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Biology subjects

Katakia, Y. T.

Publications and source records attributed to Katakia, Y. T..

3 recordsLinked to original sources

Chloroquine attenuates hypoxia-mediated autophagy to curb thrombosis- an ex vivo and in vivo study

BackgroundHypoxia can trigger the activation of blood platelets, leading to thrombosis. If not addressed clinically, it can cause severe complications and fatal consequences as well. The current treatment regime for thrombosis is often palliative and includes long-term administration of anticoagulants, which has the risk of over-bleeding in injury and other secondary effects as well. This demands a deeper understanding of the process and exploration of an alternative therapeutic avenue. Interestingly, recent studies demonstrate that platelets though atypical and enucleated, possess components of autophagy machinery. This cellular homeostatic process though well-studied in non-platelet cells, is under-explored in platelets. MethodsIn this study, we report an activation of autophagy in rat-derived platelets cultured under physiologically relevant hypoxic condition (10% O2) ex vivo. Furthermore, autophagy was triggered in vivo when rats were exposed to hypobaric hypoxic conditions. Subsequently, restriction or surgical ligation of the inferior vena cava (IVC) was performed to induce thrombus formation. Post confirming the impact of autophagy induction on platelet functioning, it was inhibited, and then platelet activation and aggregation status were evaluated using light transmission aggregometry, flow cytometry, immunofluorescence and immunoblotting. ResultsHerein, we show that autophagy inhibition with the potent autophagy inhibitor-CQ, a repurposed FDA-approved drug, can significantly reduce platelet activation, both in ex vivo and in vivo settings. CQ withdrawal reversed the phenomenon indicating a dynamic effect. Thereafter, in flow restriction or surgical ligation model, interestingly, CQ-pre-treated rats showed reduced clotting ability. Importantly, CQ at the stipulated dose was found to be non-toxic to the tissues, as analyzed through histological staining. ConclusionThus, we propose that the repurpose of the FDA approved drug CQ can attenuate hypoxia-induced thrombosis through inhibition of autophagy and can be explored as an effective therapeutic alternative. HighlightsO_LIExposure of ex-vivo cultured platelets to physiologically relevant hypoxic condition (O2 concentration) can induce autophagy causing them to get activated and eventually aggregate. C_LIO_LIFDA approved drug chloroquine (CQ) is able to inhibit autophagy in anucleate cellular fragments, platelets, similar to nucleated cells and curb platelet functioning under hypoxic condition in both ex-vivo and in-vivo model. C_LIO_LIFlow restriction model mimicking deep vein thrombosis, emphasizes on the effect of CQ on impeding thrombus formation when used at a non-toxic dosage. C_LI

physiology↗

S-nitrosylation of EZH2 at C329 and C700 interplay with PRC2 complex assembly, methyltransferase activity, and EZH2 stability to regulate endothelial functions

Nitric oxide (NO), a versatile bio-active molecule modulates cellular function through diverse mechanisms including S-nitrosylation of proteins. However, the role of this post-translational modification in regulating epigenetic pathways was very limitedly explored. Herein, we report that NO causes S-nitrosylation of selected cysteine residues of EZH2 in endothelial cells (EC) resulting in SUZ12 dissociation from EZH2 bound PRC2 complex, reduced methyltransferase activity, and diminished nuclear localization eventually hampering its stability. We detected a significant reduction in H3K27me3 upon exposure to NO as contributed by the early dissociation of SUZ12 from the PRC2 complex. Longer exposure to NO donors caused EZH2 cytosolic translocation, its ubiquitination, and further degradation primarily through the autophagosome-lysosome pathway. Through in silico S-nitrosylation prediction analysis and site-directed mutagenesis assay, we identified three cysteine residues namely at locations 260, 329, and 700 in EZH2 and further determined that S-nitrosylation of cysteine 329 induced EZH2 instability while S-nitrosylation of cysteine 700 abrogated EZH2s catalytic activity. A double mutant of EZH2 containing mutations at Cysteine 329 and 700 remained undeterred to NO exposure. Furthermore, reinforcing H3K27me3 in NO exposed EC through the use of an inhibitor of H3K27me3 demethylase, we confirmed a significant contribution of the EZH2-H3K27me3 axis in defining NO-mediated regulation of endothelial gene expression and migration. Molecular dynamics simulation study revealed SUZ12s inability in efficiently binding to the SAL domain of EZH2 upon S-nitrosylation of C329 and C700. Taken together, our study for the first-time reports that S-nitrosylation dependent regulation of EZH2 and its associated PRC2 complex influences endothelial homeostasis.

cell biology↗

Regulation of shelterin proteins TERF2IP and TRF2 by H3K4me3-p65 axis drives hyperglycemia dependent endothelial senescence

BackgroundEndothelial senescence has been linked to several cardiovascular diseases. Dysregulation of proteins of the shelterin complex including TRF2 and TERF2IP causes senescence as it hampers DNA repair and cell proliferation. However, whether exposure to hyperglycemia interplays with proteins of the shelterin complex thus further dictates the senescent phenotype of endothelial cells (EC) remain to be explored. Approach and ResultsIn this study, we observed elevated levels of p21 and p53 in endothelial cells upon exposure to intermittent hyperglycemia. We also noted hyperglycemia exposure increased the levels of TERF2IP and TRF2, part of the shelterin complex. No change in the level of TRF1 and TPP1 were detected. Furthermore, a robust induction was detected in p65 level upon intermittent hyperglycemia challenge. ChIP-qPCR analysis revealed enhanced H3K4me3 enrichment in the promoter regions of p65, TERF2IP and TRF2. Inhibition of catalysis of H3K4me3 either by pharmacological inhibitor or siRNA-mediated knockdown of MLL2 attenuated increase in p65, TERF2IP and TRF2 levels including reversal of senescence markers p53 and p21. Interestingly, pharmacological inhibition of NF-{kappa}B signaling also diminished abrupt increase in TERF2IP and TRF2 levels thus further reversed intermittent hyperglycemia-induced p53 and p21 levels. More importantly, co-immunoprecipitation and co-localization analysis revealed an interaction between nuclear p65 and MLL2 in EC stimulated with hyperglycemia. Further knockdown of either TERF2IP or TRF2 impaired intermittent hyperglycemia-induced p53 and p21 expression and associated endothelial senescence. ConclusionOverall, the present study describes an interplay of epigenetics in defining NF-{kappa}B signaling and shelterin proteins expression which further govern the biochemical and functional state of endothelial senescence in hyperglycemic milieu.

biochemistry↗