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Author Spotlight: Quantitative Detection of DNA Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
Phosphorylation-dependent signaling controls degradation of DNA mismatch repair protein PMS2
Inga Hinrichsen1, Isabel M Weßbecher1, Meik Huhn1,2
1Medical Clinic I, Biomedical Research Laboratory, University Clinic Frankfurt, Frankfurt a.M., Germany.
Abstract:
MutLα, a heterodimer consisting of MLH1 and PMS2, plays an important role in DNA mismatch repair and has been shown to be additionally involved in several other important cellular mechanisms. Previous work indicated that AKT could modulate PMS2 stability by phosphorylation. Still, the mechanisms of regulation of MutLα remain unclear. The stability of MutLα subunits was investigated by transiently overexpression of wild type and mutant forms of MLH1 and PMS2 using immunoblotting for measuring the protein levels after treatment. We found that treatment with the cell-permeable serine/threonine phosphatase inhibitor, Calyculin, leads to degradation of PMS2 when MLH1 or its C-terminal domain is missing or if amino acids of MLH1 essential for PMS2 interaction are mutated. In addition, we discovered that the C-terminal tail of PMS2 is relevant for this Calyculin-dependent degradation. A direct involvement of AKT, which was previously described to be responsible for PMS2 degradation, could not be detected. The multi-kinase inhibitor Sorafenib, in contrast, was able to avoid the degradation of PMS2 which postulates that cellular phosphorylation is involved in this process. Together, we show that pharmacologically induced phosphorylation by Calyculin can induce the selective proteasome-dependent degradation of PMS2 but not of MLH1 and that the PMS2 degradation could be blocked by Sorafenib treatment. Curiously, the C-terminal Lynch Syndrome-variants MLH1L749P and MLH1Y750X make PMS2 prone to Calyculin induced degradation. Therefore, we conclude that the specific degradation of PMS2 may represent a new mechanism to regulate MutLα.
Insights
The study reveals that Calyculin induces selective degradation of PMS2, a component of MutLα, through phosphorylation. This process, crucial for DNA mismatch repair, can be blocked by Sorafenib and is influenced by MLH1 interactions and Lynch Syndrome variants.
Area of Science:
- Molecular Biology
- Cellular Mechanisms
- DNA Repair
Background:
- MutLα (MLH1/PMS2) is vital for DNA mismatch repair.
- Previous studies suggested AKT regulates PMS2 stability via phosphorylation.
- Mechanisms controlling MutLα regulation remain largely unknown.
Purpose of the Study:
- To investigate the regulation of MutLα subunit stability.
- To elucidate the mechanisms governing PMS2 stability and degradation.
- To identify factors influencing MutLα regulation.
Main Methods:
- Transient overexpression of wild-type and mutant MLH1 and PMS2.
- Immunoblotting to quantify protein levels after treatment.
- Treatment with Calyculin (phosphatase inhibitor) and Sorafenib (kinase inhibitor).
Main Results:
- Calyculin treatment induced selective proteasome-dependent degradation of PMS2, not MLH1.
- PMS2 degradation occurred when MLH1 was absent, truncated, or mutated at interaction sites.
- The C-terminal tail of PMS2 and C-terminal MLH1 variants (Lynch Syndrome) influenced degradation.
- AKT's direct role was not detected; Sorafenib blocked PMS2 degradation, indicating phosphorylation involvement.
Conclusions:
- Pharmacologically induced phosphorylation can selectively degrade PMS2, a novel regulatory mechanism for MutLα.
- MLH1 interaction and specific MLH1 variants impact PMS2 stability.
- This finding offers new insights into MutLα regulation beyond DNA mismatch repair.
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