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Raghavan, S. C.

Publications and source records attributed to Raghavan, S. C..

3 recordsLinked to original sources

Conformational activation of GSK3β by an environmental toxicant suppresses hedgehog signalling

Primary cilium-dependent hedgehog signalling is essential for embryonic development, tissue patterning, and organ homeostasis, and its dysfunction causes ciliopathies, a clinically diverse spectrum of developmental and reproductive disorders. Whether environmental chemicals can phenocopy genetic ciliopathies by directly targeting ciliary kinase machinery has remained unknown. Here we show that endosulfan, a banned organochlorine pesticide linked to congenital and reproductive defects, suppresses hedgehog signalling by driving proteolytic processing of GLI transcription factors into repressor forms. Excluding ciliary receptor trafficking, cAMP signalling, and GLI-DNA binding, we identify PKA and GSK3{beta} as direct endosulfan targets: endosulfan allosterically fine-tunes PKA activity and, to our knowledge, is the first reported small-molecule activator of GSK3{beta}, stabilising its active conformation, a profile distinct from all known inhibitors. We further identify Cetn3 and Cep250 as novel GLI-regulated genes required for centriole cohesion, both of which are repressed upon endosulfan exposure, linking this kinase axis to the reproductive defects reported in exposed human populations and animal models. These findings establish a chemical-biological axis through which an environmental toxicant hijacks core kinase signalling to phenocopy a genetic ciliopathy.

cell biology↗

Endosulfan rewires PKA and GSK3β to disrupt primary cilia-dependent Hedgehog signalling

Primary cilium-dependent Hedgehog signalling is essential for embryonic development, tissue patterning, and organ homeostasis, and its disruption causes a spectrum of developmental disorders collectively termed ciliopathies. Whether environmental toxicants can chemically induce ciliopathy-like states by targeting this pathway, however, remains poorly understood. Here we show that endosulfan, a banned organochlorine pesticide epidemiologically linked to severe congenital and reproductive defects in exposed human populations, disrupts Hedgehog signalling by driving GLI transcription factor processing into repressor forms and suppressing target gene expression at both transcriptional and protein levels. Having excluded direct effects on core ciliary receptors and GLI-DNA binding, we identify the pathway kinases PKA and GSK3{beta} as direct targets of endosulfan: endosulfan increases PKA activity through allosteric fine-tuning, and -- in a pharmacologically rare finding -- acts as the first reported small-molecule activator of GSK3{beta}, shifting the kinase toward a catalytically active conformation. We further identify Cetn3 and Cep250 as novel GLI-regulated genes required for centriole cohesion, both of which are repressed upon endosulfan exposure, providing a mechanistic link to the reproductive defects reported in exposed populations and animal models. These findings identify endosulfan as a candidate chemical inducer of ciliopathy and reveal how an environmental toxicant can hijack core kinase signalling to disrupt Hedgehog-dependent development.

cell biology↗

High Consumption of Coffee Disrupts Nonhomologous End Joining Implications for Genomic Stability

Caffeine, the most widely consumed stimulant worldwide and primarily sourced from coffee, is well known for its central nervous system effects. Emerging evidence indicates that caffeine also modulates key cellular processes, including DNA repair. It inhibits the kinase activity of ATM and ATR-essential DNA damage response proteins, and impairs homologous recombination (HR)-mediated repair through multiple mechanisms. However, its effects on nonhomologous end joining (NHEJ), a major double-strand break (DSB) repair pathway, have been underexplored. In a recent study, we reported that caffeine inhibits NHEJ primarily by interfering with Ligase IV/XRCC4 complex, using in vitro and ex vivo model systems. Given coffees role as a primary dietary caffeine source, this study investigates the impact of Coffea arabica decoction on NHEJ-mediated DSB repair. High-performance liquid chromatography (HPLC) quantified caffeine levels in the decoction, followed by in vitro and ex vivo assays to evaluate NHEJ efficiency. Results demonstrate that coffee decoction inhibits end joining of both compatible and noncompatible DNA ends in cell-free systems derived from normal and cancer cells. Extrachromosomal repair assays confirmed impaired intracellular NHEJ, leading to accumulation of unrepaired DSBs in human cells. Kinetic analysis of {gamma}-H2AX foci formation and resolution revealed persistent DNA breaks and reduced repair kinetics. Reconstitution experiments verified that the decoction specifically targets the Ligase IV/XRCC4 complex. These findings, building on our previous work, establish coffee decoction as a potent NHEJ inhibitor, mirroring purified caffeines effects. This underscores caffeines interference with endogenous DNA repair, with profound implications for cancer therapy by sensitizing tumors to genotoxic treatments.

biochemistry↗