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Biology subjects

Kirkland, A. I.

Publications and source records attributed to Kirkland, A. I..

3 recordsLinked to original sources

Electron diffraction captures high-resolution structures from in vivo protein nanocrystals of Bacillus thurigiensis

Bacillus thuringiensis is one of the most widely used biopesticides worldwide. This is owing to the highly-specific pesticidal-proteins various strains produce in the form of nanocrystals. Structure determination from such crystals remains difficult because their small size makes them unsuitable for conventional X-ray crystallography. Here we explore two emerging (cryo-) electron diffraction techniques, namely Microcrystal electron diffraction and serial electron diffraction, as tools for studying the structures of these crystals. Using the mosquitocidal protein Cry11Aa as an example, we compare electron diffraction with state of the art results obtained with an X-ray free electron laser. Our work demonstrates that electron diffraction is a viable alternative for structure determination from such challenging crystals, matching previous results obtained with X-ray free electron lasers. We present a workflow based on readily available instrumentation enabling structure determination directly from the crystals grown in vivo, unperturbed by dissolution and therefore preserved in their native state.

biophysics↗

Reduction of SEM charging artefacts in native cryogenic biological samples.

Scanning electron microscopy (SEM) of frozen-hydrated biological samples allows imaging of subcellular structures at the mesoscale in their native state. Combined with focused ion beam milling (FIB), serial FIB/SEM can be used to build a 3-dimensional picture of cells and tissues. The correlation of specific regions of interest with cryo-electron microscopy (cryoEM) can additionally enable subsequent high-resolution analysis. However, the adoption of serial FIB/SEM imaging-based methods is limited due to artefacts arising from insulating areas of cryogenically preserved samples. Here, we demonstrate the use of interleaved scanning to reduce charging artefacts, allowing the observation of biological features that otherwise would be masked or perturbed. We apply our method to samples where inherent features are not visible. These examples include membrane contact sites within mammalian cells, visualisation of the degradation compartment in the algae E.gracilis and observation of a network of membranes within different types of axons in an adult mouse cortex. We further propose an alternative scanning method that could also be widely applicable to imaging any non-conductive.

cell biology↗

Liquid phase electron microscopy of bacterial ultrastructure.

Recent advances in liquid phase scanning transmission electron microscopy (LP-STEM) have enabled the study of dynamic biological processes at nanometre resolutions, paving the way for live-cell imaging using electron microscopy. However, this technique is often hampered by the inherent thickness of whole cell samples and damage from electron beam irradiation. These restrictions degrade image quality and resolution, impeding biological interpretation. Here we detail the use of graphene encapsulation, STEM, and energy-dispersive X-ray (EDX) spectroscopy methods to mitigate these issues, providing unprecedented levels of intracellular detail in aqueous specimens. This work demonstrates the potential of LP-STEM to examine and identify internal cellular structures in thick biological samples, in a radiation resistant, gram-positive bacterium, Deinococcus radiodurans using a variety of imaging techniques.

microbiology↗