Related Experiment Video
Updated: Jun 13, 2025

4D Imaging of Protein Aggregation in Live Cells
Published on: April 5, 2013
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.
Abstract:
A hallmark of neurodegenerative diseases is the progressive loss of proteostasis, leading to the accumulation of misfolded proteins or protein aggregates, with subsequent cytotoxicity. To combat this toxicity, cells have evolved degradation pathways (ubiquitin-proteasome system and autophagy) that detect and degrade misfolded proteins. However, studying the underlying cellular pathways and mechanisms has remained a challenge, as formation of many types of protein aggregates is asynchronous, with individual cells displaying distinct kinetics, thereby hindering rigorous time-course studies. Here, we merge a kinetically tractable and synchronous agDD-GFP system for aggregate formation with targeted gene knockdowns, to uncover degradation mechanisms used in response to acute aggregate formation. We find that agDD-GFP forms amorphous aggregates by cryo-electron tomography at both early and late stages of aggregate formation. Aggregate turnover occurs in a proteasome-dependent mechanism in a manner that is dictated by cellular aggregate burden, with no evidence of the involvement of autophagy. Lower levels of misfolded agDD-GFP, enriched in oligomers, utilizes UBE3C-dependent proteasomal degradation in a pathway that is independent of RPN13 ubiquitylation by UBE3C. Higher aggregate burden activates the NRF1 transcription factor to increase proteasome subunit transcription, and subsequent degradation capacity of cells. Loss or gain of NRF1 function alters the turnover of agDD-GFP under conditions of high aggregate burden. Together, these results define the role of UBE3C in degradation of this class of misfolded aggregation-prone proteins and reveals a role for NRF1 in proteostasis control in response to widespread protein aggregation.
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.
More Related Videos
Related Concept Videos
The Unfolded Protein Response
Regulated Protein Degradation
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
The Proteasome
In this pathway, the target proteins are first tagged with small proteins called ubiquitin. This involves participation of a series of enzymes including— E1 (ubiquitin-activating enzyme), E2 (ubiquitin-conjugating enzyme), and E3...
Regulation of the Unfolded Protein Response
Export of Misfolded Proteins out of the ER
Covalently Linked Protein Regulators
These groups modify specific amino acids in a protein....

