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A metal ion–dependent conformational switch modulates activity of the Plasmodium M17 aminopeptidase

  • Chaille T. Webb
  • , Wei Yang
  • , Blake T. Riley
  • , Brooke K. Hayes
  • , Komagal Kannan Sivaraman
  • , Tess R. Malcolm
  • , Stephen Harrop
  • , Sarah C. Atkinson
  • , Itamar Kass
  • , Ashley M. Buckle
  • , Nyssa Drinkwater
  • , Sheena McGowan

Research output: Contribution to journalArticlepeer-review

8 Scopus citations

Abstract

The metal-dependent M17 aminopeptidases are conserved throughout all kingdoms of life. This large enzyme family is characterized by a conserved binuclear metal center and a distinctive homohexameric arrangement. Recently, we showed that hexamer formation in Plasmodium M17 aminopeptidases was controlled by the metal ion environment, although the functional necessity for hexamer formation is still unclear. To further understand the mechanistic role of the hexameric assembly, here we undertook an investigation of the structure and dynamics of the M17 aminopeptidase from Plasmodium falciparum, PfA-M17. We describe a novel structure of PfA-M17, which shows that the active sites of each trimer are linked by a dynamic loop, and loop movement is coupled with a drastic rearrangement of the binuclear metal center and substrate-binding pocket, rendering the protein inactive. Molecular dynamics simulations and biochemical analyses of PfA-M17 variants demonstrated that this rearrangement is inherent to PfA-M17, and that the transition between the active and inactive states is metal dependent and part of a dynamic regulatory mechanism. Key to the mechanism is a remodeling of the binuclear metal center, which occurs in response to a signal from the neighboring active site and serves to moderate the rate of proteolysis under different environmental conditions. In conclusion, this work identifies a precise mechanism by which oligomerization contributes to PfA-M17 function. Furthermore, it describes a novel role for metal cofactors in the regulation of enzymes, with implications for the wide range of metalloenzymes that operate via a two-metal ion catalytic center, including DNA processing enzymes and metalloproteases.

Original languageEnglish
Article number102119
JournalJournal of Biological Chemistry
Volume298
Issue number7
DOIs
StatePublished - 1 Jul 2022
Externally publishedYes

Keywords

  • X-ray crystal structure
  • biochemistry
  • cooperative
  • enzyme
  • metalloenzyme
  • metalloprotease
  • molecular dynamics
  • oligomer
  • protein dynamics

ASJC Scopus subject areas

  • Biochemistry
  • Molecular Biology
  • Cell Biology

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