Astrocytic FMRP regulates the function of spinal parvalbumin-expressing neurons in Fragile X Syndrome
Qiu, H.; Jalandoni, R. F.; Derham, A.; Reinisch, N.; Chen, C.; Vong, A.; Cook, E. P.; Krishnaswamy, A.; Khadra, A.; Sharif-Naeini, R.
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Tactile hypersensitivity is a common symptom of Fragile X Syndrome (FXS) characterized by over-responsiveness to innocuous touch or textures. Yet, the neural circuitry underlying this altered sensory processing remains incompletely understood. Previous studies have focused on cortical and peripheral neuron dysfunction. However, the spinal dorsal horn circuits, which make up the first central site of somatosensory integration, also comprises elements that could contribute to the hypersensitivity to innocuous stimuli, yet its involvement in this pathology has remained incompletely understood. Here, we show that spinal parvalbumin (PV)-expressing interneurons (PVNs), an inhibitory population that gates touch sensory input from activating nociceptive pathways, are dysfunctional in FXS. Using a mouse model of FXS (global Fmr1 knockout; gKO), we showed that dorsal horn PVNs exhibit impaired function characterized by reduced PV expression and inability to sustain tonic firing. To determine whether these deficits arise through cell-intrinsic mechanisms, we selectively deleted Fmr1 in PVNs. This deletion failed to reproduce the molecular and electrophysiological changes observed in the gKO mice. In contrast, astrocyte-specific deletion of Fmr1 recapitulated key features of the gKO mice, including decreased PV expression and firing. To understand the biophysical basis of this firing deficit, we simulated spinal PVNs using conductance-based Hodgkin-Huxley type modelling. Surprisingly, modifying intrinsic membrane conductances alone was insufficient to account for the experimental data. In fact, PVN firing required incorporation of an additional calcium-dependent extrinsic synaptic component consistent with the experimental finding that astrocytic, but not PVN-specific, loss of FMRP reproduced the PVN phenotype in gKO mice. Together, these findings show that these deficits in spinal PVNs arise primarily from loss of FMRP in astrocytes rather than in PVNs themselves. It reveals astrocyte-dependent dysfunction of dorsal horn inhibitory circuits as a previously uncharacterized consequence of FXS.
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