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Salio, C.

Publications and source records attributed to Salio, C..

3 recordsLinked to original sources

C-LTMRs Regulate Thermosensation and Gate the Transition from Acute to Chronic Pain

C-low threshold mechanoreceptors (C-LTMRs) are traditionally associated with affective touch, yet emerging evidence suggests broader roles in sensory processing and pain modulation. We developed an intersectional genetic approach to selectively ablate C-LTMRs in adult mice by combining Nav1.8IRES-FLPo and THCreER drivers with a conditional DTR reporter. This approach yields robust, tissue-specific deletion of C-LTMRs without off-target effects in non-sensory tissues. C-LTMR-ablated mice exhibit altered thermotaxis behavior, including a sharpened and spatially restricted preference for warmth, while maintaining largely intact responses to touch. Remarkably, following surgical or chemotherapeutic injury, these mice display persistent mechanical and cold hypersensitivity, implicating C-LTMRs in the resolution of pain. Transcriptomic profiling of dorsal root ganglia (DRG) and dorsal horn of the spinal cord (DHSC) revealed widespread transcriptional dysregulation in pathways related to extracellular matrix remodeling, vascular function and gliogenesis in naive mice. In C-LTMR-ablated mice, paclitaxel failed to induce pro-recovery transcriptional programs and instead promoted persistent neuroinflammatory signatures. These findings establish C-LTMRs as key modulators of pain recovery, acting through tissue-specific transcriptional programs that suppress inflammation and support sensory homeostasis.

neuroscience↗

Gut microbiota promotes pain chronicity in Myosin1A deficient male mice

Over the past decade, the gut microbiota has emerged as an important regulator of nervous systems health and disease states1. Yet, its contribution to the pathogenesis of chronic somatic pain remains poorly documented. Chronic pain is a heavily debilitating disease affecting more than 1.5 billion people worldwide that can manifest through a long-lasting hypersensitivity to mechanical and/or thermal stimulations2,3. Maladaptive responses of dorsal root ganglia (DRG) neurons and spinal cord (SC) interneurons to tissue injuries and also of non-neuronal cells including DRG macrophages and SC microglia are acknowledged as important drivers of sensory symptoms underlying chronic pain4,3,5-7. Recent evidence shows that signals from gut microbiota are required for the initiation of injury-induced sensory hypersensitivity, via the ability to interact with the immune system8-11. However, whether and how gut microbiota promotes pain chronicity remains unknown. Here, we report that male mice lacking Myosin1a (KO)12 raised under single genotype housing conditions (KO-SGH) are predisposed to develop chronic injury-induced mechanical pain. We demonstrate that this predisposition is caused by their dysbiotic gut microbiota, which sustains the immune response in the DRG following neuropathic injury. Parental antibiotic treatment modifies gut microbiota composition and completely rescues the injury-induced chronic pain and associated DRG inflammatory response in male KO-SGH offspring. Together, our data establish a causal relationship between a dysbiotic gut microbiota and the predisposition to injury-induced chronic pain.

neuroscience↗

Intrinsic microtubule destabilization of multiciliated choroid plexus epithelial cells during postnatal lifetime

Choroid plexus (ChP) epithelium is composed of specialized multiciliated cells. By using multiple microscopic techniques, biochemical approaches in various mutant mice and longitudinal analysis from mouse embryogenesis to aging, we show that ChP cilia are built on a gradient of events which are spatio-temporally regulated. We uncover that ChP cilia develop prenatally since early tissue morphogenesis, and proceeds as a multi-step process characterized by basal body multiplication and axoneme formation directly at the apical cellular compartment. Our data also show that choroid plexus cilia contain both primary and motile features. Remarkably, we demonstrate that ChP cilia undergo axoneme resorption, starting from early youth, through a tubulin destabilization process, which is primarily controlled by polyglutamylation levels and could be mitigated by the removal of the microtubule-severing enzyme spastin. Notably, we demonstrate that this phenotype is preserved in human samples.

developmental biology↗