Related Experiment Video
Updated: Feb 21, 2026

Expression, Purification, Crystallization, and Enzyme Assays of Fumarylacetoacetate Hydrolase Domain-Containing Proteins
Published on: June 20, 2019
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.
Abstract:
The mevalonate pathway produces isopentenyl diphosphate (IPP), a building block for polyisoprenoid synthesis, and is a crucial pathway for growth of the human bacterial pathogen Enterococcus faecalis The final enzyme in this pathway, mevalonate diphosphate decarboxylase (MDD), acts on mevalonate diphosphate (MVAPP) to produce IPP while consuming ATP. This essential enzyme has been suggested as a therapeutic target for the treatment of drug-resistant bacterial infections. Here, we report functional and structural studies on the mevalonate diphosphate decarboxylase from E. faecalis (MDDEF). The MDDEF crystal structure in complex with ATP (MDDEF-ATP) revealed that the phosphate-binding loop (amino acids 97-105) is not involved in ATP binding and that the phosphate tail of ATP in this structure is in an outward-facing position pointing away from the active site. This suggested that binding of MDDEF to MVAPP is necessary to guide ATP into a catalytically favorable position. Enzymology experiments show that the MDDEF performs a sequential ordered bi-substrate reaction with MVAPP as the first substrate, consistent with the isothermal titration calorimetry (ITC) experiments. On the basis of ITC results, we propose that this initial prerequisite binding of MVAPP enhances ATP binding. In summary, our findings reveal a substrate-induced substrate-binding event that occurs during the MDDEF-catalyzed reaction. The disengagement of the phosphate-binding loop concomitant with the alternative ATP-binding configuration may provide the structural basis for antimicrobial design against these pathogenic enterococci.
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.
Related Concept Videos
The ADP/ATP Carrier Protein
ATP Synthase: Mechanism
Pyruvate Oxidation
First, the enzyme pyruvate dehydrogenase removes the carboxyl group from pyruvate and releases it as carbon dioxide. The stripped molecule is then oxidized and releases electrons, which are then picked up by NAD+...
ATP Synthase: Structure
Energy to Drive Translocation
Generally, polypeptides are unfolded by two distinct...
The Electron Transport Chain
Inhibitors of the electron transport chain
Rotenone, a widely used pesticide, prevents electron transfer from Fe-S cluster to ubiquinone or Q...

