of RNA binding proteins (RBPs) in post-transcriptional regulation during axon regeneration. In C. elegans the CELF (CUGBP and Etr-3 Like Factor) family RBP UNC-75 is required for axon regeneration. Using crosslinking immunoprecipitation coupled with deep sequencing (CLIP-seq) we identify a set of genes involved in synaptic transmission as mRNA targets of UNC-75. In particular, we show that UNC-75 regulates alternative splicing of two mRNA isoforms of the SNARE Syntaxin/ unc-64. In C. elegans mutants lacking unc-75 or its targets, regenerating axons form growth cones, yet are deficient in extension. Extending these findings to mammalian axon regeneration, we show that mouse Celf2 expression is upregulated after peripheral nerve injury and that Celf2 mutant mice are defective in axon regeneration. Further, mRNAs for several Syntaxins show CELF2 dependent regulation. Our data delineate a post-transcriptional regulatory pathway with a conserved role in regenerative axon extension.

Original languageEnglish
Article numbere16072
JournaleLife
Volume5
Issue numberJUN2016
DOIs
StatePublished - 2 Jun 2016
Externally publishedYes

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