Search bioRxiv⌕ Search

Biology subjects

Sys, J.

Publications and source records attributed to Sys, J..

2 recordsLinked to original sources

Structural dynamics underlying agonist activation of a GLP-1R-Gs precoupled complex

G-protein-coupled receptors (GPCRs) act as allosteric transmembrane signalling machines, generating distinct cellular responses depending on the conformational states induced by ligand binding. The glucagon-like peptide-1 receptor (GLP-1R), a class B GPCR central to insulin secretion and body-weight regulation, is a key therapeutic target for obesity-associated metabolic disease. Here, we used hydrogen-deuterium exchange mass spectrometry to characterize ligand-evoked structural dynamics within a pre-coupled GLP-1R-Gs protein complex. Non-peptide agonists Chu-128 and danuglipron elicited overlapping dynamic perturbation profiles, with distinct drug-specific effects within the transmembrane bundle. In contrast, the natural GLP-1 hormone produced a weaker stabilizing effect on receptor backbone dynamics, while its inactive metabolite exerted opposing localised destabilization. Notably, both peptides uniquely modulated the highly flexible G-protein switch III loop, a key mediator of downstream signalling. These findings pinpoint areas where structural dynamics shape agonist efficacy and facilitate functional dynamics-integrated drug discovery of non-peptide agonists. SignificanceThe development of non-peptide agonists of the glucagon-like peptide-1 receptor (GLP-1R) represents a major advance in metabolic therapeutics, addressing key limitations of current peptide-based incretin therapies while enabling improved control over receptor signalling and pharmacokinetic properties. The recent FDA approval of a first-in-class small-molecule oral GLP-1R agonist, LY3502970, highlights the translational potential of this approach. However, the molecular basis by which distinct ligands modulate GLP-1R conformational dynamics and signalling remains poorly understood. Here we report how non-peptide agonists (Chu-128 and danuglipron) and endogenous GLP-1 peptide and its inactive metabolite shape the structural dynamics of a pre-coupled GLP-1R-Gs complex, revealing patterns linked to receptor activation. Our findings provide insights that guide the rational design of next-generation GLP-1R therapeutics.

biochemistry↗

A myristoyl switch at the plasma membrane triggers cleavage and oligomerization of Mason-Pfizer monkey virus matrix protein

For most retroviruses, including HIV, association with the plasma membrane (PM) promotes the assembly of immature particles, which occurs simultaneously with budding and maturation. In these viruses, maturation is initiated by oligomerization of polyprotein precursors. In contrast, several retroviruses, such as Mason-Pfizer monkey virus (M-PMV), assemble in the cytoplasm into immature particles that are transported across the PM. Therefore, protease activation and specific cleavage must not occur until the preassembled particle interacts with the PM. This interaction is triggered by a bipartite signal consisting of a cluster of basic residues in the matrix (MA) domain of Gag polyprotein and a myristoyl moiety N-terminally attached to MA. Here, we provide evidence that myristoyl exposure from the MA core and its insertion into the PM occurs in M-PMV. By a combination of experimental methods, we show that this results in a structural change at the C-terminus of MA allowing efficient cleavage of MA from the downstream region of Gag. This suggests that, in addition to the known effect of the myristoyl switch of HIV-1 MA on the multimerization state of Gag and particle assembly, the myristoyl switch may have a regulatory role in initiating sequential cleavage of M-PMV Gag in immature particles.

molecular biology↗