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Meyrath, M.

Publications and source records attributed to Meyrath, M..

5 recordsLinked to original sources

Chemokine and opioid peptide scavenging through constitutive and ligand-induced release of ACKR3-bearing extracellular vesicles

Atypical chemokine receptors (ACKRs) are non-signaling GPCRs that regulate ligand availability, with ACKR3 functioning as a dual scavenger of chemokines and opioid peptides. Here, we demonstrate that following ligand stimulation, besides the canonical internalization, ACKR3 is released on extracellular vesicles (EVs). ACKR3 was also found on EVs released under basal conditions, although to a lesser extent. These observations were confirmed across multiple cellular contexts, including endogenous systems. Mechanistically, basal and ligand-induced EV release are independent of GRKs and {beta}-arrestin but each relies on distinct trafficking routes and C-terminal determinants. Ligand-induced EV release is associated with plasma membrane localization and receptor recycling pathways. In contrast, basal EV release is governed by intracellular sorting processes and influenced by receptor ubiquitination and RAMP3. Functionally, EV-associated ACKR3 retains high-affinity ligand binding, enabling sequestration of CXCL12 and opioid peptides and thereby attenuating their signaling through CXCR4 and MOR. We also show that the release on EVs, in particular under basal conditions, is observed for other receptors such as KOR, CXCR4 and several ACKRs. Collectively, these findings establish EVs as regulators in chemokine and opioid systems and as a previously underappreciated dimension of ACKR3 and more broadly GPCR biology.

Cell Biology↗

Atypical activation and molecular glue-like dimerization mechanism of an intrinsically-biased chemokine receptor

CXCR7, also known as atypical chemokine receptor 3 (ACKR3), is a naturally-biased, {beta}-arrestin-coupled seven transmembrane receptor (7TMR) that lacks productive coupling with heterotrimeric G-proteins. Despite a critical involvement in cancer metastasis, cardiovascular pathophysiology, and inflammatory disorders, the molecular basis of non-canonical activation and functional divergence of CXCR7 remains elusive. Here, we present a complete landscape of CXCR7 activation using a series of cryo-EM structures, and discover an atypical activation mechanism that is distinct from prototypical GPCRs. CXCR7 is maintained in a basal conformation by a unique tripartite ionic-lock involving TM5-TM6, in contrast to a broadly conserved TM3-TM6 ionic-lock in GPCRs, which is disrupted upon receptor activation. Importantly, activation of CXCR7 results in a constricted pocket and distinct surface topology on the intracellular side compared to prototypical GPCRs. Serendipitously, we capture novel dimeric arrangements of CXCR7 with an inter-protomer stitching by a native phospholipid serving as a molecular glue, and identify previously unanticipated extrahelical allosteric sites on the receptor. Surprisingly, in an intermediate state structure of CXCR7, the second extracellular loop (ECL2) displays a self-blocking conformation, in stark contrast to ECL2-mediated self-activating mechanism reported recently for some orphan GPCRs. Finally, we unequivocally establish CXCR7 as an atypical opioid receptor via a large peptide library screening and structure elucidation in complex with distinct opioid peptides imparting full receptor activation. In summary, our study elucidates an atypical mechanism of CXCR7 activation, and establishes it as an alternative, non-canonical opioid receptor target with potential for novel pain therapeutics.

biochemistry↗

Inhibition of constitutive activity of the atypical chemokine receptor ACKR3 by the small-molecule inverse agonist VUF16840

The atypical chemokine receptor 3 (ACKR3) has emerged as a promising drug target for the treatment of cancer, cardiovascular, and autoimmune diseases. In this study, we present the pharmacological characterization of VUF16840, the first small-molecule inverse agonist of ACKR3. VUF16840 effectively displaces CXCL12 binding to ACKR3 and inhibits chemokine-induced {beta}-arrestin2 recruitment in a concentration-dependent manner. Furthermore, VUF16840 stabilizes the inactive conformation of ACKR3, as demonstrated by its ability to suppress constitutive {beta}-arrestin2 recruitment. This inverse agonism alters ACKR3 constitutive trafficking, leading to receptor enrichment at the plasma membrane and inhibition of intracellular CXCL12 uptake. Importantly, VUF16840 exhibits high selectivity for ACKR3 over a broad panel of human chemokine receptors. These findings establish VUF16840 as a potent and selective ACKR3 inverse agonist capable of modulating constitutive and chemokine-induced signaling and internalization events. As such, VUF16840 represents a valuable pharmacological tool for exploring the molecular and translational roles of ACKR3 in both physiological and pathological contexts.

