AI Article Synopsis

  • Type 2 phosphatidic acid phosphatases (PAP2s) can be found as either soluble or integral membrane enzymes, with bacterial integral membrane PAP2s playing key roles in lipid metabolism.
  • Researchers identified the membrane PAP2 from Bacillus subtilis, known as bsPgpB, as the main enzyme responsible for dephosphorylating phosphatidylglycerol phosphate (PGP) and found it has lower activity towards undecaprenyl-phosphate (C-PP).
  • The crystal structure of bsPgpB was solved at a high resolution, revealing two lipid chains near the enzyme's active site; site-directed mutagenesis helped determine crucial residues for substrate specificity, aiding predictions of which

Article Abstract

Type 2 phosphatidic acid phosphatases (PAP2s) can be either soluble or integral membrane enzymes. In bacteria, integral membrane PAP2s play major roles in the metabolisms of glycerophospholipids, undecaprenyl-phosphate (C-P) lipid carrier and lipopolysaccharides. By in vivo functional experiments and biochemical characterization we show that the membrane PAP2 coded by the Bacillus subtilis yodM gene is the principal phosphatidylglycerol phosphate (PGP) phosphatase of B. subtilis. We also confirm that this enzyme, renamed bsPgpB, has a weaker activity on C-PP. Moreover, we solved the crystal structure of bsPgpB at 2.25 Å resolution, with tungstate (a phosphate analog) in the active site. The structure reveals two lipid chains in the active site vicinity, allowing for PGP substrate modeling and molecular dynamic simulation. Site-directed mutagenesis confirmed the residues important for substrate specificity, providing a basis for predicting the lipids preferentially dephosphorylated by membrane PAP2s.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11107685PMC
http://dx.doi.org/10.1007/s00018-017-2464-6DOI Listing

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