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Hahn, H.

Publications and source records attributed to Hahn, H..

4 recordsLinked to original sources

The Lysosome Surface is an Unappreciated Hub for Vasopressin V2 Receptor Signaling

G protein-coupled receptors (GPCRs) have traditionally been understood to signal through heterotrimeric G proteins exclusively from the cell surface followed by {beta}-arrestin ({beta}arr)-mediated desensitization and receptor internalization into endosomes. However, this view has evolved significantly with growing evidence showing that some GPCRs continue to signal from endosomes after their internalization as well as from other intracellular organelles. The vasopressin V2 receptor (V2R) exemplifies this paradigm shift as it promotes robust endosomal G protein before being sorted to lysosomes for degradation. Intriguingly, recent observations suggest that the lysosomal surface itself holds a substantial pool of heterotrimeric G proteins, raising the possibility that GPCRs such as the V2R may stimulate signaling from this subcellular region. To investigate this, we here employed a NanoBiT bystander approach to track intracellular V2R trafficking and transducer activation in real-time. Our results show that activated V2R is trafficked relatively fast to lysosomes where it retains the ability to couple to both G proteins and {beta}arrs. Applying nanobody/intrabody biosensors, we further demonstrated that the V2R activates endogenous G proteins and {beta}arrs at the lysosomal surface and that inhibition of V2R translocation to endolysosomal compartments blunts its ability to stimulate G protein signaling. Together, these findings suggest that the lysosomal surface serves as an unappreciated hub for signaling by some GPCRs before they eventually are engulfed into the lysosomal lumen for degradation. One-sentence summaryUpon activation, the vasopressin V2 receptor is internalized and sorted to the lysosomal membrane, where it activates G proteins and {beta}-arrestins.

cell biology↗

Neuropilin-1 is a co-receptor for NGF and TrkA-evoked pain

Nerve growth factor (NGF) monoclonal antibodies inhibit chronic pain yet, failed to gain approval due to worsened joint damage in osteoarthritis patients. We report that neuropilin-1 (NRP1) is a co-receptor for NGF and tropomyosin-related kinase A (TrkA) pain signaling. NRP1 is coexpressed with TrkA in human and mouse nociceptors. NRP1 inhibitors suppress NGF-stimulated excitation of human and mouse nociceptors and NGF-evoked nociception in mice. NRP1 knockdown inhibits NGF/TrkA signaling, whereas NRP1 overexpression enhances signaling. NGF binds NRP1 with high affinity and interacts with and chaperones TrkA from the biosynthetic pathway to the plasma membrane and endosomes, enhancing TrkA signaling. Molecular modeling suggests that C-terminal R/KXXR/K NGF motif interacts with extracellular "b" NRP1 domain within a plasma membrane NGF/TrkA/NRP1 of 2:2:2 stoichiometry. G Alpha Interacting Protein C-terminus 1 (GIPC1) scaffolds NRP1 and TrkA to myosin VI and colocalizes in nociceptors with NRP1/TrkA. GIPC1 knockdown abrogates NGF-evoked excitation of nociceptors and pain-like behavior. NRP1 is a nociceptor-enriched co-receptor that facilitates NGF/TrkA pain signaling. NRP binds NGF and chaperones TrkA to the plasma membrane and signaling endosomes via the GIPC1 adaptor. NRP1 and GIPC1 antagonism in nociceptors offers a long-awaited non-opioid alternative to systemic antibody NGF sequestration for the treatment of chronic pain. SummaryNeuropilin-1 and G Alpha Interacting Protein C-terminus 1 are necessary for nerve growth factor-evoked pain and are non-opioid therapeutic targets for chronic pain.

neuroscience↗

β-arrestin-dependent and -independent endosomal G protein activation by the vasopressin type 2 receptor

The vasopressin type 2 receptor (V2R) is an essential GPCR in renal regulation of water homeostasis. Upon stimulation, the V2R activates Gs and Gq/11, which is followed by robust recruitment of {beta}-arrestins and receptor internalization into endosomes. Unlike canonical GPCR signaling, the {beta}-arrestin association with the V2R does not terminate Gs activation, and thus, Gs-mediated signaling is sustained while the receptor is internalized. Here, we demonstrate that this V2R ability to co-interact with G protein/{beta}-arrestin and promote endosomal G protein signaling is not restricted to Gs, but also involves Gq/11. Furthermore, our data implies that {beta}-arrestins potentiate Gs/Gq/11 activation at endosomes rather than terminating their signaling. Surprisingly, we found that the V2R internalizes and promote endosomal G protein activation independent of {beta}-arrestins to a minor degree. These new observations challenge the current model of endosomal GPCR signaling and suggest that this event can occur in both {beta}-arrestin-dependent and -independent manners. IMPACT STATEMENTThe vasopressin type 2 receptor promotes dual Gs and Gq/11 signaling at early endosomes in {beta}-arrestin-dependent and -independent manners.

cell biology↗

Endosomal Chemokine Receptor Signalosomes Regulate Central Mechanisms Underlying Cell Migration

Chemokine receptors are GPCRs that regulate chemotactic migration of a wide variety of cells including immune and cancer cells. Most chemokine receptors contain features associated with the ability to stimulate G protein signaling during {beta}-arrestin-mediated receptor internalization into endosomes. As endosomal signaling of certain non-GPCR receptors plays a major role in cell migration, we chose to investigate the potential role of endosomal chemokine receptor signaling on mechanisms governing this function. Applying a combination of pharmacological and cell biological approaches, we demonstrate that the model chemokine receptor CCR7 recruits G protein and {beta}-arrestin simultaneously upon chemokine stimulation, which enables internalized receptors to activate G protein from endosomes. Furthermore, spatiotemporal-resolved APEX2 proteome profiling shows that endosomal CCR7 uniquely enriches specific Rho GTPase regulators as compared to plasma membrane CCR7, which is directly associated with enhanced activity of the Rho GTPase Rac1 and chemotaxis of immune T cells. As Rac1 drives the formation of membrane protrusions during chemotaxis, our findings suggest an important integrated function of endosomal chemokine receptor signaling in cell migration.

cell biology↗