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Barik, V.

Publications and source records attributed to Barik, V..

4 recordsLinked to original sources

pH dependent direct sulfhydrylation pathway is required for pathogenesis of Mycobacterium tuberculosis

Methionine is essential for the survival of Mycobacterium tuberculosis (M. tuberculosis) inside the host. However, the transsulfuration pathway, a major contributor of methionine, is dispensable for the growth of M. tuberculosis suggesting redundancy in the methionine biosynthesis pathway. Orthologues of MetZTB in other bacterial species are known to operate a redundant single-step methionine biosynthesis pathway called direct sulfhydrylation. In this study, we demonstrate that genetic disruption of the metZ-mediated direct sulfhydrylation pathway in M. tuberculosis hinders growth at low pH, an effect mitigated by methionine supplementation. Computational analyses, including in-silico molecular docking and molecular dynamics (MD) simulations, reveal enhanced binding of the MetZ substrate, O-succinyl homoserine (OSH), to the active site of MetZ at acidic pH. Intriguingly, despite increased intracellular ATP levels, a relative decrease in the frequency of Bedaquiline (BDQ)-induced persisters is observed in metZ-deficient strain, suggesting a role of direct sulfhydrylation pathway in modulating BDQ sensitivity. Finally, we demonstrated that the absence of metZ impedes the ability of M. tuberculosis to grow inside the host.

microbiology↗

Phosphoglucomutase A mediated regulation of carbon flux is essential for antibiotic and disease persistence in Mycobacterium tuberculosis

The long-term survival of Mtb mandates judicious utilization of the available resources inside the host. Uninterrupted access to host-derived nutrients holds the key to the success of Mtb. Phosphoglucomutase enzyme besides synthesizing glycogen, which serves as a nutrient reservoir, also helps modulate the carbon flux in different pathogens. Studies on the role of glycogen metabolism in disease progression, reactivation, and drug susceptibility in tuberculosis are severely lacking. To investigate this, we generated an Mtb strain ({Delta}pgmA) devoid of the gene that encodes for the enzyme phosphoglucomutase A (pgmA). The absence of pgmA impedes the ability of the pathogen to survive under nutrient-limiting and reactivation conditions. In the current study, we demonstrate that the absence of cell membrane-associated glycolipids in {Delta}pgmA compromised the cell wall integrity and increased the susceptibility of {Delta}pgmA to various stresses. Interestingly, in comparison to the wild type, low cAMP levels in {Delta}pgmA imparted an enhanced growth phenotype on cholesterol. Differential gene expression and carbon flux analysis suggest that stored carbon in the form of glycogen is essential for the survival of Mtb under nutrient-limiting conditions. Finally, we demonstrate that the pgmA gene of Mtb is essential for the growth of Mtb inside the host. Overall, this study unveils the significance of pgmA-mediated regulation of membrane glycolipids and its implication on antibiotic and disease persistence in tuberculosis. Additionally, information derived from this study will help design anti-TB strategies that are novel, short, and more efficient.

microbiology↗

Hypothetical gene Rv0495c regulates redox homeostasis in Mycobacterium tuberculosis

Mycobacterium tuberculosis (Mtb) has evolved sophisticated surveillance mechanisms to regulate and neutralize redox imbalances and associated lethal consequences. Failing this, the accumulated ROS induces toxicity by oxidizing a variety of biological molecules including proteins, nucleic acids and lipids. In the present study we identified Mtbs Rv0495c gene as an important regulator of oxidized cytosolic environment. Compared to wild type Mtb strain lacking the Rv0495c gene, {Delta}Rv0495c, had increased ROS and NAD+/NADH ratio creating a highly oxidized intracellular environment. {Delta}Rv0495c strain demonstrated slow growth phenotype under in vitro and ex-vivo growth conditions and demonstrated enhanced susceptibility to drugs, oxidative, nitrosative and hypoxic growth conditions. In addition, the increase in the superoxide radicals triggered a Fenton-like reaction rendering the {Delta}Rv0495c susceptible to free iron. The increase in the intracellular ROS levels of the {Delta}Rv0495c was further corroborated by an increase in the expression of proteins involved in antioxidant defense and enhanced ROS-mediated oxidation and degradation of mycobacterial lipids. This superoxide-induced lipid degradation resulted in altered colony morphology and loss of membrane integrity in the {Delta}Rv0495c. Surprisingly, despite showing a growth defect phenotype in an ex-vivo macrophage infection model, the absence of the Rv0495c gene in Mtb enhanced the pathogenicity and augmented the ability of the Mtb to grow inside the host. Gene expression analysis revealed a Rv0495c mediated immunomodulation of the host controls inflammation and helps creates a favorable niche for long-term survival of Mtb inside the host. In summary, the current study underscores the fact that the truce in the war between the host and the pathogen favors long-term disease persistence in tuberculosis. We believe targeting Rv0495c could potentially be explored as a strategy to potentiate the current anti-TB regimen.

microbiology↗

Chemical inhibition of histidine biosynthesis curtails M. tuberculosis infection

To overcome the drug resistance crisis and shorten the current duration of human tuberculosis (TB) therapy, new anti-TB molecules is required. In an earlier study, we have shown that Mycobacterium tuberculosis (Mtb), the causative agent of TB, with a fractured de novo histidine biosynthesis fails to mount TB infection in mouse model, emboldening that disrupting the function of this pathway may constitute a novel strategy to curtailing TB infection. In this study, through a target based approach we have designed a number of triazole scaffold molecules specific to imidazole glycerol phosphate dehydratase (IGPD; HisB) of this pathway and have delineated atomic level interactions between the enzyme and inhibitors which pinpointed the specificity and the inhibitory mechanism. Importantly, these molecules exhibited significant potency against free as well as macrophage-internalized wild-type and drug-resistant clinical isolates in culture medium. Notably, a couple of these compounds showed efficacy in reducing the bacterial burden in Mtb-infected mouse model. The chemical inhibition of IGPD induces histidine auxotrophy in Mtb and brings in new prospects to the area of anti-TB drug discovery.

biochemistry↗