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Expression, Purification, Crystallization, and Enzyme Assays of Fumarylacetoacetate Hydrolase Domain-Containing Proteins
Published on: June 20, 2019
Kinetic mechanism of L-α-glycerophosphate oxidase from Mycoplasma pneumoniae
Somchart Maenpuen1, Pratchaya Watthaisong1, Pacharee Supon1
1Department of Biochemistry, Faculty of Science, Burapha University, Chonburi, Thailand.
Abstract:
L-α-glycerophosphate oxidase is an FAD-dependent enzyme that catalyzes the oxidation of L-α-glycerophosphate (Glp) by molecular oxygen to generate dihydroxyacetone phosphate (DHAP) and hydrogen peroxide (H2O2). The catalytic properties of recombinant His6-GlpO from Mycoplasma pneumoniae (His6-MpGlpO) were investigated through transient and steady-state kinetics and ligand binding studies. The results indicate that the reaction mechanism of His6-MpGlpO follows a ping-pong model. Double-mixing mode stopped-flow experiments show that, after flavin-mediated substrate oxidation, DHAP leaves rapidly prior to the oxygen reaction. The values determined for the individual rate constants and kcat (4.2 s(-1) at 4 °C), in addition to the finding that H2 O2 binds to the oxidized enzyme, suggest that H2O2 release is the rate-limiting step for the overall reaction. The results indicate that His6 -MpGlpO contains mixed populations of fast- and slow-reacting species. It is predominantly the fast-reacting species that participates in turnover. In contrast to other GlpO enzymes previously described, His6-MpGlpO is able to catalyze the reverse reaction of reduced enzyme and DHAP. This result may be explained by the standard reduction potential value of His6-MpGlpO (-167 ± 1 mV), which is lower than those of GlpO from other species. We found that D,L-glyceraldehyde 3-phosphate (GAP) may be used as a substrate in the His6-MpGlpO reaction, although it exhibited an approximately 100-fold lower kcat value in comparison with the reaction of Glp. These results also imply involvement of GlpO in glycolysis, as well as in lipid and glycerol metabolism. The kinetic models and distinctive properties of His6-MpGlpO reported here should be useful for future drug development against Mycoplasma pneumoniae infection.
Insights
L-α-glycerophosphate oxidase (GlpO) from Mycoplasma pneumoniae exhibits a ping-pong reaction mechanism where hydrogen peroxide release is rate-limiting. This enzyme
Area of Science:
- Biochemistry
- Enzymology
- Molecular Biology
Background:
- L-α-glycerophosphate oxidase (GlpO) is an FAD-dependent enzyme crucial for glycerol metabolism.
- Understanding the kinetic properties of GlpO from Mycoplasma pneumoniae is vital for potential therapeutic strategies.
Purpose of the Study:
- To investigate the catalytic properties and reaction mechanism of recombinant His6-GlpO from Mycoplasma pneumoniae (His6-MpGlpO).
- To elucidate the rate-limiting step and explore potential substrate specificities and reverse reaction capabilities.
Main Methods:
- Transient and steady-state kinetics.
- Ligand binding studies.
- Double-mixing mode stopped-flow experiments.
Main Results:
- His6-MpGlpO follows a ping-pong mechanism with rapid dihydroxyacetone phosphate (DHAP) release post-oxidation.
- Hydrogen peroxide release identified as the rate-limiting step, with a kcat of 4.2 s⁻¹ at 4°C.
- His6-MpGlpO exhibits a lower standard reduction potential, enabling reverse reaction catalysis with DHAP and substrate activity with D,L-glyceraldehyde 3-phosphate (GAP).
Conclusions:
- The kinetic model and unique properties of His6-MpGlpO provide insights into its role in glycolysis, lipid, and glycerol metabolism.
- Findings support the potential development of His6-MpGlpO as a drug target for Mycoplasma pneumoniae infections.
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