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Brabet, I.

Publications and source records attributed to Brabet, I..

2 recordsLinked to original sources

Distinct atypical chemokine receptor 1 determinants underlie bacterial toxins recognition and pore formation

Atypical chemokine receptor 1 (ACKR1) is one of the most promiscuous receptors in the human chemokine system, engaging structurally diverse chemokines through a conformationally flexible N-terminal tail. This same interface is exploited by pathogens, including Plasmodium vivax and Staphylococcus aureus (SA), via a compact sulfotyrosine code. Among pathogenic proteins recognizing ACKR1, the SA leukocidin pair HlgAB is a notable exception. HlgAB-mediated pore formation is only weakly competed by chemokines, the Duffy binding protein, or antibodies targeting the receptor's N-terminus, leaving open how HlgAB engage ACKR1. Combining structural biology approaches with cell-based assays, we show that HlgA and HlgB engage ACKR1 sulfated N-terminus with distinct affinities and site hierarchies, with a single higher-affinity site for sulfated tyrosine 41 present in HlgA but absent in HlgB. Unexpectedly, this N-terminal engagement is dispensable for pore formation; productive lysis instead requires a separate interaction between the toxins and ACKR1 extracellular vestibule. These results define a two-step recognition mechanism, toxin capture by the sulfotyrosine N-terminus followed by vestibule-dependent pore formation, and extend the view that ACKR1 promiscuity arises from distributed, ligand-specific use of multiple receptor surfaces rather than a single adaptable interface.

biochemistry↗

Non-canonical internalization mechanisms of mGlu receptors

Cell surface density of G protein-coupled receptors (GPCRs) is tightly regulated through constitutive and agonist-induced internalization. Whereas the mechanisms of constitutive internalization remain elusive, agonist-induced internalization is accepted to involve receptor phosphorylation by GPCR kinases (GRKs), {beta}-arrestin binding and AP2 recruitment, targeting receptors to clathrin-coated pits. Dimeric class C metabotropic glutamate (mGlu1 to 8) receptors regulate synaptic transmission but their internalization process is ambiguous. Here, we used diffusion-enhanced energy transfer (DERET) to decipher their internalization kinetics. We showed that all mGlu receptors are constitutively internalized. However, only mGlu1, 5 and 3 homodimers are agonist-induced internalized, that require neither GRKs, nor {beta}-arrestins. In contrast, the constitutive internalization involves only {beta}-arrestins. This systematic study further illustrates how different class C receptors are relative to most other GPCRs, revealing non-canonical internalization mechanisms. These insights in mGlu receptor dynamics will help promoting the therapeutic action of drugs targeting mGlu receptors.

neuroscience↗