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Shuttle, C. G.

Publications and source records attributed to Shuttle, C. G..

2 recordsLinked to original sources

Multimodal intrinsic activation of GPCRs in ultrastable plasma membrane nanodomains

G protein-coupled receptors (GPCRs) mediate many physiological functions and are key targets in drug development1-3. A long-held tenet of molecular pharmacology is that GPCRs can spontaneously sample preexisting active conformations. This concept is pivotal to our understanding of ligand pharmacology4, however, direct evidence supporting it has only been obtained with reconstituted receptors5-12. Here, we introduce a method for quantitatively imaging the intrinsic activation probability of GPCRs directly at the plasma membrane of live cells, utilizing fluorescent conformational biosensors13,14. Our findings unveil a remarkable spatial multimodality in intrinsic activation probability, with a significant majority (up to 99%) of plasma membrane-expressed receptors showing negligible spontaneous activation. In contrast, the remaining minority of receptors exhibits spontaneous activation up to 22-fold higher than previously estimated. Experiments and theoretical calculations revealed that receptors diffuse into and out of ultralong-lived ([~]5 minutes) nanodomains where the local membrane curvature allosterically enhances activation in the absence and presence of ligands. Extensive testing across five prototypic GPCRs indicates spatial nanoscale multimodality is ubiquitous, but varying in magnitude depending on the receptor and cell type. Upending conventional wisdom, this study reveals that drug efficacy is not a constant number but a spatiotemporal function {varepsilon} (x, y, z, t) whose properties define and multiplex the signaling potency and efficacy of ternary complexes of GPCRs and likely other plasma membrane-receptors. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=59 SRC="FIGDIR/small/582451v1_ufig1.gif" ALT="Figure 1"> View larger version (19K): org.highwire.dtl.DTLVardef@e4680borg.highwire.dtl.DTLVardef@16aaebcorg.highwire.dtl.DTLVardef@f5df52org.highwire.dtl.DTLVardef@18a5ea_HPS_FORMAT_FIGEXP M_FIG C_FIG GPCR spontaneous activation and intrinsic efficacy are not uniform across the plasma membrane but exhibit ultralong-lived spatial multimodality. Spatial variations in the curvature and composition of the plasma membrane, lead to the emergence of ultralong-lived nanodomains with contrasting physicochemical properties that allosterically regulate GPCR conformations. This results in a multimodal landscape of intrinsic efficacy{epsilon} (x, y, z, t) that ultimately governs cell signaling. XY scalebar: 500 nm. Z-range: 100 nm.

biophysics↗

Regulation of the mammalian-brain V-ATPase via ultra-slow mode-switching

Summary paragraphVacuolar-type adenosine triphosphatases (V-ATPases)1-3 are electrogenic rotary mechanoenzymes structurally related to F-type ATP synthases4,5. They hydrolyze ATP to establish electrochemical proton gradients for a plethora of cellular processes1,3. In neurons, the loading of all neurotransmitters into synaptic vesicles is energized by ~1 V-ATPase molecule per synaptic vesicle6,7. To shed light into this bona fide single-molecule biological process, we investigated electrogenic proton pumping by single mammalian-brain V-ATPases, using individual synaptic vesicles fused with immobilized liposomes. We show V-ATPases do not pump continuously in time, as hypothesized by observing the rotation of bacterial homologs8 and assuming strict ATP/proton coupling. Instead, they stochastically switch between three novel ultra-long-lived proton-pumping, inactive, and proton-leaky modes. Upending conventional wisdom, direct observation of pumping revealed that physiologically relevant concentrations of ATP do not regulate the intrinsic pumping rate. Instead, ATP regulates V-ATPase activity via the switching probability of the proton-pumping mode. In contrast, electrochemical proton gradients regulate the pumping rate and the switching of the pumping and inactive modes. This work reveals and emphasises the mechanistic and biological importance of mode-switching in protein regulation.

biophysics↗