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Mitostasis in Neurons: Maintaining Mitochondria in an Extended Cellular Architecture

Journal

NEURON
Volume 96, Issue 3, Pages 651-666

Publisher

CELL PRESS
DOI: 10.1016/j.neuron.2017.09.055

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Categories

Funding

  1. NIH [R01GM069808]
  2. Mathers Foundation
  3. ARSACS Foundation
  4. Michael J. Fox Foundation
  5. DFG through the Munich Center for Systems Neurology (SyNergy) [EXC 1010]
  6. Center for Integrated Protein Science Munich (CIPSM) [EXC 114]
  7. Collaborative Research Center [870, Mi694/7-1, Mi694/8-1]
  8. European Union's Seventh Framework Program (FP) [616791]

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Neurons have more extended and complex shapes than other cells and consequently face a greater challenge in distributing and maintaining mitochondria throughout their arbors. Neurons can last a lifetime, but proteins turn over rapidly. Mitochondria, therefore, need constant rejuvenation no matter how far they are from the soma. Axonal transport of mitochondria and mitochondrial fission and fusion contribute to this rejuvenation, but local protein synthesis is also likely. Maintenance of a healthy mitochondrial population also requires the clearance of damaged proteins and organelles. This involves degradation of individual proteins, sequestration in mitochondria-derived vesicles, organelle degradation by mitophagy and macroautophagy, and in some cases transfer to glial cells. Both long-range transport and local processing are thus at work in achieving neuronal mitostasis-the maintenance of an appropriately distributed pool of healthy mitochondria for the duration of a neuron's life. Accordingly, defects in the processes that support mitostasis are significant contributors to neurodegenerative disorders.

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