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Biochemical and Structural Characterization of the Carbohydrate Transport Substrate-binding-protein SP0092
Published on: October 2, 2017
Biochemical and structural characterization of meningococcal methylenetetrahydrofolate reductase
Wanita Pantong1, Jordan L Pederick2,3, Somchart Maenpuen4
1Division of Health and Applied Sciences, Faculty of Science, Prince of Songkla University, Songkhla, Thailand.
Abstract:
Methylenetetrahydrofolate reductase (MTHFR) is a key metabolic enzyme in colonization and virulence of Neisseria meningitidis, a causative agent of meningococcal diseases. Here, the biochemical and structural properties of MTHFR from a virulent strain of N. meningitidis serogroup B (NmMTHFR) were characterized. Unlike other orthologs, NmMTHFR functions as a unique homohexamer, composed of three homo-dimerization partners, as shown in our 2.7 Å resolution crystal structure. Six active sites were formed solely within monomers and located away from the oligomerization interfaces. Flavin adenine dinucleotide cofactor formed hydrogen bonds with conserved sidechains, positioning its isoalloxazine ring adjacent to the overlapping binding sites of nicotinamide adenine dinucleotide (NADH) coenzyme and CH2 -H4 folate substrate. NmMTHFR utilized NADH (Km = 44 μM) as an electron donor in the NAD(P)H-CH2 -H4 folate oxidoreductase assay, but not nicotinamide adenine dinucleotide phosphate (NADPH) which is the donor required in human MTHFR. In silico analysis and mutagenesis studies highlighted the significant difference in orientation of helix α7A (Phe215-Thr225) with that in the human enzyme. The extended sidechain of Met221 on helix α7A plays a role in stabilizing the folded structure of NADH in the hydrophobic box. This supports the NADH specificity by restricting the phosphate group of NADPH that causes steric clashes with Glu26. The movement of Met221 sidechain allows the CH2 -H4 folate substrate to bind. The unique topology of its NADH and CH2 -H4 folate binding pockets makes NmMTHFR a promising drug target for the development of new antimicrobial agents that may possess reduced off-target side effects.
Insights
Methylenetetrahydrofolate reductase (MTHFR) from Neisseria meningitidis forms a unique homohexamer, differing from human MTHFR. Its distinct structure and cofactor preference for NADH present a novel drug target for meningococcal diseases.
Area of Science:
- Biochemistry
- Structural Biology
- Microbiology
Background:
- Methylenetetrahydrofolate reductase (MTHFR) is crucial for Neisseria meningitidis colonization and virulence.
- Meningococcal diseases are caused by N. meningitidis, a significant public health concern.
Purpose of the Study:
- To characterize the biochemical and structural properties of MTHFR from a virulent N. meningitidis serogroup B strain (NmMTHFR).
- To investigate the unique structural features and cofactor specificity of NmMTHFR compared to human orthologs.
- To identify NmMTHFR as a potential drug target for novel antimicrobial agents.
Main Methods:
- X-ray crystallography at 2.7 Å resolution to determine the structure of NmMTHFR.
- Biochemical assays, including NAD(P)H-CH2-H4 folate oxidoreductase assays, to determine enzyme kinetics and cofactor preference.
- In silico analysis and site-directed mutagenesis to probe structure-function relationships.
Main Results:
- NmMTHFR functions as a unique homohexamer, distinct from other MTHFR orthologs.
- Six active sites are located within monomers, away from oligomerization interfaces.
- NmMTHFR specifically utilizes NADH as an electron donor, unlike human MTHFR which requires NADPH.
- Structural analysis revealed unique features in the NADH and CH2-H4 folate binding pockets, including the role of Met221 in NADH specificity.
Conclusions:
- The unique homohexameric structure and NADH cofactor preference of NmMTHFR differentiate it from human MTHFR.
- These distinct structural and biochemical properties make NmMTHFR a promising and specific drug target.
- Targeting NmMTHFR could lead to the development of new antimicrobial agents against N. meningitidis with potentially reduced off-target effects.
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