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Rice, F. L.

Publications and source records attributed to Rice, F. L..

2 recordsLinked to original sources

Expansion of OSMR expression and signaling in the human dorsal root ganglion links OSM to neuropathic pain

RNA sequencing studies on human dorsal root ganglion (hDRG) from patients suffering from neuropathic pain show upregulation of OSM, linking this IL-6 family cytokine to pain disorders. In mice, however, OSM signaling causes itch behaviors through a direct effect on its cognate receptor expressed uniquely by pruriceptive sensory neurons. We hypothesized that an expansion in function of OSM-OSM receptor (OSMR) in sensory disorders in humans could be explained by species differences in receptor expression and signaling. Our in situ hybridization and immunohistochemical findings demonstrate broad expression of OSMR in DRG nociceptors and afferent fibers innervating the superficial and deep skin of humans. In patch-clamp electrophysiology, OSM directly activates human sensory neurons engaging MAPK signaling to promote action potential firing. Using CRISPR editing we show that OSM activation of MAPK signaling is dependent on OSMR and not LIFR in hDRG. Bulk, single-nuclei, and single-cell RNA-seq of OSM-treated hDRG cultures reveal expansive similarities in the transcriptomic signature observed in pain DRGs from neuropathic patients, indicating that OSM alone can orchestrate transcriptomic signatures associated with pain. We conclude that OSM-OSMR signaling via MAPKs is a critical signaling factor for DRG plasticity that may underlie neuropathic pain in patients.

neuroscience↗

TLR4+ Dermal fibroblasts induce acute and transitional pain states

The prominence of non-neuronal cells driving pain states has gained attention in recent years. Fibroblasts, a major stromal cell, perform essential functions during inflammation, tissue remodeling, and wound healing; however, recent studies suggest that fibroblasts may play a role in pain. Toll-like receptor 4 (TLR4) is an essential component of the innate immune system and activation of the receptor promotes pain. This study utilized a novel mouse model with dermal fibroblast specific expression of TLR4 on a TLR4-null background, which allows us to understand the sufficiency of skin fibroblast activation in pain development. Here we demonstrate that dermal fibroblast activation induces both acute inflammatory pain and hyperalgesic priming in both male and female mice. In vivo, activated dermal fibroblasts change cellular morphology in mice and humans. In vitro we observed pro-inflammatory cytokine production and activation of calcium signaling pathways. These data demonstrate that dermal fibroblast activation can cause acute pain and drive mechanisms involved in the transition to chronic pain.

neuroscience↗