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Updated: Feb 4, 2026

Measurement of Specific Mycobacterial Mistranslation Rates with Gain-of-function Reporter Systems
Published on: April 26, 2019
Structural insights into the specificity and catalytic mechanism of mycobacterial nucleotide pool sanitizing enzyme
Amandeep Singh1, Sheikh Mohammad Arif1, Pau Biak Sang2
1Molecular Biophysics Unit, Indian Institute of Science, Bangalore 560012, India.
Abstract:
Mis-incorporation of modified nucleotides, such as 5-methyl-dCTP or 8-oxo-dGTP, in DNA can be detrimental to genomic integrity. MutT proteins are sanitization enzymes which function by hydrolyzing such nucleotides and regulating the pool of free nucleotides in the cytoplasm. Mycobacterial genomes have a set of four MutT homologs, namely, MutT1, MutT2, MutT3 and MutT4. Mycobacterial MutT2 hydrolyzes 5 m-dCTP and 8-oxo-dGTP to their respective monophosphate products. Additionally, it can hydrolyze canonical nucleotides dCTP and CTP, with a suggested role in sustaining their optimal levels in the nucleotide pool. The structures of M. smegmatis MutT2 and its complexes with cytosine derivatives have been determined at resolutions ranging from 1.10 Å to 1.73 Å. The apo enzyme and its complexes with products (dCMP, CMP and 5 m-dCMP) crystallize in space group P21212, while those involving substrates (dCTP, CTP and 5 m-dCTP) crystallize in space group P21. The molecule takes an α/β/α sandwich fold arrangement, as observed in other MutT homologs. The nucleoside moiety of the ligands is similarly located in all the complexes, while the location of the remaining tail exhibits variability. This is the first report of a MutT2-type protein in complex with ligands. A critical interaction involving Asp116 confers the specificity of the enzyme towards cytosine moieties. A conserved set of enzyme-ligand interactions along with concerted movements of important water molecules provide insights into the mechanism of action.
Insights
MutT2 enzymes protect genomic integrity by removing harmful DNA nucleotides. Structural analysis reveals key interactions, providing insights into their sanitization mechanism.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Genomic integrity is threatened by mis-incorporated modified nucleotides like 5-methyl-dCTP and 8-oxo-dGTP.
- MutT proteins are crucial sanitization enzymes that hydrolyze these damaging nucleotides.
- Mycobacteria possess four MutT homologs, with MutT2 playing a role in nucleotide pool regulation.
Purpose of the Study:
- To elucidate the structural basis of Mycobacterial MutT2 enzyme function.
- To understand the mechanism of hydrolysis for modified and canonical nucleotides.
- To characterize the interactions governing MutT2 specificity.
Main Methods:
- X-ray crystallography was employed to determine the structures of M. smegmatis MutT2.
- Structures were solved for the apo enzyme and its complexes with various substrates and products.
- High-resolution structures (1.10–1.73 Å) were obtained for enzyme-ligand complexes.
Main Results:
- The study determined the first structures of a MutT2-type protein complexed with ligands.
- The enzyme exhibits an α/β/α sandwich fold, common to MutT homologs.
- A critical Asp116 interaction dictates specificity towards cytosine moieties, with conserved interactions and water movements revealing the mechanism.
Conclusions:
- Mycobacterial MutT2 hydrolyzes 5-methyl-dCTP, 8-oxo-dGTP, and canonical nucleotides like dCTP and CTP.
- Structural data provides a mechanistic understanding of MutT2's sanitization role.
- The findings offer insights into maintaining nucleotide pool homeostasis and genomic stability.
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