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Updated: Jul 6, 2025

Cycloheximide Chase Analysis of Protein Degradation in Saccharomyces cerevisiae
Published on: April 18, 2016
Bidirectional substrate shuttling between the 26S proteasome and the Cdc48 ATPase promotes protein degradation
Abstract:
Most eukaryotic proteins are degraded by the 26S proteasome after modification with a polyubiquitin chain. Substrates lacking unstructured segments cannot be degraded directly and require prior unfolding by the Cdc48 ATPase (p97 or VCP in mammals) in complex with its ubiquitin-binding partner Ufd1-Npl4 (UN). Here, we use purified yeast components to reconstitute Cdc48-dependent degradation of well-folded model substrates by the proteasome. We show that a minimal system consists of the 26S proteasome, the Cdc48-UN ATPase complex, the proteasome cofactor Rad23, and the Cdc48 cofactors Ubx5 and Shp1. Rad23 and Ubx5 stimulate polyubiquitin binding to the 26S proteasome and the Cdc48-UN complex, respectively, allowing these machines to compete for substrates before and after their unfolding. Shp1 stimulates protein unfolding by the Cdc48-UN complex, rather than substrate recruitment. In vivo experiments confirm that many proteins undergo bidirectional substrate shuttling between the 26S proteasome and Cdc48 ATPase before being degraded.
Insights
The 26S proteasome degrades most eukaryotic proteins, but Cdc48 ATPase (p97/VCP) unfolds stubborn substrates. This study reconstitutes this process, revealing key cofactors that mediate substrate transfer and degradation.
Area of Science:
- Cellular Biology
- Protein Degradation
- Biochemistry
Background:
- Eukaryotic protein degradation primarily relies on the 26S proteasome, requiring polyubiquitination.
- Proteins lacking unstructured regions need unfolding by the Cdc48 ATPase (p97/VCP) with Ufd1-Npl4 (UN) before proteasomal degradation.
Approach:
- Reconstituted Cdc48-dependent proteasomal degradation using purified yeast components.
- Identified a minimal system including the 26S proteasome, Cdc48-UN, Rad23, Ubx5, and Shp1.
Key Points:
- Rad23 and Ubx5 enhance polyubiquitin binding to the proteasome and Cdc48-UN, respectively, facilitating substrate competition.
- Shp1 promotes protein unfolding by Cdc48-UN.
- Bidirectional substrate shuttling between the proteasome and Cdc48 was observed in vivo.
Conclusions:
- A minimal reconstituted system effectively degrades well-folded substrates via Cdc48-dependent unfolding and proteasomal degradation.
- Cofactors play crucial roles in regulating substrate accessibility and transfer between degradation machinery.
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