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Jagdish, S.

Publications and source records attributed to Jagdish, S..

6 recordsLinked to original sources

Identification of small-molecule adjuvants that enhance the sensitivity of Escherichia coli to nitrofurantoin: Roles of Lon and MarA

The increasing cases of resistance among UTI pathogens pose a significant threat to the continued clinical use of nitrofurantoin. In this study, we explored the molecular mechanisms underlying nitrofurantoin resistance and investigated the potential of synergistic activity of salicylates in enhancing the antibacterial activity of nitrofurantoin. In our initial observation, deletion of lon ({Delta}lon) conferred enhanced susceptibility to nitrofurantoin. We identified the critical role of Lon protease in regulating the sensitivity to nitrofurantoin. Investigation into the mechanisms revealed that the lon deletion strains show a higher level of marA and nfsA, which is likely to facilitate the conversion of nitrofurantoin from its pro form to its active form. The {Delta}lon strains displayed an elevated level of ROS, membrane alteration and filamentation upon treatment with nitrofurantoin. Higher ROS levels and membrane alteration were reversed upon treatment with glutathione, further confirming the role of oxidative stress in mediating the sensitivity to nitrofurantoin. Building on these mechanistic insights, we tested salicylates to synergistically enhance the efficacy of nitrofurantoin by indirectly inducing marA through the repression of the mar operon, thereby enhancing nfsA transcription. Both sodium salicylate and acetyl salicylate enhanced the efficacy of nitrofurantoin and lowered the dose of nitrofurantoin required to inhibit the growth of the WT strain. Importantly, this synergistic effect with acetyl salicylate was also observed in nitrofurantoin-resistant clinical isolates, where the combination reduced the effective nitrofurantoin concentration required for growth inhibition. This work provides novel insights into the roles of transcriptional regulators and proteolysis in antibiotic susceptibility, advancing the notion that antibiotic adjuvants are a reliable means of reviving the efficacy of antibiotics. ImportanceThis study unravels the uncharacterised role of Lon protease in nitrofurantoin susceptibility and illustrates the enhanced efficacy of nitrofurantoin-salicylate combinations as a promising therapeutic strategy to overcome emerging resistance in UTI pathogens. This study highlights the importance of investigating the repurposing of other FDA-approved molecules to combat resistance.

microbiology↗

BMP and NODAL Paracrine Signalling Regulate the Totipotent-like Cell State in Embryonic Stem Cells.

1)Cell-cell communication coordinates signalling between cells to guide context-dependent cell fate decisions such as proliferation, differentiation, and lineage specification. Such communication mechanisms are poorly understood in regulating the stem cell states. In this study, we investigate how cell-cell communication regulates cell fate transitions in heterogeneous embryonic stem cell populations, with a particular focus on totipotent-like cells that resemble the two-cell stage embryo. Using single-cell RNA sequencing in combination with computational frameworks, we map ligand- receptor interactions and model downstream regulatory effects across various stem cell states. We functionally validate the predictions by selectively perturbing signalling pathways under specific culture conditions. Our data reveal the key roles of BMP and NODAL (TGF-{beta}) signalling in mediating intercellular communication to shape stem cell identity and heterogeneity. These findings enhance our understanding of the signalling logic that governs early developmental cell fate decisions, providing new insights into stem cell biology with broad implications for regenerative medicine and developmental modelling.

cell biology↗

Induction of cellular totipotency by NACC1-driven feed-forward regulation.

Mammalian embryo development begins with totipotent cells. Despite its significance, gene regulatory mechanisms controlling the totipotent cell stage are poorly understood. Based on single-cell proteomics and transcriptomics, we identified nucleus accumbens-associated 1 (NACC1) as a critical regulator of totipotent-like cell state in mouse embryonic stem cells. Using a combination of genomics approaches, we found that NACC1 directly binds to gene-regulatory regions and favours chromatin accessibility to induce the expression of totipotency and zygotic genome activation genes, as well as retrotransposons associated with totipotency. In parallel, NACC1-regulated retrotransposons further modulate the expression of proximal totipotency genes, forming a coherent feed-forward mechanism that regulates totipotent-like cells. Furthermore, NACC1 is crucial for the progression of embryogenesis beyond the totipotency stage. Thus, we uncover a genome-level NACC1-driven feed-forward gene regulatory mechanism that governs totipotent-like cells and has a crucial role during embryonic development.

developmental biology↗

Identification of 4-Amino-2-Nitrophenol as a novel inducer of phenotypic antibiotic resistance in Escherichia coli: roles of Lon protease and its substrate MarA

