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Retamal, J. S.

Publications and source records attributed to Retamal, J. S..

3 recordsLinked to original sources

Targeting of subcellular metabotropic glutamate receptor 5 signaling to modulate pain transmission

Metabotropic glutamate receptor 5 (mGlu5) is a class C GPCR crucial for neuronal development and synaptic transmission. mGlu5 is a potential therapeutic target in pain management and modulates pain-associated gene expression and signaling pathways. Although mGlu5 inhibitors have shown promise in treating pain, none have translated to the clinic. Up to 90% of neuronal mGlu5 expression is intracellular, although the precise locations and function of different mGlu5 intracellular pools remains unclear. Building on recent evidence showing the importance of endosome-mediated nociceptive signaling by other GPCRs, we hypothesized that endosomal pools of mGlu5 contribute to pain transmission, and that targeted inhibition of intracellular mGlu5 signaling results in superior analgesia. Using calcium mobilization assays and genetically encoded resonance energy transfer biosensors, we report that upon its activation mGlu5 recruits Gq/11 and Gs to the plasma membrane. Conversely, internalized mGlu5 in endosomes recruits only Gq/11 proteins. mGlu5 signaling is highly dependent on receptor trafficking to endosomes, with sustained nuclear ERK1/2 signaling requiring both receptor internalization and active glutamate transport into the cell. We generated pH responsive nanoparticles loaded with the mGlu5 negative allosteric modulator VU0366058 (DIPMA-VU058), enabling endosome-targeted inhibition of mGlu5. Nanoparticle encapsulation of VU0366058 enhanced inhibition of both acute and sustained nuclear ERK1/2 signaling, and significantly reduced neuronal excitability in nociceptive circuits in spinal cord slices from rats with neuropathic pain. Intrathecal administration of DIPMA-VU058 achieved superior analgesia in both inflammatory and neuropathic models of pain in mice compared to free VU0366058 and the reference compound fenobam. These studies demonstrate the importance of endosome-associated receptors for the complete mGlu5 signaling response. Furthermore, we show that manipulating the cellular distribution of an allosteric modulator can engender location-biased pharmacological effects. Together, we have revealed new and unappreciated roles for endosome-specific mGlu5 signaling and demonstrate that endosome-selective targeting may offer an alternative therapeutic approach for modulating mGlu5 activity.

pharmacology and toxicology↗

TRPV4 Promotes Histamine Receptor Signaling in Lymphatic Endothelial Cells

BackgroundThe control of lymphatic permeability and flow is essential for homeostatic regulation of tissue fluid balance and immune responses. Histamine has been identified as an important signaling mediator involved in the regulation of lymphatic function. Histamine is released from activated perilymphatic mast cells and may also be produced by lymphatic endothelial cells (LECs) in response to flow-induced shear stress. The non-selective cation channel Transient Receptor Potential Vanilloid 4 (TRPV4) is an important mediator of signaling by GPCRs, including histamine receptors. TRPV4 is activated in response to shear stress and is functionally expressed by LECs. We hypothesized that histamine receptors and TRPV4 interact in LECs, leading to activation of distinct downstream signaling pathways. This study examined the mechanistic link between TRPV4 activity and histaminergic signaling in LECs. Principle ResultsHistaminergic Ca2+ signaling was examined in primary human LECs. Responses to histamine were mainly driven by the H1R histamine receptor, with some contribution by the H4R subtype, as determined using selective antagonists. H4R signaling in response to 4-methylhistamine was effectively prevented by either removal of extracellular Ca2+ or block of TRPV4 activity, consistent with TRPV4-dependence. Conversely, activation of H4R resulted in marked sensitization of subsequent responses to the selective TRPV4 agonist GSK1016790A. This interaction was mediated through a PLA2-dependent mechanism. TRPV4 activity was required for histamine receptor-evoked translocation of the Ca2+-dependent transcription factor NFATc1 and for cytoskeletal remodeling. By contrast, the release of cytokines in response to activation of either histamine receptors or TRPV4 were largely independent processes. ConclusionsThis study identifies TRPV4 as an important mediator of histaminergic signaling in LECs. The findings provide further support for the involvement of TRPV4 in defining the nature and magnitude of endothelial signaling downstream of GPCRs. HighlightsO_LIHistamine receptors are functionally expressed by primary human LECs C_LIO_LITRPV4 is an important driver of H4R-evoked Ca2+ signaling in LECs C_LIO_LIHistamine receptor activation sensitizes TRPV4 signaling in LECs C_LIO_LITRPV4 promotes histamine-evoked NFATc1 translocation to the nucleus of LECs C_LIO_LIHistamine and TRPV4 evoked cytokine release from LECs involve distinct mechanisms C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=115 SRC="FIGDIR/small/690563v1_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@409b49org.highwire.dtl.DTLVardef@192f58dorg.highwire.dtl.DTLVardef@136fdd0org.highwire.dtl.DTLVardef@15175c6_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical abstract.C_FLOATNO Histamine exerts its effects on lymphatic endothelial cells through interaction with the H1R and H4R receptor subtypes. H1R activation promotes Ca2+ release from intracellular stores. Activation of the H4R leads to elevated intracellular Ca2+ through crosstalk with the non-selective cation channel TRPV4. Interaction between H4R and TRPV4 is mediated through a PLA2-dependent mechanism. TRPV4 enhances histamine-evoked NFATc1 activation and translocation and cytoskeletal remodeling. In contrast, histamine receptor- and TRPV4-mediated cytokine release appear to involve mechanistically independent processes. C_FIG

pharmacology and toxicology↗

Endosomal MrGPRX1 signaling sensitizes TRPV1 to enhance itch

G protein-coupled receptors (GPCRs) and TRPV (transient receptor potential vanilloid) channels are crucial for signal transduction in physiological processes, including neurotransmission, pain, and itch. Downstream effectors of GPCR signaling can directly stimulate TRPV channels or enhance their sensitivity to stimuli, a process known as TRPV sensitization. Traditionally, GPCRs are activated at the cell surface by extracellular agonists, triggering signaling cascades. Recent evidence suggests GPCRs continue to signal from intracellular organelles. The human Mas-related G-protein coupled receptor X1 (MrGPRX1) is a GPCR expressed in primary sensory neurons involved in nociception and pruritus. Recent studies demonstrated how intracellular GPCR signaling regulates neuronal activity. However, there is no evidence characterizing MrGPRX1 trafficking or intracellular signaling. Herein, we characterized MrGPRX1 signaling within the endosomal network and its role in sensitizing TRPV1 channels to enhance itch signaling. Utilizing subcellular targeted biosensors, we demonstrated MrGPRX1 can traffic and signal from endosomes. Immunofluorescence analysis showed that MrGPRX1 internalizes following BAM8-22 stimulation. BRET assays revealed that MrGPRX1 activation induces Gq and {beta}-arrestin-1 recruitment to the plasma membrane and early endosomes. Inhibition of dynamin or clathrin blocked BAM8-22-induced MrGPRX1 endocytosis and decreased nuclear extracellular signal-regulated kinase (ERK) signaling. Calcium signaling confirmed that MrGPRX1-mediated TRPV1 sensitization is mediated by protein kinase C and ERK activation. Our findings reveal a novel role for MrGPRX1 endosomal signaling in TRPV1 sensitization. Understanding the mechanisms of MrGPRX1 signaling offers valuable insights into differentiating between pain and itch pathways, aiding in the development of targeted therapies for chronic pain and persistent itch.

neuroscience↗