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Voss, J. M.

Publications and source records attributed to Voss, J. M..

2 recordsLinked to original sources

Near-atomic resolution reconstructions from in situ revitrified cryo samples

We have recently introduced a microsecond time-resolved version of cryo-electron microscopy (cryo-EM) to enable the observation of the fast conformational motions of proteins. Our technique involves locally melting a cryo sample with a laser beam to allow the proteins to undergo dynamics in liquid phase. When the laser is switched off, the sample cools within just a few microseconds and revitrifies, trapping particles in their transient configurations, in which they can subsequently be imaged. We have previously described two alternative implementations of the technique, using either an optical microscope or performing revitrification experiments in situ. Here, we show that it is possible to obtain near-atomic resolution reconstructions from in situ revitrified cryo samples. Moreover, the resulting map is indistinguishable from that obtained from a conventional sample within our spatial resolution. Interestingly, we observe that revitrification leads to a more homogeneous angular distribution of the particles, suggesting that revitrification may potentially be used to overcome issues of preferred particle orientation. SynopsisNear-atomic resolution reconstructions can be obtained from in situ melted and revitrified cryo samples. Revitrification results in a more homogeneous angular distribution.

biochemistry↗

Microsecond Melting and Revitrification of Cryo Samples - Protein Structure and Beam-Induced Motion

We have recently introduced a novel approach to time-resolved cryo-electron microscopy (cryo-EM) that involves melting a cryo sample with a laser beam to allow protein dynamics to briefly occur in liquid, before trapping the particles in their transient configurations by rapidly revitrifying the sample. With a time-resolution of just a few microseconds, this approach is notably fast enough to study domain motions that are typically associated with the activity of proteins, but which have previously remained inaccessible. Here, we add crucial details to the characterization of our method. We show that single-particle reconstructions of apoferritin and cowpea chlorotic mottle virus (CCMV) from revitrified samples are indistinguishable from those in conventional samples, demonstrating that melting and revitrification leaves the particles intact and that they do not undergo structural changes within the spatial resolution afforded by our instrument. We also characterize how rapid revitrification affects the properties of the ice, showing that revitrified samples exhibit comparable amounts of beam-induced motion. Our results pave the way for microsecond time-resolved studies of the conformational dynamics of proteins and open up new avenues to study the vitrification process and address beam-induced specimen movement. SynopsisMicrosecond melting and revitrification of cryo samples preserves the structure of embedded particles. The beam-induced motion of revitrified samples is comparable to that of conventional cryo samples.

biophysics↗