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Senarath, K.

Publications and source records attributed to Senarath, K..

2 recordsLinked to original sources

Gβγ engages PLCβ3 at multiple sites to reorient and facilitate its activation

Phospholipase C {beta} (PLC{beta}) enzymes are activated by heterotrimeric G protein subunits, increasing hydrolysis of phosphatidylinositol-4,5-bisphosphate (PI(4,5)P2) at the plasma membrane. All four human PLC{beta} isoforms (PLC{beta}1-4) are activated by Gq, while PLC{beta}1-3 are activated to varying extents by G{beta}{gamma}. The binding sites for Gq on PLC{beta} are well-established and much has been learned about its mechanism of activation, but comparatively little is known about G{beta}{gamma}-dependent activation. In this work, we used cryo-electron microscopy (cryo-EM) single particle analysis (SPA), functional assays, and bioluminescence resonance energy transfer (BRET) to investigate how G{beta}{gamma} interacts with PLC{beta}3 in concert with activated Gq to regulate phospholipase activity. G{beta}{gamma} heterodimers bind multiple surfaces of PLC{beta}3 to promote activation but alone do not recruit the enzyme to the plasma membrane. Instead, G{beta}{gamma} facilitates activation by Gq, most likely by reorienting the phospholipase catalytic site at the membrane to maximize PI(4,5)P2 hydrolysis and downstream Ca2+ release. Cell-based functional assays demonstrate that G{beta}{gamma} is required for maximal PLC{beta}3 activation even when Gq heterotrimers are the sole source of G{beta}{gamma}. Together, these findings demonstrate that G{beta}{gamma} acts as a critical positive allosteric modulator that regularly acts in concert with Gq to activate PLC{beta}3 at the plasma membrane.

biochemistry↗

Inefficient Endocytosis Limits Heterotrimeric G Protein Abundance on Endosomes

Classical G protein-coupled receptor (GPCR) signaling takes place in response to extracellular stimuli and involves receptors and heterotrimeric G proteins located at the plasma membrane. It has recently been established that GPCR signaling can also take place from intracellular membrane compartments, including endosomes that contain internalized receptors and ligands. While the mechanisms of GPCR endocytosis are well understood, it is not clear how well internalized receptors are supplied with G proteins. To address this gap we use gene editing, confocal microscopy, and bioluminescence resonance energy transfer to study the distribution and trafficking of endogenous G proteins. We show here that constitutive endocytosis is sufficient to supply newly internalized endocytic vesicles with 20-30% of the G protein density found at the plasma membrane. We find that G proteins are present on early, late, and recycling endosomes, are abundant on lysosomes, but are virtually undetectable on the endoplasmic reticulum, mitochondria, and the medial Golgi apparatus. Receptor activation does not change heterotrimer abundance on endosomes. Our findings provide a subcellular map of endogenous G protein distribution, suggest that G proteins may be partially excluded from nascent endocytic vesicles, and are likely to have implications for GPCR signaling from endosomes and other intracellular compartments.

pharmacology and toxicology↗