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Padmashri, R.

Publications and source records attributed to Padmashri, R..

3 recordsLinked to original sources

Activity of Human-Specific Interlaminar Astrocytes in a Chimeric Mouse Model of Fragile X Syndrome

Astrocytes, a subtype of glial cells, have multiple roles in regulating neuronal development and homeostasis. In addition to the typical mammalian astrocytes, in the primate cortex interlaminar astrocytes are located in the superficial layer and project long processes traversing multiple layers of the cerebral cortex. Previously, we described a human stem cell based chimeric mouse model where interlaminar astrocytes develop. Here, we utilized this model to study the calcium signaling properties of interlaminar astrocytes. To determine how interlaminar astrocytes could contribute to neurodevelopmental disorders, we generated a chimeric mouse model for Fragile X syndrome. We report that FXS interlaminar astrocytes exhibit hyperexcitable calcium signaling and are associated with dendritic spines with increased turnover rate.

neuroscience↗

Astrocytic contribution to sensory hypersensitivity in a mouse model of fragile X syndrome

Fragile X syndrome (FXS) is the most common form of inherited intellectual disability and a leading cause of autism spectrum disorder (ASD). FXS is caused by mutations in the fragile X messenger ribonucleoprotein gene 1 (FMR1), which result in complete or partial loss of expression of its protein product, fragile X messenger ribonucleoprotein (FMRP). Neuronal impairments in the absence of FMRP have been extensively characterized. However, much less is known about the impact that loss of FMRP has on the physiology and function of astrocytes and the implications for behavior. A common behavior exhibited by both FXS and ASD patients is hypersensitivity to sensory stimuli, but how astrocytes contribute to hypersensitivity in the context of FXS remains unknown. Using mice with astrocyte-specific reduction of Fmr1 (Fmr1 conditional KO (cKO)) and mice with astrocyte-specific expression of Fmr1 (Fmr1 cON), we demonstrated that reduction of astrocytic FMRP is sufficient but not necessary to confer susceptibility to audiogenic seizures, an indication of auditory hypersensitivity. In addition, reduction of astrocytic FMRP impacts neuronal activity, resulting in spontaneous seizures. In contrast, we assessed tactile hypersensitivity using a whisker stimulation paradigm but did not detect significant differences in Fmr1 cKO mice. Our results reveal that astrocytes lacking FMRP contribute to auditory hypersensitivity and spontaneous seizures.

neuroscience↗

Na+/Ca2+ exchanger triggers transient disruption of axon initial segments in hippocampal granule cells after brief ischemia.

The axon initial segment (AIS) is the site of action potential initiation in many cell types. The large density of Na+ channels and the small intraluminal volume of the AIS underlie the largest spike-dependent Na+ raise along the neuron. Our Na+ and Ca2+ imaging experiments in dentate granule cells reveal that the Na+/Ca2+ exchanger contributes to fast Na+ clearance at the expense of Ca2+ entry specifically at the AIS during short bursts of action potentials. The AIS is thought to be irreversibly disrupted during brain ischemia by the Ca2+-dependent protease calpain, as an early step leading to neuronal death. We find here that brief transitory ischemia produces a similar calpain-dependent disruption of the AIS in the dentate gyrus. However, this is not an irreversible process: a few days following the brief ischemic stress, intact initial segments re-appear, and calpain activity in the dentate gyrus returns to normal. Moreover, pharmacological blockade of Ca2+ entry through the Na+/Ca2+ exchanger prevents AIS disruption in vivo and in slice preparations. Our results unveil a highly dynamic anoxia driven disruption-reconstruction of AIS, which is mediated by a previously unnoticed Ca2+ entry through the Na+/Ca2+ exchanger in the axon initial segment of hippocampal granule cells.

neuroscience↗