4.6 Article

Methionine Adenosyltransferase Engineering to Enable Bioorthogonal Platforms for AdoMet-Utilizing Enzymes

期刊

ACS CHEMICAL BIOLOGY
卷 15, 期 3, 页码 695-705

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acschembio.9b00943

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资金

  1. NIH [R01 GM115261, GM109456, T32 GM008280]
  2. NIH Protein Structure Initiative [U01 GM098248]
  3. University of Kentucky College of Pharmacy
  4. National Center for Advancing Translational Sciences [UL1TR000117, UL1TR001998]
  5. National Science Foundation BioXFEL STC [1231306]
  6. DOE Office of Science [DE-AC02-06CH11357]
  7. Michigan Economic Development Corporation
  8. Michigan Technology Tri-Corridor [085P1000817]
  9. Federal funds from the National Cancer Institute [ACB-12002]
  10. National Institute of General Medical Sciences [AGM-12006]

向作者/读者索取更多资源

The structural conservation among methyltransferases (MTs) and MT functional redundancy is a major challenge to the cellular study of individual MTs. As a first step toward the development of an alternative biorthogonal platform for MTs and other AdoMet-utilizing enzymes, we describe the evaluation of 38 human methionine adenosyltransferase II-alpha (hMAT2A) mutants in combination with 14 non-native methionine analogues to identify suitable bioorthogonal mutant/analogue pairings. Enabled by the development and implementation of a hMAT2A high-throughput (HT) assay, this study revealed hMAT2A K289L to afford a 160-fold inversion of the hMAT2A selectivity index for a non-native methionine analogue over the native substrate L-Met. Structure elucidation of K289L revealed the mutant to be folded normally with minor observed repacking within the modified substrate pocket. This study highlights the first example of exchanging L-Met terminal carboxylate/amine recognition elements within the hMAT2A active-site to enable non-native bioorthgonal substrate utilization. Additionally, several hMAT2A mutants and L-Met substrate analogues produced AdoMet analogue products with increased stability. As many AdoMet-producing (e.g., hMAT2A) and AdoMet-utlizing (e.g., MTs) enzymes adopt similar active-site strategies for substrate recognition, the proof of concept first generation hMAT2A engineering highlighted herein is expected to translate to a range of AdoMet-utilizing target enzymes.

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