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Mihaylov, D. B.

Publications and source records attributed to Mihaylov, D. B..

2 recordsLinked to original sources

GABAA receptor gating imaged on the millisecond timescale

Type-A {gamma}-aminobutyric receptors (GABAARs) are fast pentameric ligand gated ion channels (pLGICs)1-5. Within a millisecond, saturating agonist concentrations trigger activity bursts consisting of high-frequency fluctuations between conductive and non-conductive states6,7. These can last for tens to hundreds of milliseconds until, stochastically, receptors adopt stable, long-lived, desensitised conformations2,8,9. This highly dynamic process, known as gating, controls transient passages of chloride ions across plasma membranes to enable neurotransmission and other fundamental processes in animal physiology10-12. The conformational transitions inside activity bursts, inferred from electrophysiology, have remained inaccessible to structural biology investigation. Here we describe the gating motions of three GABAA receptor variants imaged within the first 10 milliseconds of agonist application by cryogenic electron microscopy (cryo-EM)13. We illustrate how activation and desensitisation proceed through multiple asymmetric states, supported by major secondary, tertiary and quaternary structural rearrangements, and demonstrate that the same gating principles apply to both homomeric and heteromeric GABAARs. Furthermore, we show that cholesterol and phospholipids stabilise newly formed inter-subunit interfaces and obstruct channel pores in short-lived desensitised states, while phosphatidylinositol 4,5-bisphosphate (PIP2) precludes the opening of both 1{beta}3 and 1{beta}3{gamma}2 GABAAR channels. Our results provide a novel framework to interpret decades of electrophysiology observations and suggest a broadly applicable approach to investigate mechanistically the vast arrays of physiological and pharmacological modulators of GABAARs5,14 and other fast neurotransmitter receptors15,16. Moreover, the subunit interfaces and lipid-binding pockets that form and disappear during GABAAR gating provide new opportunities to discover modulators with improved specificity and therapeutic properties. One sentence summarySingle-particle cryo-EM was used to explore the dynamic conformational landscape of three human GABAA receptor variants within the first 10 milliseconds of interaction with their neurotransmitter agonists.

neuroscience↗

Sub-3 A resolution protein structure determination by single-particle cryo-EM at 100 keV

Cryo-electron microscopy (cryo-EM) has revolutionized structural biology by providing high-resolution insights into biological macromolecules. Here, we present sub-3 [A] resolution structures determined using the 100 keV Tundra cryogenic transmission electron microscope (cryo-TEM), equipped with the newly developed Falcon C direct electron detector (DED). Our results demonstrate that this lower voltage microscope, when combined with advanced electron optics and detectors, can achieve high-resolution reconstructions that were previously only attainable with higher voltage systems. The implementation of an extreme-brightness field emission gun (XFEG) and an SP-TWIN objective lens significantly enhanced the spatial and temporal coherence of the system. Furthermore, the semi-automated sample loader minimized contamination and drift, allowing extended data collection sessions without manual intervention. The high detective quantum efficiency (DQE) of Falcon C further improved the signal-to-noise ratio, which is critical for achieving high-resolution structures. We validated the performance of this microscope by determining the structures of various biological samples, including apoferritin, T20S proteasome, GABAA receptor, haemoglobin, and human transthyretin ranging in size from 440 kDa to 50 kDa. The highest resolutions achieved were 2.1 [A] for apoferritin, 2.7 [A] for the 20S proteasome, 2.8 [A] for the GABAA receptor, 5.0 [A] for haemoglobin, and 3.5 [A] for transthyretin. We also explored a larger specimen, a 3.9 MDa Adeno-associated virus (AAV9) capsid and resolved it a 2.8 [A]. This work highlights the potential of 100 keV TEMs to make high-resolution cryo-EM more accessible to the structural biology community. Furthermore, it sets a precedent for the use of lower voltage TEMs in routine cryo-EM studies, not only for screening grids for single particle analysis but also for achieving high-resolution structures of protein samples.

biophysics↗