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Updated: Dec 29, 2025

Growth-based Determination and Biochemical Confirmation of Genetic Requirements for Protein Degradation in Saccharomyces cerevisiae
Published on: February 16, 2015
Inter- and intramolecular regulation of protein depupylation in Mycobacterium smegmatis
Nir Hecht1, Mika Becher1, Maayan Korman1
1Department of Life Sciences, Ben-Gurion University of the Negev, Beer-Sheva, Israel.
Abstract:
Whereas intracellular proteolysis is essential for proper cellular function, it is a destructive process, which must be tightly regulated. In some bacteria, a Pup-proteasome system tags target proteins for degradation by a bacterial proteasome. Pup, a small modifier protein, is attached to target proteins by PafA, the sole Pup ligase, in a process termed pupylation. In mycobacteria, including Mycobacterium smegmatis and Mycobacterium tuberculosis, Pup undergoes a deamidation step by the enzyme Dop prior to its PafA-mediated attachment to a target. The catalytic mechanism of Pup deamidation is also used by Dop to perform depupylation, namely the removal of Pup from already tagged proteins. Hence, Dop appears to play contradictory roles: On the one hand, deamidation of Pup promotes pupylation, while on the other hand, depupylation reduces tagged protein levels. To avoid futile pupylation-depupylation cycles, Dop activity must be regulated. An intramolecular regulatory mechanism directs Dop to catalyze deamidation more effectively than depupylation. A complementary intermolecular mechanism results in Dop depletion under conditions where protein pupylation and degradation are favorable. In this work, we studied these regulatory mechanisms and identified a flexible loop in Dop, previously termed the Dop-loop, that acts as an intramolecular regulatory element that allosterically controls substrate preference. To investigate regulation at the intermolecular level, we used the CRISPR interference system to knock down the expression of M. smegmatis ATP-dependent intracellular proteases and found that the ClpCP protease is responsible for Dop depletion under starvation conditions. These findings clarify previous observations and introduce a new level for the regulation of Dop activity. DATABASE: Structural data are available in the PDB database under the accession numbers 4BJR and 4B0S.
Insights
Bacterial proteasome regulation involves the enzyme Dop, which controls protein tagging. This study reveals how Dop
Area of Science:
- Microbiology and Molecular Biology
- Protein Degradation Pathways
- Enzymology
Background:
- Intracellular proteolysis is crucial for cellular health but requires strict regulation.
- Bacteria utilize a Pup-proteasome system for targeted protein degradation.
- In mycobacteria, the enzyme Dop modifies Pup protein (a tag) before its attachment to targets, a process called pupylation.
Purpose of the Study:
- To elucidate the intramolecular and intermolecular regulatory mechanisms of the Dop enzyme.
- To understand how Dop balances its opposing roles in promoting and reversing pupylation.
- To identify the bacterial proteases involved in Dop regulation.
Main Methods:
- Investigated Dop's allosteric regulation using structural and biochemical analyses, focusing on a flexible loop (Dop-loop).
- Employed CRISPR interference (CRISPRi) in Mycobacterium smegmatis to study the impact of protease depletion on Dop levels.
- Identified specific ATP-dependent proteases responsible for Dop regulation.
Main Results:
- A flexible loop in Dop allosterically controls its substrate preference, favoring deamidation over depupylation.
- CRISPRi-mediated knockdown revealed that the ClpCP protease depletes Dop under starvation conditions.
- These findings uncover novel regulatory layers for Dop activity.
Conclusions:
- Dop activity is precisely controlled through both intramolecular (Dop-loop) and intermolecular (ClpCP-mediated degradation) mechanisms.
- These regulatory systems prevent futile cycles and ensure efficient protein turnover in mycobacteria.
- The study provides a comprehensive understanding of Dop's dual role in bacterial protein homeostasis.
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