Search bioRxiv⌕ Search

Biology subjects

Counson, M.

Publications and source records attributed to Counson, M..

2 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↗

Physical interaction with Ephrin B1 promotes CXCR4 intracellular localization and oncogenic potential

Chemokine receptor 4 (CXCR4) is a member of the chemokine receptor exclusively activated by the chemokine CXCL12. While CXCR4 regulates numerous physiological processes associated with cell migration and embryogenesis, its overexpression has been involved in various cancer types. Studies suggest that intracellular CXCR4 expression rather than CXCR4-operated signaling underlies its pro-tumorigenic functions. Given the role of GPCR interacting proteins in their trafficking and subcellular localization, we characterized the CXCR4 interactome using an affinity purification coupled to mass spectrometry (AP-MS) strategy. The most abundant protein identified in the CXCR4 interactome is Ephrin B1, a member of the Ephrin protein family that shares several functions with CXCR4, such as the regulation of cell migration and proliferation. Further studies showed that interaction between CXCR4 and Ephrin B1 is direct and enhanced by treating cell with CXCL12. They also indicated that Ephrin B1 prevents CXCR4 N-glycosylation, decreases CXCR4 cell surface expression and consistently inhibits CXCL12-induced CXCR4 coupling to Gi1-3 and the recruitment of {beta}-arrestins 1 and 2. Conversely, Ephrin B1 signals to Erk1,2 through CXCR4 activation and mediates the decrease in Death Receptor 5 expression elicited by intracellular CXCR4. Collectively, these findings identify Ephrin B1 as a key mediator of CXCR4 tumorigenic signaling.

biochemistry↗