A neurodevelopmental disorder mutation locks G proteins in the transitory pre-activated state.

Knight, Kevin M; Krumm, Brian E; Kapolka, Nicholas J; Ludlam, W Grant; Cui, Meng; Mani, Sepehr; Prytkova, Iya; Obarow, Elizabeth G et al. · Nat Commun · 2024

basic_science · Level V

Where this comes from

Abstract

Many neurotransmitter receptors activate G proteins through exchange of GDP for GTP. The intermediate nucleotide-free state has eluded characterization, due largely to its inherent instability. Here we characterize a G protein variant associated with a rare neurological disorder in humans. Gα<sub>o</sub><sup>K46E</sup> has a charge reversal that clashes with the phosphate groups of GDP and GTP. As anticipated, the purified protein binds poorly to guanine nucleotides yet retains wild-type affinity for G protein βγ subunits. In cells with physiological concentrations of nucleotide, Gα<sub>o</sub><sup>K46E</sup> forms a stable complex with receptors and Gβγ, impeding effector activation. Further, we demonstrate that the mutant can be easily purified in complex with dopamine-bound D2 receptors, and use cryo-electron microscopy to determine the structure, including both domains of Gα<sub>o</sub>, without nucleotide or stabilizing nanobodies. These findings reveal the molecular basis for the first committed step of G protein activation, establish a mechanistic basis for a neurological disorder, provide a simplified strategy to determine receptor-G protein structures, and a method to detect high affinity agonist binding in cells.

Medical subject headings