4.7 Article

Neuronal Regeneration in C. elegans Requires Subcellular Calcium Release by Ryanodine Receptor Channels and Can Be Enhanced by Optogenetic Stimulation

期刊

JOURNAL OF NEUROSCIENCE
卷 34, 期 48, 页码 15947-15956

出版社

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.4238-13.2014

关键词

C. elegans; calcium; optogenetics; regeneration; ryanodine receptor

资金

  1. Massachusetts Life Sciences Center
  2. National Institute of General Medical Sciences predoctoral training Grant [GM008541]
  3. National Institute of Neurological Disorders and Stroke Grant [R01 NS077929]
  4. National Institutes of Health
  5. National Institutes of Health National Center for Research Resources
  6. [GM084491]
  7. NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES [R01GM084491, T32GM008541] Funding Source: NIH RePORTER
  8. NATIONAL INSTITUTE OF NEUROLOGICAL DISORDERS AND STROKE [R01NS077929] Funding Source: NIH RePORTER

向作者/读者索取更多资源

Regulated calcium signals play conserved instructive roles in neuronal repair, but how localized calcium stores are differentially mobilized, or might be directly manipulated, to stimulate regeneration within native contexts is poorly understood. We find here that localized calcium release from the endoplasmic reticulum via ryanodine receptor (RyR) channels is critical in stimulating initial regeneration following traumatic cellular damage in vivo. Using laser axotomy of single neurons in Caenorhabditis elegans, we find that mutation of unc-68/RyR greatly impedes both outgrowth and guidance of the regenerating neuron. Performing extended in vivo calcium imaging, we measure subcellular calcium signals within the immediate vicinity of the regenerating axon end that are sustained for hours following axotomy and completely eliminated within unc-68/RyR mutants. Finally, using a novel optogenetic approach to periodically photostimulate the axotomized neuron, we can enhance its regeneration. The enhanced outgrowth depends on both amplitude and temporal pattern of excitation and can be blocked by disruption of UNC-68/RyR. This demonstrates the exciting potential of emerging optogenetic technology to beneficially manipulate cell physiology in the context of neuronal regeneration and indicates a link to the underlying cellular calcium signal. Taken as a whole, our findings define a specific localized calcium signal mediated by RyR channel activity that stimulates regenerative outgrowth, which may be dynamically manipulated for beneficial neurotherapeutic effects.

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