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Wang, Z.-F.

Publications and source records attributed to Wang, Z.-F..

2 recordsLinked to original sources

Cryo-EM structure of an activated GPCR-G protein complex in lipid nanodiscs

G protein coupled receptors (GPCRs) are the largest superfamily of transmembrane proteins and the targets of over 30% of currently marketed pharmaceuticals1,2. Although several structures have been solved for GPCR-G protein complexes3-17, structural studies of the complex in a physiological lipid membrane environment are lacking. Additionally, most previous studies required additional antibodies/nanobodies and/or engineered G proteins for complex stabilization. In the absence of a native complex structure, the underlying mechanism of G protein activation leading to GDP/GTP exchange remains unclear. Here, we report cryo-EM structures of lipid bilayer-bound complexes of neurotensin, neurotensin receptor 1, and Gi1{beta}1{gamma}1 protein in two conformational states, resolved to 4.1 and 4.2 [A] resolution. The structures were determined without any stabilizing antibodies/nanobodies, and thus provide a native-like platform for understanding the structural basis of GPCR-G protein complex formation. Our structures reveal an extended network of protein-protein interactions at the GPCR-G protein interface compared to in detergent micelles, defining roles for the lipid membrane in modulating the structure and dynamics of complex formation, and providing a molecular explanation for the stronger interaction between GPCR and G protein in lipid bilayers. We propose a detailed allosteric mechanism for GDP release, providing new insights into the activation of G proteins for downstream signaling under near native conditions.

molecular biology

A mechanism for sensing of and adaptation to K+ deprivation in plants

Potassium ions (K+) are essential for manifold cellular processes. Organismal K+ homoeostasis requires sensing of K+ availability, efficient uptake and defined distribution. Roots are the organ for K+ uptake in plants and soil K+ availability shapes root growth and architecture1. Important channels and transporters conveying cellular K+ fluxes have been described2,3. Understanding K+ sensing and the mechanisms that orchestrate downstream responses exemplifies how environmental conditions integrate with root development and is essential to advance plant nutrition for sustainable agriculture. Here, we report where plants sense K+ deprivation and how this translates into spatially defined ROS signals to trigger HAK5 K+ uptake transporter induction and accelerated maturation of the Casparian strip (CS) paracellular barrier. We define the organ scale K+ pattern of roots and identify a postmeristematic K+-sensing niche (KSN) defined by rapid K+ decline and Ca2+ signals. We discover a Ca2+-triggered bifurcating low-K+ signalling (LKS) axis in that LK-enhanced CIF peptide signalling reinforces SGN3-LKS4/SGN1 receptor kinase complex activation. As consequence, activation of the NOXs RBOHC and RBOHD conveys transcriptome adaptation including HAK5 induction and accelerated CS maturation superimposed on the RBOHF-executed default CS formation. These mechanisms synchronise developmental differentiation and transcriptome reprogramming for maintaining K+ homoeostasis and optimising nutrient foraging by roots.

plant biology