Mevalonate 5-diphosphate mediates ATP binding to the mevalonate diphosphate decarboxylase from the bacterial pathogen

Chun-Liang Chen1, James C Mermoud1, Lake N Paul2

  • 1From the Department of Biological Sciences and.

Insights

Mevalonate diphosphate decarboxylase (MDD) from Enterococcus faecalis is essential for bacterial growth. Its structure reveals a substrate-induced binding mechanism, offering a target for new antimicrobials against drug-resistant infections.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Microbiology

Background:

  • The mevalonate pathway is vital for the growth of Enterococcus faecalis, a human pathogen.
  • Mevalonate diphosphate decarboxylase (MDD) is the final enzyme in this pathway and a potential therapeutic target.
  • Drug-resistant bacterial infections necessitate novel antimicrobial strategies.

Purpose of the Study:

  • To investigate the functional and structural properties of mevalonate diphosphate decarboxylase from Enterococcus faecalis (MDD_EF).
  • To elucidate the mechanism of ATP and mevalonate diphosphate (MVAPP) binding and catalysis.
  • To provide a structural basis for the development of new antimicrobial agents.

Main Methods:

  • X-ray crystallography to determine the structure of MDD_EF in complex with ATP.
  • Enzymology experiments to analyze the reaction mechanism.
  • Isothermal titration calorimetry (ITC) to study substrate binding interactions.

Main Results:

  • The crystal structure of MDD_EF-ATP showed the phosphate-binding loop is not involved in ATP binding, with ATP's phosphate tail in an outward-facing position.
  • Enzymology and ITC experiments demonstrated a sequential ordered bi-substrate reaction mechanism, with MVAPP binding first.
  • Initial MVAPP binding appears to be a prerequisite for optimal ATP binding, inducing a catalytically favorable conformation.

Conclusions:

  • MDD_EF exhibits a substrate-induced, substrate-binding event.
  • The observed ATP-binding configuration and substrate-induced mechanism offer potential for targeted antimicrobial drug design.
  • This study provides structural insights for developing inhibitors against pathogenic enterococci.

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