In prokaryotes, the energy-dependent protein degradation is controlled primarily by two ATP-dependent proteases, Lon and Clp. This study investigates the roles of the Lon protease in the metabolism of 2,4-dinitrophenol (2,4-DNP), a toxic industrial compound, in Escherichia coli (E. coli). During the study, an observation was made that the absence of Lon protease resulted in an enhanced conversion of yellow coloured 2,4-DNP to a reddish-brown product. This study aims to characterise the compound observed in the media with wild type (WT) and {Delta}lon strains, understand the mechanisms of 2,4-DNP conversion and decipher the roles of Lon protease in the conversion of 2,4-DNP. UV-visible and LC-MS analyses revealed differences in the conversion products between the WT and {Delta}lon strains. One of the substrates of Lon protease is MarA, a transcription factor. Growth studies with different mutants and trans-complemented strains demonstrated MarA-dependent conversion. The bathochromic shift of spectral peaks suggested a reduction process and possible involvement of nitroreductase enzymes. Indeed, the expression of two nitroreductases, nfsA and nfsB, increased with 2,4-DNP and was dependent on MarA. Importantly, the production of the reddish-brown product was lower in strains lacking nfsA or nfsB. Finally, LC-MS analysis identified one of the conversion products of 2,4-DNP to be 4-Amino-2-nitrophenol (4,2-ANP). Dose studies with purified 4,2-ANP demonstrated that it did not lower the growth of E. coli (unlike 2,4-DNP) but induced phenotypic antibiotic resistance (like 2,4-DNP). This study contributes to our understanding of biological treatment of nitroaromatics and may offer insights into environmental pollution mitigation strategies. ImportanceThis study identifies the roles of Lon protease and its substrate MarA in inducing nitroreductases, NfsA and NfsB, in reducing toxic 2,4-DNP to less toxic 4,2-ANP, a novel inducer of phenotypic antibiotic resistance. This study contributes to understanding the biological treatment of nitroaromatics, offering insights into environmental pollution mitigation strategies and the development of efficient bioremediation techniques.

microbiology↗

Interferon-γ lowers tumour growth by increasing glycolysis and lactate production in a nitric oxide-dependent manner: implications for cancer immunotherapy

Interferon-gamma (IFN-{gamma}), the sole member of the type-II interferon family, is well known to protect the host from infectious diseases as well as mount anti-tumour responses. The amounts of IFN-{gamma} in the tumour microenvironment determine the host responses against tumours; however, several tumours employ evasive strategies by responding to low IFN-{gamma} signalling. In this study, the response of various tumour cell lines to IFN-{gamma} was studied in vitro. IFN-{gamma}-activation increases glycolytic flux and reduces mitochondrial function in a nitric oxide (NO)- and reactive oxygen species (ROS)-dependent manner in the H6 hepatoma tumour cell line. The higher glycolysis further fuelled NO and ROS production, indicating a reciprocal regulation. These processes are accompanied by Hypoxia inducing factor (HIF)-1 stabilization and HIF-1-dependent augmentation of the glycolytic flux. The IFN-{gamma} enhancement of lactate production also occurred in other NO-producing cell lines: RAW 264.7 monocyte/macrophage and Renca renal adenocarcinoma. However, two other tumour cell lines, CT26 colon carcinoma and B16F10 melanoma, did not produce NO and lactate upon IFN-{gamma}-activation. HIF-1 stabilization upon IFN-{gamma}-activation led to lower cell growth of B16F10 but not CT26 cells. Importantly, the IFN-{gamma}-activation of both CT26 and B16F10 cells demonstrated significant cellular growth reduction upon metabolic rewiring by exogenous administration of potassium lactate. Clinical studies have shown the crucial roles of IFN-{gamma} for successful cancer immunotherapies involving checkpoint inhibitors and chimeric antigen receptor T cells. The positive implications of this study on the metabolic modulation of IFN-{gamma} activation on heterogeneous tumour cells are discussed.

immunology↗

Global transcriptome analysis reveals Salmonella Typhimurium employs the nitrate-dependent anaerobic pathway to combat bile stress

Salmonella Typhimurium is an enteric pathogen that is highly tolerant to bile. Next-generation mRNA sequencing was performed to analyse the stress and adaptive responses of S. Typhimurium to bile. We identified the cellular pathways affected during bile stress in wild type (WT) and a mutant lacking cspE ({Delta}cspE), which plays an essential role in protection from bile stress. We observed transcriptional upregulation of several genes involved in nitrate metabolism, in response to bile stress. These genes were also differentially expressed between the bile-resilient WT and the bile-sensitive {Delta}cspE strain. To understand the role of nitrate metabolism in bile stress response, we generated a strain lacking fnr ({Delta}fnr), which is the global regulator of nitrate metabolism in S. Typhimurium. fnr was highly induced in the bile treated WT strain but not in the {Delta}cspE strain. Notably, the {Delta}fnr strain was susceptible to bile-mediated killing. Our studies revealed a new role for fnr in mediating the bile stress response. In addition, a strain lacking arcA ({Delta}arcA), a two-component system response regulator involved in anaerobic metabolism, also showed a marked reduction in growth in presence of bile. This corroborated the significance of anaerobic metabolism in S. Typhimurium bile tolerance. Importantly, overexpression of fnr and arcA lowered reactive oxygen species and significantly enhanced the survival of the bile-sensitive {Delta}cspE strain. We also observed that S. Typhimurium pre-treated with nitrate displayed better growth in the presence of bile. Together, these results demonstrate that nitrate-dependent anaerobic metabolism promotes adaptation of S. Typhimurium to bile. ImportanceSalmonella Typhimurium, as an enteric pathogen, manifests an extreme example of bile tolerance. This study describes the diverse metabolic changes at the level of transcriptome in S. Typhimurium exposed to bile. We identified the differential expression of several genes involved in anaerobic metabolism between bile-tolerant WT and bile-sensitive {Delta}cspE strains. Two major regulators of anaerobic metabolism, fnr and arcA, support the growth of S. Typhimurium in bile. Our results highlight that, in presence of bile, S. Typhimurium activates genes involved in anaerobic metabolism, specifically nitrate metabolism, that improves survival of bacteria during bile stress.

microbiology↗