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Seeley, L. T.

Publications and source records attributed to Seeley, L. T..

2 recordsLinked to original sources

Membrane proteins retain native architecture through native ESI and soft-landing

Native MS offers a clear picture of membrane protein stoichiometry and interactions, but it lacks direct structural insights at high resolution. Here, we examine the extent to which solution-phase structure and architecture can be retained after native, soft-landing electrospray ion beam deposition (ESIBD) by interrogating several membrane-protein complexes of diverse folds and oligomeric states by cryoEM. The overall protein architectures with secondary structure motifs can be observed after gas-phase transfer, soft landing, and embedding in amorphous ice. Notably, we determined the structure of the ammonium transporter AmtB at sub-3 [A] resolution. It is nearly identical to the structure of the plunge-frozen control and even shows an extended C-terminal segment of AmtB, a dynamic region absent in the solution-phase structure. Our analysis shows that detergent adducts preserve membrane protein structure in vacuum by minimising destabilization of solvent-exposed regions and stabilization through additional polar contacts in vacuo. Molecular dynamics (MD) simulations support these results, suggesting that a monolayer shell of surfactant adducts avoids destabilization driven by unshielded polar residues and disruption of hydrogen bond networks. Overall, our findings provide a structural framework for integrating native MS with cryo-EM showing that gas-phase transfer and surfactant stabilisation preserves key architectural features and high-resolution structure of membrane proteins.

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↗