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Endolysosomal Deficits Augment Mitochondria Pathology in Spinal Motor Neurons of Asymptomatic fALS Mice

  • Yuxiang Xie
  • , Bing Zhou
  • , Mei Yao Lin
  • , Shiwei Wang
  • , Kevin D. Foust
  • , Zu Hang Sheng*
  • *Corresponding author for this work
  • National Institutes of Health
  • Ohio State University

Research output: Contribution to journalArticlepeer-review

Abstract

One pathological hallmark in ALS motor neurons (MNs) is axonal accumulation of damaged mitochondria. A fundamental question remains: does reduced degradation of those mitochondria by an impaired autophagy-lysosomal system contribute to mitochondrial pathology? We reveal MN-targeted progressive lysosomal deficits accompanied by impaired autophagic degradation beginning at asymptomatic stages in fALS-linked hSOD1G93A mice. Lysosomal deficits result in accumulation of autophagic vacuoles engulfing damaged mitochondria along MN axons. Live imaging of spinal MNs from the adult disease mice demonstrates impaired dynein-driven retrograde transport of late endosomes (LEs). Expressing dynein-adaptor snapin reverses transport defects by competing with hSOD1G93A for binding dynein, thus rescuing autophagy-lysosomal deficits, enhancing mitochondrial turnover, improving MN survival, and ameliorating the disease phenotype in hSOD1G93A mice. Our study provides a new mechanistic link for hSOD1G93A-mediated impairment of LE transport to autophagy-lysosomal deficits and mitochondrial pathology. Understanding these early pathological events benefits development of new therapeutic interventions for fALS-linked MN degeneration. Xie etal. reveal progressive lysosomal deficits in motor neurons starting at asymptomatic stages in fALS-linked hSOD1G93A mice, and the authors advance our understanding of early pathological mechanisms underlying motor neuron degeneration.

Original languageEnglish
Pages (from-to)355-370
Number of pages16
JournalNeuron
Volume87
Issue number2
DOIs
StatePublished - 15 Jul 2015
Externally publishedYes

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