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Chelliah, G.

Publications and source records attributed to Chelliah, G..

2 recordsLinked to original sources

Spatial transcriptomics reveals organizational properties of mouse spinal cord and alterations in neuropathic pain

The spinal cord integrates diverse somatosensory inputs and executes motor outputs through anatomically and functionally distinct circuits. Here, we employed spatially resolved single-cell transcriptomic profiling of the adult mouse spinal cord to gain insights into the organizational logic of the spinal cord. Our results reveal distinct spatial and laminar distributions of neuronal subtypes, including axial level and sex-specific differences. Many neuronal subtypes exhibit close spatial proximity, implicating regionally specific patterns of connectivity and circuit functions. Additionally, neuronal subtypes within the dorsal horn exhibit a wide range of predicted cell-cell communication motifs, as assessed by the spatial distribution of neuropeptide-and other ligand-receptor pairs. Finally, we identified several neuronal subtypes with altered transcriptomic and predicted cell-cell communications in a model of neuropathic pain. This spatially resolved cellular and molecular map of the spinal cord will facilitate the decoding of circuit mechanisms underlying somatosensory and motor functions in health and disease.

neuroscience↗

Intravital Two-Photon Imaging of Touch Sensory Axon Morphology in Mouse Skin

Low-threshold mechanoreceptors (LTMRs) are somatosensory neurons that detect innocuous light touch stimuli such as vibration, hair deflection, and pressure. They form subtype-specific terminals in the periphery and project axons centrally to the spinal cord to transmit tactile information. Current understanding about LTMR development and organization comes from fixed-tissue studies that cannot reveal the dynamic and temporal processes of neuronal wiring and remodeling. Here, we demonstrate a two-photon imaging method for visualizing LTMR axon morphology in the mouse right forepaw during development and in young adults. Two-photon microscopy can achieve high-resolution imaging within intact skin, allowing repeated imaging of the same axon terminals over postnatal timepoints. These approaches provide an in vivo system for the study of the cellular mechanisms that regulate LTMR patterning and plasticity. Its application to longitudinal analyses will make it possible to observe the assembly of touch circuits and their repair following injury. This technique may provide essential information about somatosensory axon structure and function in the skin. SummaryThis study presents an in vivo two-photon imaging approach to visualize the structures of low-threshold mechanoreceptor (LTMR) axon terminals in the forepaw skin in mice. By enabling repeated, high-resolution imaging of individual axons, the method provides a new platform for studying the sensory circuit structure and function during development and in adults.

neuroscience↗