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Curtis, W. A.

Publications and source records attributed to Curtis, W. A..

3 recordsLinked to original sources

Overcoming Preferred Orientation in Cryo-EM With Ultrasonic Excitation During Vitrification

Preferred particle orientation remains a frequently encountered problem in cryo-electron microscopy that arises when proteins adsorb to the air-water interface in only a limited number of orientations. This issue can significantly increase the data acquisition time required to reach a desired resolution or even make it impossible to obtain a reconstruction altogether. Here, we show that preferred orientation can be overcome by continuously exciting the sample with ultrasonic waves during vitrification. Our experiments suggest that mechanical oscillations induced in the sample support continuously shake proteins loose from the air-water interface, thereby scrambling their orientations. The simple, physical nature of this mechanism should make it applicable to a wide range of proteins. Since our method can be easily implemented in existing vitrification devices, we expect it to find widespread adoption.

biophysics↗

Cryo-EM Sample Preparation with Soft-Landing and Laser Flash Melting

The preparation of cryo-EM samples by soft-landing mass spectrometry promises to significantly simplify sample optimization, which has remained an important bottleneck in single-particle cryo-electron microscopy (cryo-EM). However, only compacted configurations are observed after soft-landing since the proteins are dehydrated in the process. Here, we demonstrate that proteins can be returned to their native state by depositing a layer of amorphous ice and briefly flash melting the sample to rehydrate the soft-landed proteins. Melting with a 30 {micro}s laser pulse creates a broad ensemble of partially rehydrated conformations. However, a subset of particles recovers their native configuration. This allows us to propose strategies to fully rehydrate the entire ensemble and brings routine sample preparation by soft-landing mass spectrometry within reach. Finally, the experiments also expand the toolbox of microsecond time-resolved cryo-EM for initiating a broader range of protein dynamics.

biophysics↗

Ultrathin Liquid Cells for Microsecond Time-Resolved Cryo-EM

Microsecond time-resolved cryo-electron microscopy promises to significantly advance our understanding of protein function by rendering cryo-electron microscopy (cryo-EM) fast enough to observe proteins at work. This emerging technique involves flash melting a cryo sample with a laser beam to provide a brief time window during which dynamics are initiated. When the laser is switched off, the sample revitrifies, arresting the proteins in their transient configurations. However, observations have so far been limited to tens of microseconds only, due to the instability of the thin liquid film under laser irradiation. Here, we seal samples between two ultrathin, vapor-deposited silicon dioxide membranes to extend the observation window by an order of magnitude. These membranes not only allow for reconstructions with near-atomic spatial resolution, but can also be used to eliminate preferred particle orientation. Finally, we perform a time-resolved temperature jump experiment on the 50S ribosomal subunit that provides new insights into the conformational landscape of the L1 stalk. Our experiments significantly expand the capabilities of microsecond time-resolved cryo-EM and promise to bridge the gap to the millisecond timescale, which can already be addressed with traditional approaches.

biochemistry↗