The mRNA Decay Factor CAR-1/LSM14 Regulates Axon Regeneration via Mitochondrial Calcium Dynamics

Ngang Heok Tang1, Kyung Won Kim1, Suhong Xu1

  • 1Section of Neurobiology, Division of Biological Sciences, University of California, San Diego, La Jolla, CA 92093, USA.

Current Biology : CB
|January 28, 2020
PubMed

Insights

mRNA decay factors CAR-1 and CGH-1 promote axon regrowth after injury by regulating mitochondrial calcium uptake. Loss of these factors enhances axon regeneration, revealing a novel pathway for neuronal repair.

Area of Science:

  • Neurobiology
  • Molecular Biology
  • Cell Biology

Background:

  • mRNA decay pathways are crucial for regulating gene expression and cellular function.
  • The specific roles of mRNA decay factors in vivo, particularly in neuronal regeneration, remain poorly understood.

Purpose of the Study:

  • To investigate the function of mRNA decay factors in neuronal development, maintenance, and axon regrowth following injury in C. elegans.
  • To identify the molecular mechanisms by which mRNA decay factors, such as CAR-1, regulate axon regrowth.

Main Methods:

  • Utilized C. elegans as a model organism.
  • Employed techniques including immunofluorescence microscopy to observe protein colocalization.
  • Performed crosslinking and immunoprecipitation (CLIP) to identify mRNA targets of CAR-1.
  • Analyzed gene and protein expression levels, and assessed axon regrowth following injury in wild-type and mutant animals.

Main Results:

  • Neuronal mRNA decay factors CAR-1 (LSM14), CGH-1 (DDX6), DCAP-1 (DCP1), and DCAP-2 (DCP2) play differential roles in axon regrowth after injury.
  • Loss of CAR-1 or CGH-1 enhances axon regrowth, while loss of DCAP-1 or DCAP-2 reduces it.
  • CAR-1 targets micu-1 mRNA, and loss of CAR-1 leads to increased MICU-1 protein levels.
  • Enhanced axon regrowth in car-1 mutants depends on micu-1 and mcu-1.
  • Axon injury induces mitochondrial calcium influx via MCU-1, which is sustained in car-1 mutants, promoting regrowth.

Conclusions:

  • mRNA decay factors differentially regulate axon regeneration in vivo.
  • A novel pathway involving CAR-1, micu-1, and MCU-1-mediated mitochondrial calcium uptake controls axon regrowth.
  • Sustained axonal mitochondrial calcium influx is a key mechanism promoting enhanced axon regeneration.