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Biology subjects

Mick, S.

Publications and source records attributed to Mick, S..

2 recordsLinked to original sources

Obtaining high-resolution cryo-EM structures using a common LaB6, 120-keV electron microscope equipped with a sub 200-keV optimised direct electron detector.

Cryo-electron microscopy (Cryo-EM) single particle analysis (SPA) has become a major structural biology technique in recent years. High-resolution cryo-EM typically requires higher voltage cryo-TEMs with coherent FEG sources, stable columns, autoloader systems and direct electron detectors. These setups are specialised for Cryo-EM work and are expensive to establish and maintain. More recently the concept of using 100-keV cryo-TEMs has been introduced as a way to make cryo-EM more affordable and hence accessible to a larger group of researchers. So far, the implementation of these 100-keV cryo-TEMs have relied on specialised microscopes with FEG sources as well as more stable optics than usually present on the common 120-keV TEMs. We here explored whether a standard 120-keV TEM, commonly available at many laboratories worldwide, can be upgraded with a direct electron detector and its suitability for high-resolution cryo-EM using a standard side entry cryo-holder. Using this imaging configuration, we were successful in achieving a 2.65[A] reconstruction for standard apoferritin. We were also able to resolve a more challenging small 64kDa protein haemoglobin to 4.33[A]. Furthermore, we were able to solve an asymmetric 153 kDa membrane protein GPCR (M4 muscarinic acid receptor) to a resolution of 4.4[A]. Importantly, all these results were achieved using a standard automated data collection routine implemented through SerialEM, making it feasible to collect large cryo-EM data sets with a side entry cryo-holder. These results showcase a potentially widely accessible solution to obtaining interpretable cryo-EM structures. Furthermore, we envisage that this imaging configuration gives an option for many EM facilities and laboratories to set up a high-quality cryo-EM SPA sample screening capability without the need to procure costly specialised Cryo-TEMs. This could help to considerably lower the economic entry barrier for cryo-EM SPA and contribute to the "democratisation" of cryo-EM.

biophysics↗

High-resolution single particle imaging at 100-200 keV with the Gatan Alpine direct electron detector.

Developments in direct electron detector technology have played a pivotal role in enabling high-resolution structural studies by cryo-EM at 200 and 300 keV. Yet, theory and recent experiments indicate advantages to imaging at 100 keV, energies for which the current detectors have not been optimized. In this study, we evaluated the Gatan Alpine detector, designed for operation at 100 and 200 keV. Compared to the Gatan K3, Alpine demonstrated a significant DQE improvement at these voltages, specifically a ~4-fold improvement at Nyquist at 100 keV. In single-particle cryo-EM experiments, Alpine datasets yielded better than 2 [A] resolution reconstructions of apoferritin at 120 and 200 keV on a ThermoFisher Scientific (TFS) Glacios microscope. We also achieved a ~3.2 [A] resolution reconstruction for a 115 kDa asymmetric protein complex, proving its effectiveness with complex biological samples. In-depth analysis revealed that Alpine reconstructions are comparable to K3 reconstructions at 200 keV, and remarkably, reconstruction from Alpine at 120 keV on a TFS Glacios surpassed all but the 300 keV data from a TFS Titan Krios with GIF/K3. Additionally, we show Alpines capability for high-resolution data acquisition and screening on lower-end systems by obtaining ~3 [A] resolution reconstructions of apoferritin and aldolase at 100 keV and detailed 2D averages of a 55 kDa sample using a side-entry cryo holder. Overall, we show that Gatan Alpine performs well with the standard 200 keV imaging systems and may potentially capture the benefits of lower accelerating voltages, possibly bringing smaller sized particles within the scope of cryo-EM.

biophysics↗