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Biology subjects

Rose, S. L.

Publications and source records attributed to Rose, S. L..

3 recordsLinked to original sources

Anaerobic time-resolved serial crystallography captures CO dissociation and rebinding in oxygen-sensitive -hydrogenase

Redox-active, oxygen-sensitive metalloenzymes catalyze key reactions in biological energy conversion and small-molecule activation. Understanding their mechanisms requires structural characterization of transient catalytic intermediates. Time-resolved serial crystallography (TR-SX) enables direct visualization of protein dynamics during catalysis under near-physiological conditions. Its application to oxygen-sensitive enzymes has remained challenging because strict anaerobic conditions must be maintained throughout sample preparation and data collection. Here, we establish an anaerobic room-temperature serial crystallography workflow for the oxygen-sensitive [FeFe]-hydrogenase CpI and demonstrate its applicability by determining a room-temperature structure of the CO-inhibited Hox-CO state and following inhibitory CO dissociation and rebinding on the millisecond timescale via TR-SX. The presented room-temperature Hox-CO structure closely resembles previous cryogenic models and shows no detectable evidence of oxygen-induced degradation or significant radiation damage. Time-resolved measurements reveal no detectable structural rearrangements accompanying CO dissociation and rebinding beyond displacement and return of the inhibitory ligand, indicating a rigid catalytic architecture that may facilitate rapid catalysis. The presented workflow enables time-resolved structural studies of oxygen-sensitive metalloenzymes under physiologically relevant conditions and opens the way to direct visualization of catalytic intermediates in redox enzymes.

biochemistry↗

Visuospatial coding by theta oscillations in human hippocampus

The hippocampus has been proposed to support visual processing and perception, challenging longstanding accounts that emphasize navigation or declarative memory. A key prediction of visual-processing accounts is that the hippocampus should exhibit similar visuospatial coding properties to those of higher-order visual neocortical areas, such as sensitivity to the size of visual stimuli and contralateral visual field biases. We tested for these properties using intracranial EEG to measure hippocampal neural activity during a retinotopic mapping task. The hippocampus exhibited characteristic slow ([~]2 Hz) and fast ([~]8 Hz) theta oscillations throughout the task. Fast theta was responsive to the presence but not the amount of visual stimulation. In contrast, slow theta did not generally respond to stimulus presence but scaled with the size of the visual stimulus, consistent with larger receptive fields. Slow theta also showed a contralateral bias, an effect that was specific to the right hippocampus. None of these effects were attributable to microsaccades or performance of the concurrent vigilance task. These findings provide electrophysiological evidence for visual field coding by human hippocampus, supporting accounts of hippocampal function that emphasize its role atop the visual hierarchy. Visual processing of this kind may combine with self-motion, memory, and other signals to support the broader spatial and mnemonic functions with which hippocampal theta oscillations have long been associated.

neuroscience↗

CryoRhodopsins: a comprehensive characterization of a new clade of microbial rhodopsins from cold environments

Microbial rhodopsins are omnipresent on Earth, however the vast majority of them remain uncharacterized. Here we describe a new rhodopsin group from cold-adapted organisms and cold environments, such as glaciers, denoted as CryoRhodopsins (CryoRs). Our data suggest that CryoRs have dual functionality switching between inward transmembrane proton translocation and photosensory activity, both of which can be modulated with UV light. CryoR1 exhibits two subpopulations in the ground state, which upon light activation lead to transient photocurrents of opposing polarities. A distinguishing feature of the group is the presence of a buried arginine residue close to the cytoplasmic face of its members. Combining single-particle cryo-electron microscopy and X-ray crystallography with the rhodopsin activation by light, we demonstrate that the arginine stabilizes a UV-absorbing intermediate of an extremely slow CryoRhodopsin photocycle. Together with extensive spectroscopic characterization, our investigations on CryoR1 and CryoR2 proteins reveal mechanisms of photoswitching in the newly identified group and demonstrate principles of the adaptation of these rhodopsins to low temperatures.

biophysics↗