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Multimeric structure of the secreted meprin A metalloproteinase and characterization of the functional protomer

F T Ishmael1, M T Norcum, S J Benkovic

  • 1Department of Biochemistry and Molecular Biology, The Pennsylvania State University College of Medicine, Hershey, Pennsylvania 17033, USA.

Insights

Meprin A, a large secreted protease, forms high molecular weight multimers critical for its function. These multimers, composed of disulfide-linked dimers, are essential for the enzyme

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Protease Research

Background:

  • Meprin A is a secreted metalloprotease produced by kidney and intestinal epithelial cells.
  • It cleaves various substrates, including growth factors and extracellular matrix proteins.
  • The secreted form is a homo-oligomer of alpha subunits.

Purpose of the Study:

  • To investigate the oligomeric structure of secreted meprin A.
  • To understand the assembly and functional significance of meprin A multimers.

Main Methods:

  • Gel filtration, nondenaturing gel electrophoresis, and cross-linking were used to analyze recombinant mouse meprin A.
  • Electron microscopy was employed to visualize the protein structures.
  • Dissecting the roles of disulfide bonds and noncovalent interactions in multimer formation.

Main Results:

  • Secreted meprin A forms high molecular weight multimers, predominantly decamers.
  • Multimers consist of disulfide-linked dimers associated noncovalently via the MAM domain.
  • The active protomer is a noncovalently linked dimer; disulfide bonds stabilize larger oligomers (~900 kDa).

Conclusions:

  • Meprin A is the largest known secreted protease, with a unique oligomeric structure.
  • Covalent disulfide linkages enable noncovalent associations, forming higher-order oligomers essential for substrate hydrolysis.
  • The distinct quaternary structure of meprin A is crucial for its proteolytic activity.

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