Structural basis of catalysis by monometalated methionine aminopeptidase

Qi-Zhuang Ye1, Sheng-Xue Xie, Ze-Qiang Ma

  • 1High Throughput Screening Laboratory and Department of Medicinal Chemistry, University of Kansas, 1501 Wakarusa Drive, Lawrence, KS 66045, USA. qye@ku.edu

Insights

Methionine aminopeptidase (MetAP) uses a single metal ion for full activity, challenging previous models. This finding suggests dimetalated structures may be artifacts, impacting drug design for antibacterial and anticancer agents.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Enzymology

Background:

  • Methionine aminopeptidase (MetAP) is crucial for protein maturation and a target for drug development.
  • Existing MetAP structures show two metal ions, suggesting a dual-metal catalytic mechanism.

Purpose of the Study:

  • To investigate the role of metal ions in E. coli MetAP catalysis.
  • To resolve discrepancies between kinetic data and structural models of MetAP.

Main Methods:

  • X-ray crystallography was used to determine structures of E. coli MetAP with a transition-state analog.
  • Crystallization was performed under conditions limiting metal ion availability.
  • Structures of mono- and di-metalated forms, as well as an unliganded form, were solved.

Main Results:

  • A crystal structure of E. coli MetAP with a single Mn(II) ion at the M1 site was obtained.
  • Structures revealed the transition from mono- to di-metalated states.
  • Kinetic data confirmed full activity with a single metal ion.

Conclusions:

  • A revised mechanism for peptide bond hydrolysis by E. coli MetAP, emphasizing the role of a single metal ion, is proposed.
  • The crystallization of dimetalated metallohydrolases might be an artifact, requiring caution in structure-based drug design.

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