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X-Ray Crystallography to Study the Oligomeric State Transition of the Thermotoga maritima M42 Aminopeptidase TmPep1050
Published on: May 13, 2020
A conserved motif mediates both multimer formation and allosteric activation of phosphoglycerate mutase 5
Jordan M Wilkins1, Cyrus McConnell1, Peter A Tipton2
1From the Bond Life Sciences Center and.
Abstract:
Phosphoglycerate mutase 5 (PGAM5) is an atypical mitochondrial Ser/Thr phosphatase that modulates mitochondrial dynamics and participates in both apoptotic and necrotic cell death. The mechanisms that regulate the phosphatase activity of PGAM5 are poorly understood. The C-terminal phosphoglycerate mutase domain of PGAM5 shares homology with the catalytic domains found in other members of the phosphoglycerate mutase family, including a conserved histidine that is absolutely required for catalytic activity. However, this conserved domain is not sufficient for maximal phosphatase activity. We have identified a highly conserved amino acid motif, WDXNWD, located within the unique N-terminal region, which is required for assembly of PGAM5 into large multimeric complexes. Alanine substitutions within the WDXNWD motif abolish the formation of multimeric complexes and markedly reduce phosphatase activity of PGAM5. A peptide containing the WDXNWD motif dissociates the multimeric complex and reduces but does not fully abolish phosphatase activity. Addition of the WDXNWD-containing peptide in trans to a mutant PGAM5 protein lacking the WDXNWD motif markedly increases phosphatase activity of the mutant protein. Our results are consistent with an intermolecular allosteric regulation mechanism for the phosphatase activity of PGAM5, in which the assembly of PGAM5 into multimeric complexes, mediated by the WDXNWD motif, results in maximal activation of phosphatase activity. Our results suggest the possibility of identifying small molecules that function as allosteric regulators of the phosphatase activity of PGAM5.
Insights
Phosphoglycerate mutase 5 (PGAM5) is a mitochondrial phosphatase. A WDXNWD motif in PGAM5 is crucial for its multimeric complex formation and maximal phosphatase activity, suggesting allosteric regulation.
Area of Science:
- Mitochondrial biology
- Enzymology
- Cell death pathways
Background:
- Phosphoglycerate mutase 5 (PGAM5) is an atypical mitochondrial Ser/Thr phosphatase.
- PGAM5 influences mitochondrial dynamics and cell death (apoptosis and necrosis).
- Regulatory mechanisms for PGAM5 phosphatase activity remain largely unknown.
Purpose of the Study:
- To elucidate the regulatory mechanisms governing PGAM5 phosphatase activity.
- To identify key regions or motifs responsible for PGAM5 regulation.
- To investigate the role of PGAM5 multimerization in its catalytic function.
Main Methods:
- Site-directed mutagenesis (alanine substitutions) of the WDXNWD motif in PGAM5.
- Analysis of PGAM5 multimeric complex formation using biochemical assays.
- Assessing phosphatase activity of wild-type, mutant, and peptide-treated PGAM5.
- In trans complementation assays with mutant PGAM5 and WDXNWD peptide.
Main Results:
- A conserved WDXNWD motif in the N-terminus of PGAM5 is essential for multimeric complex assembly.
- Mutations in the WDXNWD motif abolish complex formation and significantly reduce phosphatase activity.
- A peptide containing the WDXNWD motif can dissociate PGAM5 complexes and modulate activity.
- In trans addition of the WDXNWD peptide enhances the activity of PGAM5 mutants lacking the motif.
Conclusions:
- PGAM5 activity is regulated by an intermolecular allosteric mechanism.
- Assembly into multimeric complexes, mediated by the WDXNWD motif, is required for maximal PGAM5 activation.
- These findings open avenues for developing small molecule allosteric regulators of PGAM5 phosphatase activity.
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