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Stroobants, A.

Publications and source records attributed to Stroobants, A..

2 recordsLinked to original sources

MISO: Microfluidic protein isolation enables single particle cryo-EM structure determination from a single cell colony

Single particle cryo-EM enables reconstructing near-atomic or even atomic resolution 3D maps of proteins by visualizing thousands to a few million purified protein particles embedded in nanometer- thick vitreous ice. This corresponds to picograms of purified protein, which can potentially be isolated from a few thousand cells. Hence, cryo-EM holds the potential of one of the most sensitive analytical methods that deliver a high-resolution protein structure as a readout. In practice, more than a million times more starting biological material is required to prepare cryo-EM grids. To close the gap, we developed a micro isolation (MISO) method that combines microfluidics-based protein purification with cryo-EM grid preparation. We validated the method on soluble bacterial and eukaryotic membrane proteins. We showed that MISO enables protein structure determination starting from below one microgram of a target protein and going from cells to cryo-EM grids within a few hours. This scales down the purification by a factor of a few hundred to a few thousand and opens possibilities for the structural characterization of hitherto inaccessible proteins.

biophysics↗

Time-resolved cryo-EM using a combination of droplet microfluidics with on-demand jetting

Using single particle cryogenic electron microscopy (cryo-EM) high-resolution structures of proteins in different conformations can be reconstructed. Protein function often involves transient functional conformations, which can be resolved using time-resolved cryo-EM (trEM). In trEM, reactions are arrested after a defined delay time by rapid vitrification of protein solution on the EM grid. Despite the increasing interest in trEM among the cryo-EM community, making trEM samples with a time resolution below 100 ms remains challenging. Here we report the design and the realization of a time-resolved cryo-plunger that combines a droplet-based microfluidic mixer with a laser-induced generator of microjets that allows rapid initiation of reaction and rapid plunge-freezing of cryo-EM grids. Using this approach, a time resolution of 5 ms was achieved and the protein density map was reconstructed to a spatial resolution of 2.1 [A]. We performed trEM experiments on GroEL:GroES chaperonin complex, these resolved the kinetics of the complex formation and visualized putative short-lived conformations of GroEL-ATP complex.

biophysics↗