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Siebert, C. A.

Publications and source records attributed to Siebert, C. A..

2 recordsLinked to original sources

Cryo-electron tomography sheds light on the elastic nature of the Trypanosoma brucei tripartite attachment complex

Trypanosomes only contain a single mitochondrion per cell. Within that singular mitochondrion, the protist carries a single mitochondrial genome that consists of a complex DNA network, the kinetoplast DNA (kDNA). The replicated kDNA is segregated during cell division by the tripartite attachment complex (TAC), a multi-protein bridge that physically links each daughter kDNA to a basal body (BB). BB movements drive kDNA segregation prior to cell division. How the TAC accommodates constant BB movements while maintaining a stable kDNA anchor throughout the cell cycle has remained unclear. Here we used cryo-electron tomography to image the cytoplasmic part of the TAC in its native context. We resolved the BB, the mitochondrial membranes, and the exclusion zone filaments (EZFs) connecting the BB and pro-BB to the outer mitochondrial membrane (OMM) and quantified the geometry of the region across many cells. EZF lengths spanned 230 to 625 nm in zoid cells and up to 874 nm in NP40-treated cells, and the BB occupied a wide range of positions and orientations relative to the OMM, while the pro-BB sat closer and more constrained. Building on these observations and prior evidence that p197 alone defines the BB-OMM distance, we propose that p197 is a length-variable connector: the length of a tandem array of -helical repeats depends on their relative orientation, and filaments of different lengths coexist at one basal body. How that orientation is set remains open, but such a connector reconciles stable kDNA anchoring with the mechanical demands of BB movement during the cell cycle.

cell biology↗

Cryo-plasma FIB/SEM volume imaging of biological specimens

Serial focussed ion beam scanning electron microscopy (FIB/SEM) enables imaging and assessment of sub-cellular structures on the mesoscale (10 nm to 10 m). When applied to vitrified samples, serial FIB/SEM is also a means to target specific structures in cells and tissues while maintaining constituents hydration shells for in-situ structural biology downstream. However, the application of serial FIB/SEM imaging of non-stained cryogenic biological samples is limited due to low contrast, curtaining and charging artefacts. We address these challenges using a cryogenic plasma FIB/SEM (cryo-pFIB/SEM). We evaluated the choice of plasma ion source and imaging regimes to produce high quality SEM images of a range of different biological samples. Using an automated workflow we produced three dimensional volumes of bacteria, human cells, and tissue, and calculated estimates for their resolution, typically achieving 20 to 50 nm. Additionally, a tag-free tool is needed to drive the application of in situ structural biology towards tissue. The combination of serial FIB/SEM with plasmabased ion sources promises a framework for targeting specific features in bulk-frozen samples (>100 m) to produce lamella for cryogenic electron tomography.

cell biology↗