Gβγ engages PLCβ3 at multiple sites to reorient and facilitate its activation
Isaac J Fisher, Kanishka Senarath, Kennedy Outlaw, Kaushik Muralidharan, Elisabeth E Garland-Kuntz, Michelle M Van Camp, Thomas Komay, Leon F Laskowski, Asuka Inoue, Evi Kostenis, Nevin A Lambert, Angeline M LyonPhospholipase C β (PLCβ) 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 PLCβ isoforms (PLCβ1–4) are activated by Gα q , whereas PLCβ1–3 are activated to varying extents by Gβγ. The binding sites for Gα q on PLCβ are well established, and much has been learned about its mechanism of activation, but comparatively little is known about Gβγ-dependent activation. In this work, we used cryo-electron microscopy single-particle analysis, functional assays, and bioluminescence resonance energy transfer to investigate how Gβγ interacts with PLCβ3 in concert with activated Gα q to regulate phospholipase activity. Gβγ heterodimers bind multiple surfaces of PLCβ3 to promote activation, but alone do not recruit the enzyme to the plasma membrane. Instead, Gβγ facilitates activation by Gα q , most likely by reorienting the phospholipase catalytic site at the membrane to maximize PI(4,5)P2 hydrolysis and downstream Ca 2+ release. Cell-based functional assays demonstrate that Gβγ is required for maximal PLCβ3 activation, even when G q heterotrimers are the sole source of Gβγ. Together, these findings demonstrate that Gβγ acts as a critical positive allosteric modulator that regularly acts in concert with Gα q to activate PLCβ3 at the plasma membrane.