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Updated: Dec 27, 2025

Assays for the Degradation of Misfolded Proteins in Cells
Published on: August 28, 2016
MARCH5 requires MTCH2 to coordinate proteasomal turnover of the MCL1:NOXA complex
Tirta Mario Djajawi1,2, Lei Liu1,2,3, Jia-Nan Gong1,2
1The Walter and Eliza Hall Institute of Medical Research, Parkville, VIC, Australia.
Abstract:
MCL1, a BCL2 relative, is critical for the survival of many cells. Its turnover is often tightly controlled through both ubiquitin-dependent and -independent mechanisms of proteasomal degradation. Several cell stress signals, including DNA damage and cell cycle arrest, are known to elicit distinct E3 ligases to ubiquitinate and degrade MCL1. Another trigger that drives MCL1 degradation is engagement by NOXA, one of its BH3-only protein ligands, but the mechanism responsible has remained unclear. From an unbiased genome-wide CRISPR-Cas9 screen, we discovered that the ubiquitin E3 ligase MARCH5, the ubiquitin E2 conjugating enzyme UBE2K, and the mitochondrial outer membrane protein MTCH2 co-operate to mark MCL1 for degradation by the proteasome-specifically when MCL1 is engaged by NOXA. This mechanism of degradation also required the MCL1 transmembrane domain and distinct MCL1 lysine residues to proceed, suggesting that the components likely act on the MCL1:NOXA complex by associating with it in a specific orientation within the mitochondrial outer membrane. MTCH2 has not previously been reported to regulate protein stability, but is known to influence the mitochondrial localization of certain key apoptosis regulators and to impact metabolism. We have now pinpointed an essential but previously unappreciated role for MTCH2 in turnover of the MCL1:NOXA complex by MARCH5, further strengthening its links to BCL2-regulated apoptosis.
Insights
Researchers identified a new pathway for MCL1 protein degradation, crucial for cell survival. The E3 ligase MARCH5, UBE2K, and MTCH2 target MCL1 for proteasomal degradation when bound by NOXA.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- MCL1 is a BCL2 family protein vital for cell survival.
- MCL1 protein turnover is regulated by proteasomal degradation.
- Mechanisms of MCL1 degradation upon NOXA engagement were unclear.
Purpose of the Study:
- To elucidate the mechanism by which NOXA binding triggers MCL1 degradation.
- To identify the specific proteins involved in NOXA-induced MCL1 turnover.
Main Methods:
- Genome-wide CRISPR-Cas9 screening.
- Analysis of protein interactions and degradation pathways.
- Investigating the role of MARCH5, UBE2K, and MTCH2 in MCL1 regulation.
Main Results:
- A novel degradation complex involving MARCH5, UBE2K, and MTCH2 was identified.
- This complex specifically targets MCL1 for proteasomal degradation upon NOXA engagement.
- The MCL1 transmembrane domain and specific lysine residues are essential for this degradation process.
- MTCH2 plays a previously unrecognized role in regulating MCL1 protein stability.
Conclusions:
- A new ubiquitin-dependent pathway for MCL1 degradation is described, triggered by NOXA.
- MTCH2 is a key regulator of MCL1 turnover, linking it to apoptosis and mitochondrial function.
- This finding provides new insights into the regulation of apoptosis by the BCL2 family.
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