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van den Hoek, H.

Publications and source records attributed to van den Hoek, H..

3 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↗

In situ architecture of the ciliary base reveals the stepwise assembly of IFT trains

The cilium is an antenna-like organelle that performs numerous cellular functions, including motility, sensing, and signaling. The base of the cilium contains a selective barrier that regulates the entry of large intraflagellar transport (IFT) trains, which carry cargo proteins required for ciliary assembly and maintenance. However, the native architecture of the ciliary base and the process of IFT train assembly remain unresolved. Here, we use in situ cryo-electron tomography to reveal native structures of the transition zone region and assembling IFT trains at the ciliary base. We combine this direct cellular visualization with ultrastructure expansion microscopy to describe the front-to-back stepwise assembly of IFT trains: IFT-B forms the backbone, onto which IFT-A, then dynein-1b, and finally kinesin-2 sequentially bind before entry into the cilium. One Sentence SummaryNative molecular structure of the ciliary transition zone and hierarchical order of IFT assembly visualized within Chlamydomonas cells.

cell biology↗

The architecture of the centriole cartwheel-containing region revealed by cryo-electron tomography

Centrioles are evolutionarily conserved barrels of microtubule triplets that form the core of the centrosome and the base of the cilium. In the proximal region of the centriole, nine microtubule triplets attach to each other via A-C linkers and encircle a central cartwheel structure, which directs the early events of centriole assembly. While the crucial role of the proximal region in centriole biogenesis has been well documented in many species, its native architecture and evolutionary conservation remain relatively unexplored. Here, using cryo-electron tomography of centrioles from four evolutionarily distant species, including humans, we report on the architectural diversity of the centriolar proximal cartwheel-bearing region. Our work reveals that the cartwheel central hub, previously reported to have an 8.5 nm periodicity in Trichonympha, is constructed from a stack of paired rings with an average periodicity of [~]4 nm. In all four examined species, cartwheel inner densities are found inside the hubs ring-pairs. In both Paramecium and Chlamydomonas, the repeating structural unit of the cartwheel has a periodicity of 25 nm and consists of three ring-pairs with 6 radial spokes emanating and merging into a single bundle that connects to the triplet microtubule via the pinhead. Finally, we identified that the cartwheel is indirectly connected to the A-C linker through a flexible triplet-base structure extending from the pinhead. Together, our work provides unprecedented evolutionary insights into the architecture of the centriole proximal region, which underlies centriole biogenesis.

cell biology↗