Temporal control of acute protein aggregate turnover by UBE3C and NRF1-dependent proteasomal pathways

Kelsey L Hickey1,2, Alexandra Panov1,2, Enya Miguel Whelan1,2

  • 1Department of Cell Biology, Harvard Medical School, Boston MA, USA.

Insights

Cells combat misfolded proteins in neurodegenerative diseases using the proteasome pathway. This study reveals UBE3C

Area of Science:

  • Cellular Biology
  • Neuroscience
  • Biochemistry

Background:

  • Neurodegenerative diseases are characterized by proteostasis loss and protein aggregate accumulation.
  • Cellular degradation pathways, including the ubiquitin-proteasome system and autophagy, combat protein toxicity.
  • Studying aggregate formation kinetics is challenging due to asynchronous and heterogeneous cellular responses.

Purpose of the Study:

  • To investigate degradation mechanisms for acute protein aggregate formation.
  • To uncover the roles of specific proteins and transcription factors in clearing misfolded proteins.
  • To understand proteostasis control during widespread protein aggregation.

Main Methods:

  • Development of a synchronous agDD-GFP system for controlled aggregate formation.
  • Cryo-electron tomography to visualize aggregate structures.
  • Targeted gene knockdowns to identify key degradation players.
  • Analysis of NRF1 transcription factor activity and its impact on proteasome capacity.

Main Results:

  • agDD-GFP forms amorphous aggregates, with turnover primarily via a proteasome-dependent mechanism.
  • UBE3C mediates proteasomal degradation of lower levels of misfolded agDD-GFP.
  • High aggregate burden activates NRF1, increasing proteasome subunit transcription and degradation capacity.
  • NRF1 function significantly impacts agDD-GFP turnover under high aggregation conditions.

Conclusions:

  • The proteasome, not autophagy, handles acute agDD-GFP aggregate clearance.
  • UBE3C plays a crucial role in degrading aggregation-prone proteins.
  • NRF1 acts as a key regulator of proteostasis in response to substantial protein aggregation.

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