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Kashem, S. W.

Publications and source records attributed to Kashem, S. W..

3 recordsLinked to original sources

CCR2 silencing in sensory neurons blocks bone cancer progression

The peripheral nervous system contributes to cancer growth, in part by shaping the immunological niche of the tumor. How the nervous system influences bone cancer progression, and whether the underlying neuroimmune pathways can be targeted therapeutically, remain unclear. Here we demonstrate a profound influence of the peripheral nervous system on tumor progression that can be countered by silencing chemokine receptor signaling in sensory neurons. Axotomy of the tumor-innervating femoral nerve inhibits tumor progression in animals bearing bone cancer, whereas intrathecal delivery of the tumor-associated proinflammatory chemokine CCL2 promotes both tumor growth and allodynia. Silencing CCR2 in dorsal root ganglion (DRG) neurons with a newly developed lipid nanoparticle-formulated Dicer-substrate siRNA impedes tumor progression and pathological bone remodeling, and relieves bone cancer-associated pain. Mechanistically, bone cancer drives CCR2-dependent transport of substance P and CGRP along the tumor-innervating femoral nerve, and these neuropeptides expand the tumor-associated macrophage population; silencing CCR2 in DRG neurons normalizes the neuropeptide milieu and ameliorates altered bone remodeling. We thus define a targetable neuroimmune axis that contributes to cancer progression. HighlightsO_LICancer progression activates sensory neurons, driving pain hypersensitivity and neuropeptide release. C_LIO_LIAxotomy of the tumor-innervating femoral nerve impedes tumor progression. C_LIO_LICCL2-CCR2 signaling in DRG neurons promotes pain hypersensitivity and cancer growth. C_LIO_LISilencing CCR2 in the DRG reduces pain hypersensitivity, tumor-associated macrophage numbers and cancer growth. C_LI

neuroscience↗

Sexually dimorphic regulatory T cell-derived enkephalin imparts pregnancy-induced analgesia

T cells have emerged as sex-dependent orchestrators of pain chronification but the sexually dimorphic mechanisms by which T cells control pain sensitivity is not resolved. Here, we demonstrate an influence of regulatory T cells (Tregs) on pain processing that is distinct from their canonical functions of immune regulation and tissue repair. Specifically, meningeal Tregs (mTregs) express the endogenous opioid, enkephalin, and mTreg-derived enkephalin exerts an antinociceptive action through a presynaptic opioid receptor signaling mechanism that is dispensable for immunosuppression. We demonstrate that mTregs are both necessary and sufficient to suppress mechanical pain sensitivity in female, but not male, mice, with this modulation reliant on sex hormones. These results uncover a fundamental sex-specific, and immunologically- derived endogenous opioid circuit for nociceptive regulation with critical implications for pain biology. Highlights1. Gating of allodynia by meningeal Tregs is sex hormone-dependent 3. Treg-derived enkephalin modulates mechanical pain sensitivity, not inflammation 4. Delta opioid receptor on MrgprD+ sensory neuron mediates pain processing by mTregs

immunology↗

CCR2-targeting pepducins reduce T cell-nociceptor interaction driving bone cancer pain

Inhibition of the CCL2/CCR2 chemokine signaling represents a promising avenue for the development of non-opioid pain treatment, particularly for painful bone metastases. To investigate the involvement of CCR2 in cancer-induced bone pain, we generated and characterized the functional activities of a novel cell-penetrating pepducin, namely PP101, acting as an intracellular negative allosteric modulator of CCR2. In vivo, PP101 was effective in relieving neuropathic and bone cancer pain. By targeting CCR2, PP101 reduced bone cancer pain by preventing infiltration of CD4+ and CD8+ T cells and by decreasing the neuroimmune communication network within the dorsal root ganglia. Importantly, reduced neuroinflammatory milieu in the dorsal root ganglia induced by PP101 did not result in deleterious tumor progression or behavioral adverse effects. Thus, targeting the neuroimmune crosstalk through allosteric inhibition of CCR2 may represent an effective and safe avenue for the management of bone cancer pain. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=147 SRC="FIGDIR/small/556569v1_ufig1.gif" ALT="Figure 1"> View larger version (41K): org.highwire.dtl.DTLVardef@15c2d43org.highwire.dtl.DTLVardef@9fa40corg.highwire.dtl.DTLVardef@cb457dorg.highwire.dtl.DTLVardef@13f36e1_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIBreast cancer bone metastases induce pain by activating CCR2 on sensory neurons. C_LIO_LIDRG-infiltrating CD4+ and CD8+ T cells promote the development of bone cancer pain. C_LIO_LICCR2 inhibition by PP101 suppresses DRG neuroinflammation and neuronal excitability. C_LIO_LIPP101 alleviates bone cancer pain without behavioral or physiological side effects. C_LI

neuroscience↗