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Subash, S.

Publications and source records attributed to Subash, S..

2 recordsLinked to original sources

D1R-specific modulation of ACC mitigates chronic neuropathic pain

Maladaptive plasticity within central pain circuits is a defining feature of chronic neuropathic pain, yet the mechanisms governing these changes remain unclear. This study investigates the role of the mesocortical dopaminergic pathway in the neuropathic pain-induced hyperexcitability of dopamine D1 receptor-expressing anterior cingulate cortex (ACCD1R) neurons. We find that infusing D1R agonists in the ACC reverses the mechanical hypersensitivity and negative affective-motivational affect in mice caused by spared-nerve injury (SNI). Although ACC pyramidal neurons are widely presumed to be the principal targets of D1R signaling, ex vivo recordings reveal that D1R agonists suppress the excitability of D1R-expressing pyramidal neurons while enhancing the excitability of D1R-expressing interneurons. Consistently, gene-expression analyses show that D1R-expression is distributed across both excitatory and inhibitory ACC neurons. Furthermore, we demonstrate that the excitability of genetically labeled D1R pyramidal neurons is enhanced by SNI, whereas in interneurons, it is reduced. Chemogenetic manipulation demonstrates that activation of D1R neurons produces robust analgesic and anxiolytic effects, whereas inhibition worsens pain- and anxiety-related behaviours, indicating that inhibitory D1R neurons dominate population-level output. Circuit tracing further delineates diverse afferent and efferent connections linking ACCD1R neurons to sensory and affective pain pathways. Together, these results identify dopaminergic regulation of ACCD1R neurons as a critical determinant of cortical dysfunction in chronic pain.

neuroscience↗

Human induced pluripotent stem cell-derived microglia contribute to thepathophysiology of Fragile X syndrome via increased RAC1 signaling

Fragile X syndrome (FXS) is one of the most common monogenic causes of neurodevelopmental disorders characterized by intellectual disability, autism and epilepsy. Emerging evidence suggests a role for immune dysfunction in autism. Using induced pluripotent stem cell (iPSC)-derived microglial cells from FXS patients (mFXS-MG) and FMR1-deficient microglia from FMR1-knock out human embryonic stem cells (FMR1 KO-MG), we show that loss-of-function of Fragile X Messenger Ribonucleoprotein (FMRP) leads to cell autonomous phagocytic deficits and a proinflammatory state in microglia when compared to gene-corrected controls. Moreover, increased RAC1 signaling in mFXS-MG and FMR1 KO-MG results in increased actin polymerization and enhanced activation of NF-{kappa}B signaling. Exposure of control iPSC-derived cortical neuron cultures to conditioned medium from proinflammatory mFXS-MG results in hyperexcitability. Importantly, pharmacological inhibition of RAC1 signaling in mFXS-MG attenuates their proinflammatory profile and corrects the neuronal hyperexcitability caused by the conditioned medium. Our results suggest that microglia impair neuronal function in FXS, which can be prevented by targeting of RAC1 signaling. Significance statementFXS is one of the most common monogenic causes of neurodevelopmental disorders characterized by intellectual disability, autism, epilepsy and has been associated with immune dysfunction. We therefore generated brain macrophages (microglia) from patient-derived induced pluripotent stem cells (mFXS-MG) and an embryonic stem cell line deficient in the Fragile X messenger ribonucleoprotein 1 (FMR1 KO-MG). We find enhanced activation of RAC1 signaling resulting in phagocytic deficits and immune activation of mFXS-MG and FMR1 KO-MG. Exposure of control iPSC-derived cortical neurons to conditioned medium from proinflammatory mFXS-MG results in neuronal hyperexcitability, which can be prevented by pharmacological RAC1 inhibition in mFXS-MG. We conclude that RAC1 signaling in microglia could be a potential therapeutic target in FXS.

neuroscience↗