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Chennakesavan, K.

Publications and source records attributed to Chennakesavan, K..

2 recordsLinked to original sources

STAT1-Mediated Regulation of IL-17A/CEBPB/NF-κB Axisin HIV-1 Infected Human Cerebral Organoids RevealsTherapeutic Targets for Neuroprotection

HIV-associated neurological complications remain a major concern in people living with HIV (PLWH), even under effective viral suppression with combination antiretroviral therapy (cART), underscoring unresolved mechanisms driving HIV-related neurodegeneration. To address this gap, we used HIV-1-infected human cerebral organoids (hCOs) containing microglia as a physiologically relevant three-dimensional model of the central nervous system (CNS) and validated key findings in simian immunodeficiency virus (SIV)-infected, cART-treated rhesus macaque model. Integrating single-nucleus RNA sequencing with ATAC sequencing, we identified cell-type-specific alterations in dual innate immune-driven inflammatory signaling pathways across neural and glial populations. Microglia were preferentially infected and activated, initiating IL-17A-mediated cascades involving IFN-{gamma}/STAT1, CEBPB, and NF-{kappa}B pathways, which converged with cGAS-STING and Notch-NEURL1 signaling, both associated with neuroinflammation and synaptic dysfunction. cART suppressed viral replication, reduced IL-17A-driven neuroinflammation, improved mitochondrial function, and restored synaptic gene expression. Collectively, these findings identify IL-17A, STAT1, CEBPB, and cGAS-STING as key molecular drivers of HIV-associated neuroinflammation and establish a novel mechanistic link between IL-17A signaling and microglial remodeling, providing a translational framework for the development of CNS-targeted therapies in PLWH.

neuroscience↗

KCa3.1 Contributes to Neuroinflammation and Nigral Dopaminergic Neurodegeneration in Experimental models of Parkinson's Disease

Chronic neuroinflammation and misfolded -synuclein (Syn) have been identified as key pathological correlates driving Parkinsons disease (PD) pathogenesis; however, the contribution of ion channels to microglia activation in the context of -synucleinopathy remains elusive. Herein, we show that KCa3.1, a calcium-activated potassium channel, is robustly upregulated within microglia in multiple preclinical models of PD and, most importantly, in human PD and dementia with Lewy bodies (DLB) brains. Pharmacological inhibition of KCa3.1 via senicapoc or TRAM-34 inhibits KCa3.1 channel activity and the associated reactive microglial phenotype in response to aggregated Syn, as well as ameliorates of PD like pathology in diverse PD mouse models. Additionally, proteomic and transcriptomic profiling of microglia revealed that senicapoc ameliorates aggregated Syn-induced, inflammation-associated pathways and dysregulated metabolism in primary microglial cells. Mechanistically, FYN kinase in a STAT1 dependent manner regulates KCa3.1 mediated the microglial reactive activation phenotype after -synucleinopathy. Moreover, reduced neuroinflammation and subsequent PD-like neuropathology were observed in SYN AAV inoculated KCa3.1 knockout mice. Together, these findings suggest that KCa3.1 inhibition represents a novel therapeutic strategy for treating patients with PD and related -synucleinopathies.

neuroscience↗