pharmacology and toxicology↗

ACKR5/GPR182 is a scavenger receptor for the atypical chemokine CXCL17, GPR15L and various endogenous peptides

GPR182/ACKR5, the most recently deorphanized chemokine receptor, is mainly expressed on endothelial cells and was proposed to act as a scavenger regulating the availability of a large set of chemokines. In this study, we first established the exact profiles and ranking of the chemokines binding to the human and mouse GPR182. We confirmed the high promiscuity of GPR182 towards XC, CC and CXC chemokines and a clear difference in the chemokine repertoires of the human and mouse orthologues. We next demonstrated that, beyond classical chemokines, GPR182 exhibits potent binding to the chemoattractant protein GPR15L/C10orf99, the atypical chemokine CXCL17 and various endogenous peptides, mainly from the opioid, apelin, and PACAP families. We also showed that these newly identified ligands engage GPR182 through varied binding modes. While GPR15L, just like classical chemokines, predominantly engages GPR182 via its N terminus, conversely to the C terminus-dependent binding to its cognate receptor GPR15, CXCL17 exhibits a more complex interaction, relying on both the N and C terminus. The binding mode of the newly identified peptide ligands also differ from the interactions with their cognate receptors. Our findings establish the first scavenger receptor for CXCL17 and GPR15L and advance the understanding of GPR182 ligand interactions, suggesting a regulatory role beyond chemokines.

pharmacology and toxicology↗

Pharmacological characterization and radiolabeling ofVUF15485, a high-affinity small-molecule agonist for theatypical chemokine receptor ACKR3

Atypical chemokine receptor 3 (ACKR3), formerly referred to as CXCR7, is considered to be an interesting drug target. In this study we report on the synthesis, pharmacological characterization and radiolabeling of VUF15485, a new ACKR3 small-molecule agonist, that will serve as an important new tool to study this {beta}-arrestin-biased chemokine receptor. VUF15485 binds with nanomolar affinity (pIC50 = 8.3) to human ACKR3, as measured in [125I]CXCL12 competition binding experiments. Moreover, in a BRET-based {beta}-arrestin2 recruitment assay VUF15485 acts as an ACKR3 agonist with high potency (pEC50 = 7.6) and shows a similar extent of receptor activation compared to CXCL12 when using a newly developed, FRET-based ACKR3 conformational sensor. Moreover, the ACKR3 agonist VUF15485 was tested against a (atypical) chemokine receptor panel (agonist and antagonist mode) and proves to be selective for ACKR3. VUF15485 was subsequently labeled with tritium at one of its methoxy groups affording [3H]VUF15485. The small-molecule agonist radioligand binds saturably and with high affinity to human ACKR3 (Kd = 8.2 nM). [3H]VUF15485 shows rapid binding kinetics and consequently a short residence time (RT < 2 min) for its binding to ACKR3. Displacement of [3H]VUF15485 binding to membranes of HEK293T cells, transiently expressing ACKR3, with a number of CXCR3, CXCR4 or ACKR3 small-molecule ligands confirmed the ACKR3 profile of the [3H]VUF15485 binding site. Interestingly, the chemokine ligands CXCL11 and CXCL12 are not able to displace the binding of [3H]VUF15485 to ACKR3. The radiolabeled VUF15485 was subsequently used to evaluate its binding pocket. Site-directed mutagenesis and docking studies using a recently solved cryo-EM structure propose VUF15485 to bind in the major and the minor binding pocket of ACKR3.

pharmacology and toxicology↗