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Biology subjects

Katiyar, A.

Publications and source records attributed to Katiyar, A..

3 recordsLinked to original sources

Dynamic Adaptation in Extant Porins Facilitates Antibiotic Tolerance in Energetic Escherichia coli

Bacteria can tolerate antibiotics despite lacking the genetic components for resistance. The prevailing notion is that tolerance results from depleted cellular energy or cell dormancy. In contrast to this view, many cells in the tolerant population of Escherichia coli can exhibit motility - a phenomenon that requires cellular energy, specifically, the proton-motive force (PMF). As these motile-tolerant cells are challenging to isolate from the heterogeneous tolerant population, their survival mechanism is unknown. Here, we discovered that motile bacteria segregate themselves from the tolerant population under micro-confinement, owing to their unique ability to penetrate micron-sized channels. Single-cell measurements on the motile-tolerant population showed that the cells retained a high PMF, but they did not survive through active efflux alone. By utilizing growth assays, single-cell fluorescence studies, and chemotaxis assays, we showed that the cells survived by dynamically inhibiting the function of existing porins in the outer membrane. A drug transport model for porin-mediated intake and efflux pump-mediated expulsion suggested that energetic tolerant cells withstand antibiotics by constricting their porins. The novel porin adaptation we have uncovered is independent of gene expression changes and may involve electrostatic modifications within individual porins to prevent extracellular ligand entry.

microbiology↗

Understanding the mechanism of Trikatu in type 2 diabetes mellitus and lipid-related metabolic disorders: A network pharmacology approach

ObjectiveTrikatu is an Indian polyherbal formulation comprising three herbs, i.e., Zingiber officinale, Piper longum, and Piper nigrum. It is traditionally used to treat metabolic disorders such as type 2 diabetes mellitus (T2DM), dyslipidemia, and obesity. However, its mechanism of action remains unknown. This study aims to explore the underlying therapeutic mechanism of Trikatu in T2DM and lipid metabolic disorders using network pharmacology (NP). MethodsTrikatu phytochemicals were retrieved from various databases and screened on the basis of druglikeness and oral bioavailability (>30%) score. Putative targets of the bioactive phytochemicals were identified using TargetNet, Similarity Ensemble Approach, and Swiss Target Prediction databases. Protein-protein interaction (PPI) network of overlapping targets of phytochemicals and metabolic disorders was constructed using NetworkAnalyst 3.0. The Bioactive Phytochemical-Target-Pathway (BP-T-P) network was constructed using cytoscape v3.8.2, and the key targets of Trikatu were analyzed by Gene Ontology (GO), and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment. ResultsTwenty bioactive phytochemicals and 102 targets of Trikatu were identified. PPI network and enrichment analysis showed that 51 targets of Trikatu phytochemicals such as RXRA, STAT3 and ESR1, GSK3B, TNF, NOS2/3 regulate pathways like insulin resistance, steroid hormone biosynthesis, regulation of lipolysis in adipocytes, adipocytokine & cGMP-PKG signalling pathways, arachidonic acid metabolism and bile secretion. The results were validated by molecular docking which showed that RXRA, STAT3 and ESR1 strongly interact with their ligands alpha gurjunene, beta-sitosterol, piperlongumine, genistein and E-beta carotene, respectively. ConclusionHence, the multiple target and multiple pathway approach of Trikatu can be further explored in pharmacokinetics / Pharmacodynamics studies.

bioinformatics↗

Lamin A/C mediated invaginations in the nuclear surface allow the nucleus to pass unimpeded through a dense array of fiber-like obstacles

Migrating cells must deform their stiff cell nucleus to move through pores and fibers in tissue. Lamin A/C is known to hinder cell migration by limiting nuclear deformation and passage through confining channels, but its role in nuclear deformation and passage through fibrous environments is less clear. We studied cell and nuclear migration through discrete, closely spaced, slender obstacles which mimic the mechanical properties of collagen fibers. Nuclei bypassed slender obstacles while preserving their overall morphology by deforming around them with deep local invaginations of little resisting force. The obstacles did not impede the nuclear trajectory or cause a rupture of the nuclear envelope. Nuclei likewise deformed around single collagen fibers in cells migrating in 3D collagen gels. In contrast to its limiting role in nuclear passage through confining channels, lamin A/C facilitated nuclear deformation and passage through fibrous environments; nuclei in lamin-null (Lmna-/-) cells lost their overall morphology and became entangled on the obstacles. Analogous to surface tension-mediated deformation of a liquid drop, lamin A/C imparts a surface tension on the nucleus that allows nuclear invaginations with little mechanical resistance, preventing nuclear entanglement and allowing nuclear passage through fibrous environments.

cell biology↗