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Biology subjects

Koh, A. F.

Publications and source records attributed to Koh, A. F..

3 recordsLinked to original sources

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↗

Structural and quantum chemical basis for OCP-mediated quenching of phycobilisomes

Cyanobacteria employ large antenna complexes called phycobilisomes (PBS) for light harvesting. However, intense light triggers non-photochemical quenching, where the Orange Carotenoid Protein (OCP) binds to PBS, dissipating excess energy as heat. The mechanism of efficiently transferring energy from phycocyanobilins in PBS to canthaxanthin in OCP remains insufficiently understood. Using advanced cryogenic-electron microscopy, we unveiled the OCP-PBS complex structure at 1.6-2.1 [A] resolution, showcasing its inherent flexibility. Employing multiscale quantum chemistry, we disclosed the quenching mechanism. Identifying key protein residues, we clarified how canthaxanthins transition dipole moment in its lowest-energy dark state becomes large enough for efficient energy transfer from phycocyanobilins. Our energy transfer model offers a detailed understanding of the atomic determinants of light harvesting regulation and antenna architecture in cyanobacteria. One sentence summaryHigh-resolution cryo-EM structure of the OCP-PBS complex reveals intrinsic motions and enables the atomic simulation of the quenching mechanism

biophysics↗

High-resolution cryo-electron microscopy of the human CDK-activating kinase for structure-based drug design

Rational design of next-generation therapeutics can be facilitated by high-resolution structures of drug targets bound to small-molecule inhibitors. However, application of structure-based methods to macromolecules refractory to crystallisation has been hampered by the often-limiting resolution and throughput of cryogenic electron microscopy (cryo-EM). Here, we use high-resolution cryo-EM to determine structures of the CDK-activating kinase, a master regulator of cell growth and division, in its free and nucleotide-bound states and in complex with 14 inhibitors at up to 1.8 [A] resolution. Our structures provide detailed insight into inhibitor interactions and networks of water molecules in the active site of cyclin- dependent kinase 7. Our data support a previously proposed mechanism contributing to inhibitor selectivity, thereby providing the basis for rational design of next-generation therapeutics. Additionally, our results establish a methodological framework for the use of high-resolution cryo-EM in structure-based drug design.

molecular biology↗