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X-Ray Crystallography to Study the Oligomeric State Transition of the Thermotoga maritima M42 Aminopeptidase TmPep1050
Published on: May 13, 2020
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
Abstract:
Methionine aminopeptidase (MetAP) removes the amino-terminal methionine residue from newly synthesized proteins, and it is a target for the development of antibacterial and anticancer agents. Available x-ray structures of MetAP, as well as other metalloaminopeptidases, show an active site containing two adjacent divalent metal ions bridged by a water molecule or hydroxide ion. The predominance of dimetalated structures leads naturally to proposed mechanisms of catalysis involving both metal ions. However, kinetic studies indicate that in many cases, only a single metal ion is required for full activity. By limiting the amount of metal ion present during crystal growth, we have now obtained a crystal structure for a complex of Escherichia coli MetAP with norleucine phosphonate, a transition-state analog, and only a single Mn(II) ion bound at the active site in the position designated M1, and three related structures of the same complex that show the transition from the mono-Mn(II) form to the di-Mn(II) form. An unliganded structure was also solved. In view of the full kinetic competence of the monometalated MetAP, the much weaker binding constant for occupancy of the M2 site compared with the M1 site, and the newly determined structures, we propose a revised mechanism of peptide bond hydrolysis by E. coli MetAP. We also suggest that the crystallization of dimetalated forms of metallohydrolases may, in some cases, be a misleading experimental artifact, and caution must be taken when structures are generated to aid in elucidation of reaction mechanisms or to support structure-aided drug design efforts.
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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