AI Article Synopsis

  • Autophagy is a crucial cellular process that breaks down cytoplasmic materials to maintain balance within cells, involving the formation of autophagosomes that fuse with lysosomes to degrade contents.* -
  • The study identified PACSIN1 as a vital regulator of autophagy, where its deletion reduced autophagic activity in normal nutrient conditions and caused buildup of amphisomes, suggesting it plays a role in lysosome fusion.* -
  • PACSIN1 interacts with key proteins involved in autophagy and is shown to affect specific types of cargo degradation, indicating its importance in regulating differing pathways of autophagic processes depending on nutrient availability and stress.*

Article Abstract

Autophagy is an indispensable process that degrades cytoplasmic materials to maintain cellular homeostasis. During autophagy, double-membrane autophagosomes surround cytoplasmic materials and either fuse with endosomes (called amphisomes) and then lysosomes, or directly fuse with lysosomes, in both cases generating autolysosomes that degrade their contents by lysosomal hydrolases. However, it remains unclear if there are specific mechanisms and/or conditions which distinguish these alternate routes. Here, we identified PACSIN1 as a novel autophagy regulator. PACSIN1 deletion markedly decreased autophagic activity under basal nutrient-rich conditions but not starvation conditions, and led to amphisome accumulation as demonstrated by electron microscopic and co-localization analysis, indicating inhibition of lysosome fusion. PACSIN1 interacted with SNAP29, an autophagic SNARE, and was required for proper assembly of the STX17 and YKT6 complexes. Moreover, PACSIN1 was required for lysophagy, aggrephagy but not mitophagy, suggesting cargo-specific fusion mechanisms. In C. elegans, deletion of sdpn-1, a homolog of PACSINs, inhibited basal autophagy and impaired clearance of aggregated protein, implying a conserved role of PACSIN1. Taken together, our results demonstrate the amphisome-lysosome fusion process is preferentially regulated in response to nutrient state and stress, and PACSIN1 is a key to specificity during autophagy.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9246181PMC
http://dx.doi.org/10.1371/journal.pgen.1010264DOI Listing

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