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THAKUR, S.

Publications and source records attributed to THAKUR, S..

2 recordsLinked to original sources

Distinct substrate and intermediate recognition via mutation effects on Mycobacterium tuberculosis methionyl-tRNA synthetase

Tuberculosis kills millions worldwide. Drug-resistance demands exploring new targets against this illness. Methionyl-tRNA synthetase (MetRS) is a crucial target in Mycobacterium tuberculosis (Mtb) that participates in initiation and elongation of translation and represents a protein of evolutionary interest. To elucidate the structure-function relationships of MetRS, we performed detailed sequence analyses and molecular dynamics simulations of Mtb MetRS in the substrate- bound (methionine and ATP) and intermediate (methionyl-AMP) states, for both the wild-type and three single-mutant forms (H21A, K54A, and E130A). Eight systems (two wild-type and six mutants) were simulated for 24 microseconds. Differential dynamics and binding effects of the substrate versus intermediate states were identified, along with the molecular reasons for the loss of activity in mutants. The wild-type substrate state was more stable than the intermediate state. In contrast, the mutants were more unstable in the substrate state, but incorporated stability into the intermediate state protein. These findings suggest that methionyl-AMP, being a reaction intermediate, exhibits a short residence time at the proteins active site, while the substrate state shows a longer residence time of methionine and ATP. The increased instability of mutants in the substrate state indicates disruption of the pyrophosphate-ATP exchange by altering substrate- protein interactions. Once the intermediate is formed, the mutations have minimal or no effect. These observations are consistent with experimental data. In brief, our study finds the molecular basis for the distinct substrate and intermediate recognition by Mtb MetRS and establishes a mechanism for loss of activity in the mutants.

biophysics↗

Initiator and Elongator tRNA Recognition Mechanism in Mycobacterium tuberculosis Methionyl-tRNA Synthetase

The protein synthesis is an essential target for anti-tubercular drug design. Methionyl-tRNA synthetase (MetRS) typically plays a role in elongation and the initiation of protein synthesis. Molecular recognition of the CAU anticodon of tRNA by MetRS in the two processes is a crucial step. Until now, no known experimental structures for Mycobacterium tuberculosis (Mtb) show this binding. We therefore modeled the Mtb MetRS complexes with initiator and elongator tRNAs to find their differential binding mechanism during molecular dynamics simulations of 6 {micro}s. We found that the elongator tRNA binding was stable with the protein, while the initiator tRNA binds transiently, with major intra-tRNA interactions maintained in both. This could be due to fast initiator tRNA charging in contrast to the elongator tRNA, which could take more time to charge. tRNA interacts with the MetRS active site and anticodon domain. The electrostatic attractions between tRNA and the proteins catalytic domain possibly caused its charging with methionine. The repulsive and attractive forces between tRNA and the proteins connective peptide domain and KMSKS loop triggered the opening of the binding pocket, causing the reaction and the product release. At the same time, tRNAs strong binding to the proteins anticodon domain facilitated this reaction. These events show the possible pathway of tRNA charging. tRNA formed salt-bridges with the positively charged Arg and Lys, whereas the negatively charged Asp and Glu caused repulsive binding. In brief, this study provided a plausible mechanism for initiator versus elongator tRNA recognition by Mtb MetRS.

biophysics↗