Metal preferences of zinc-binding motif on metalloproteases.

J Amino Acids

Department of Hard Tissue Research, Graduate School of Oral Medicine, Matsumoto Dental University, Shiojiri, Nagano 399-0781, Japan.

Published: August 2012

AI Article Synopsis

  • Most naturally occurring metalloproteases are monozinc enzymes, which can have zinc replaced by other divalent cations like Co(II) or Mn(II) without losing catalytic activity.
  • While most enzymes maintain activity with Co(II) or Mn(II), many Cu(II)-substituted enzymes, such as thermolysin and carboxypeptidase A, lose activity, though some, like astacin, retain partial to full activity.
  • Structural studies suggest that the activity of Cu(II)-substituted enzymes depends on the flexibility of the catalytic domain, even though their metal coordination geometries resemble those of the original zinc enzymes.

Article Abstract

Almost all naturally occurring metalloproteases are monozinc enzymes. The zinc in any number of zinc metalloproteases has been substituted by some other divalent cation. Almost all Co(II)- or Mn(II)-substituted enzymes maintain the catalytic activity of their zinc counterparts. However, in the case of Cu(II) substitution of zinc proteases, a great number of enzymes are not active, for example, thermolysin, carboxypeptidase A, endopeptidase from Lactococcus lactis, or aminopeptidase B, while some do have catalytic activity, for example, astacin (37%) and DPP III (100%). Based on structural studies of various metal-substituted enzymes, for example, thermolysin, astacin, aminopeptidase B, dipeptidyl peptidase (DPP) III, and del-DPP III, the metal coordination geometries of both active and inactive Cu(II)-substituted enzymes are shown to be the same as those of the wild-type Zn(II) enzymes. Therefore, the enzyme activity of a copper-ion-substituted zinc metalloprotease may depend on the flexibility of catalytic domain.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3268031PMC
http://dx.doi.org/10.4061/2011/574816DOI Listing

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