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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.
Abstract:
mRNA decay factors regulate mRNA turnover by recruiting non-translating mRNAs and targeting them for translational repression and mRNA degradation. How mRNA decay pathways regulate cellular function in vivo with specificity is poorly understood. Here, we show that C. elegans mRNA decay factors, including the translational repressors CAR-1/LSM14 and CGH-1/DDX6, and the decapping enzymes DCAP-1/DCP1, function in neurons to differentially regulate axon development, maintenance, and regrowth following injury. In neuronal cell bodies, CAR-1 fully colocalizes with CGH-1 and partially colocalizes with DCAP-1, suggesting that mRNA decay components form at least two types of cytoplasmic granules. Following axon injury in adult neurons, loss of CAR-1 or CGH-1 results in increased axon regrowth and growth cone formation, whereas loss of DCAP-1 or DCAP-2 results in reduced regrowth. To determine how CAR-1 inhibits regrowth, we analyzed mRNAs bound to pan-neuronally expressed GFP::CAR-1 using a crosslinking and immunoprecipitation-based approach. Among the putative mRNA targets of CAR-1, we characterized the roles of micu-1, a regulator of the mitochondrial calcium uniporter MCU-1, in axon injury. We show that loss of car-1 results increased MICU-1 protein levels, and that enhanced axon regrowth in car-1 mutants is dependent on micu-1 and mcu-1. Moreover, axon injury induces transient calcium influx into axonal mitochondria, dependent on MCU-1. In car-1 loss-of-function mutants and in micu-1 overexpressing animals, the axonal mitochondrial calcium influx is more sustained, which likely underlies enhanced axon regrowth. Our data uncover a novel pathway that controls axon regrowth through axonal mitochondrial calcium uptake.
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.
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