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Rawat, R. S.

Publications and source records attributed to Rawat, R. S..

2 recordsLinked to original sources

A VPS15-like kinase regulates apicoplast biogenesis and autophagy by promoting PI3P generation in Toxoplasma gondii

Phosphoinositides are important second messengers that regulate key cellular processes in eukaryotes. While it is know that a single phosphoinositol-3 kinase (PI3K) catalyses the formation of 3-phosphorylated phosphoinositides (PIPs) in apicomplexan parasites Plasmodium and Toxoplasma, how its activity and PI3P formation is regulated has remained unknown. Present studies involving a unique Vps15 like protein (TgVPS15) in Toxoplasma gondii provide insights into the regulation of phosphatidyl-3-phosphate (PI3P) generation and unravel a novel pathway that regulates parasite development. Detailed investigations suggested that TgVPS15 regulates PI3P formation in Toxoplasma gondii, which is important for the inheritance of the apicoplast-a plastid like organelle present in most apicomplexans and parasite replication. Interestingly, TgVPS15 also regulates autophagy in T. gondii under nutrient-limiting conditions as it promotes autophagosome formation. For both these processes, TgVPS15 uses PI3P-binding protein TgATG18 and regulates trafficking and conjugation of TgATG8 to the apicoplast and autophagosomes, which is important for biogenesis of these organelles. TgVPS15 has a protein kinase domain but lacks several key residues conserved in conventional protein kinases. Interestingly, two critical residues in its active site are important for PI3P formation and parasitic functions of this kinase. Collectively, these studies unravel a signalling cascade involving TgVPS15, a novel effector of PI3-kinase in T. gondii and possibly other Apicomplexa, that regulate critical processes like apicoplast biogenesis and autophagy.

cell biology↗

Early life trauma leads to violent behavior and its inheritance by impairing local thyroid hormone availability in brain

Escalated and inappropriate levels of aggressive behavior referred to as pathological in psychiatry can lead to violent outcomes with detrimental impact on health and society. Early life trauma triggers adulthood violence and criminality, though molecular mechanisms remain elusive. Here, we provide prefrontal cortex and hypothalamus specific transcriptome profiles of peripubertal stress (PPS) exposed Balb/c adult male mice exhibiting escalated aggression and adult female mice resilient to such aberrant behavioral responses. We identify transthyretin (TTR) as a key regulator of PPS induced escalated aggression and its intergenerational inheritance. TTR mediated long-term perturbation in hypothalamic thyroid hormone (TH) availability contributed to male aggressive behavior without affecting circulating hormone. Ttr gene ablation in hypothalamus impaired local TH signaling including levels of TH transporters (Mct8, Oatp1c1), deiodinase 2(DIO2) and TH responsive genes (Nrgn, Trh and Hr). Escalated aggressive behavior and impaired TTR-TH signaling was also inherited in F1 male progenies. Further, we deciphered Ttr promoter hyper methylation in hypothalamus of such abnormally aggressive males across generations. Interestingly prefrontal cortex showed opposite pattern of Ttr expression as well as long term epigenetic changes. Also, T4 increase by levothyroxine in PFC did not produce any behavioral changes. Our findings reveal that trauma during puberty trigger lasting escalated aggression by epigenetic programming of TTR and consequent impaired thyroid availability in brain. TTR-TH signaling in brain can serve as potential target in reversal of escalated aggression and related psychopathologies.

neuroscience↗