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Holzbaur, E.

Publications and source records attributed to Holzbaur, E..

2 recordsLinked to original sources

A RAB7A Phosphoswitch Coordinates Rubicon Homology Protein Regulation of PINK1/Parkin-Dependent Mitophagy

Activation of PINK1 and Parkin in response to mitochondrial damage initiates a cytoprotective mitophagy response that includes phosphorylation of RAB7A at Ser72. Rubicon is a RAB7A binding protein that acts as a negative regulator of autophagy. The structure of the Rubicon-RAB7A complex suggests that phosphorylation of RAB7A at Ser72 would block Rubicon binding. Indeed, in vitro phosphorylation of RAB7A by TBK1 abrogates Rubicon-RAB7A binding. Pacer, a positive regulator of autophagy, has an RH domain with a basic triad predicted to bind an introduced phosphate. Consistent with this, Pacer-RH binds to phosho-RAB7A but not to unphosphorylated RAB7A. In cells, mitochondrial depolarization reduces Rubicon:RAB7A colocalization whilst recruiting Pacer to phospho-RAB7A-positive puncta. Pacer knockout reduces Parkin mitophagy with little effect on bulk autophagy or Parkin-independent mitophagy. Rescue of Parkin-dependent mitophagy requires the intact pRAB7A phosphate-binding basic triad of Pacer. Together these structural and functional data support a model in which the TBK1-dependent phosphorylation of RAB7A serves as a switch, promoting mitophagy by relieving Rubicon inhibition and favoring Pacer activation.

cell biology↗

Aging Differentially Affects Axonal Autophagosome Formation and Maturation

Misregulation of neuronal autophagy has been implicated in age-related neurodegenerative diseases including Parkinsons disease and Huntingtons disease. We compared autophagosome formation and maturation in primary murine neurons during development and through aging to elucidate how aging affects neuronal autophagy. We observed an age-related decrease in the rate of formation of LC3B-positive autophagosomes leading to a significant decrease in the density of autophagosomes along the axon. Next, we assessed the maturation of autophagic vesicles and identified a surprising increase in their maturation in neurons from aged mice. While we did not detect notable changes in endolysosomal content in the distal axon during aging, we found that autophagic vesicles were transported more efficiently in neurons from adult mice than in neurons from young mice. This efficient transport of autophagic vesicles in both the distal and proximal axon is maintained in neurons from aged mice and indicates that aging alone does not impair transport nor negatively impact the later stages of autophagy. However, the pronounced deficit in autophagosome biogenesis in aged neurons may contribute to a decreased capacity to clear aggregated proteins or dysfunctional organelles and thus contribute to age-related degeneration.

neuroscience↗