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Girard-Blanc, C.

Publications and source records attributed to Girard-Blanc, C..

2 recordsLinked to original sources

Investigating the axoneme CCDC40 protein reveals new insights in trypanosome morphogenesis and division

Cilia and flagella contribute to cell morphogenesis in multiple organisms. In the parasite Trypanosoma brucei, the flagellum is attached along the length of the cell body and acts as a guide for cell division, while its motility function is required for the completion of cytokinesis. To tease apart the contributions of flagellum length and motility to trypanosome morphogenesis, we investigated the coiled-coil containing domain 40 (CCDC40 or FAP172) protein. Iterative Ultrastructure Expansion Microscopy (iU-ExM) revealed that CCDC40 is associated to the 96-nm repeats of the trypanosome axoneme. CCDC40 depletion by RNAi leads to loss of components from the dynein regulatory complex, inner dynein arms and radial spokes, resulting in disconnected microtubule doublets and disorganised axoneme structure, abrogating motility and resulting in flagella and cell bodies 2-3 times shorter than normal. We show for the first time that this short flagellum phenotype is associated to slower tubulin incorporation and premature acquisition of the maturation marker FLAM8 but not of the locking protein CEP164C. Surprisingly, these short and immotile trypanosomes grow and divide normally. We discuss the significance of these observations for trypanosome morphogenesis and division.

cell biology↗

Life without heterotrimeric kinesins: trypanosomatids use a combination of homodimeric kinesin-2 motors to drive intraflagellar transport

Heterotrimeric kinesin 2 is the canonical motor protein for anterograde intraflagellar transport (IFT), driving movement of protein complexes towards the tip of cilia and flagella. Here, we show that all members of the Euglenozoa group lack genes for heterotrimeric kinesins and instead possess a variable number of genes for two homodimeric kinesins termed KIN2A and KIN2B. When expressed in vitro, both Trypanosoma brucei kinesins form homodimers and move processively along brain microtubules, KIN2A being faster than KIN2B. Studies in T. brucei and Leishmania mexicana show anterograde and retrograde IFT of both kinesins, with KIN2A travelling throughout the whole length of the flagellum, while KIN2B is concentrated at its base. In the proximal portion of the flagellum, most KIN2B molecules travel without IFT proteins, except for a few particles that are associated with IFT proteins and reach the tip. Surprisingly, the absence of KIN2A has mild effects on IFT and flagellum assembly, whereas KIN2B is essential for both. Investigation of trypanosome flagella deprived of KIN2B revealed that IFT proteins do not access these flagella but that KIN2A can still circulate. We propose a division-of-labour model where KIN2B would be responsible for the import of IFT proteins while KIN2A would ensure most of the anterograde transport.

cell biology↗