2026

Pathogenic Gαo Mutants Drive Dominant GPCR Coupling in GNAO1 Encephalopathies.

FASEB journal : official publication of the Federation of American Societies for Experimental Biology Larasati YA, de Meritens CR, Stoeber M, Katanaev VL, Solis GP
阅读原文 PDF DOI PubMed

组成图示

示意图生成中

传感器类型

检测对象

检测原理

检测灵敏度

效应效果

传感器的构成

中文摘要

英文摘要

Heterozygous mutations in GNAO1, which encodes the Gαo subunit of heterotrimeric G proteins, cause a spectrum of neurodevelopmental disorders ranging from early-onset epileptic encephalopathy to dystonia. Although the mechanisms underlying disease dominance remain incompletely understood, some functional disruptions in Gαo mutants have been described. Intriguingly, several Gαo variants have been independently reported to dominantly engage G protein-coupled receptors (GPCRs) or to sequester Gβγ-two seemingly incompatible mechanisms inferred from distinct, indirect biosensor assays. To clarify this apparent contradiction, we developed a split-YFP-based bimolecular fluorescence complementation (BiFC) assay to directly visualize receptor-Go protein complexes at the plasma membrane. Using this system, we found that severe Gαo variants fail to disengage from activated Gi/o-coupled GPCRs, thereby preventing downstream receptor phosphorylation and endocytosis. By contrast, milder dystonia-linked mutants showed near-normal receptor internalization and only minor phosphorylation defects. These findings establish dominant GPCR coupling as a molecular hallmark of severe GNAO1 encephalopathies and point to split-YFP BiFC as a robust platform for probing mutant G protein behavior in genetic disease.

关键词