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.

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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