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Length-dependent disassembly maintains four different flagellar lengths in Giardia

机译:长度依赖性拆卸在吉亚迪亚保持四种不同的鞭毛长度

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摘要

With eight flagella of four different lengths, the parasitic protist Giardia is an ideal model to evaluate flagellar assembly and length regulation. To determine how four different flagellar lengths are maintained, we used live-cell quantitative imaging and mathematical modeling of conserved components of intraflagellar transport (IFT)-mediated assembly and kinesin-13-mediated disassembly in different flagellar pairs. Each axoneme has a long cytoplasmic region extending from the basal body, and transitions to a canonical membrane-bound flagellum at the ‘flagellar pore’. We determined that each flagellar pore is the site of IFT accumulation and injection, defining a diffusion barrier functionally analogous to the transition zone. IFT-mediated assembly is length-independent, as train size, speed, and injection frequencies are similar for all flagella. We demonstrate that kinesin-13 localization to the flagellar tips is inversely correlated to flagellar length. Therefore, we propose a model where a length-dependent disassembly mechanism controls multiple flagellar lengths within the same cell.
机译:寄生物质吉亚迪亚有八个不同长度的八个鞭毛,是评估鞭打装配和长度调节的理想模型。为了确定如何维持四种不同的鞭毛长度,我们使用了在不同的旗杆对中的肠内颗粒传输(IFT)介导的组件(IFT)介导的组件和Kinesin-13介导的拆卸中的Live-Cell定量成像和数学建模。每个轴突中的每个轴突都具有从基体延伸的长细胞质区域,并且在“鞭毛孔”中转变为规范膜结合的鞭毛。我们确定每个鞭毛孔隙是IFT累积和注射的部位,限定了与过渡区类似的漫射屏障。 IFT介导的组件长度无关,作为列车尺寸,速度和喷射频率与所有鞭毛相似。我们证明了鞭毛提示的Kinesin-13本地化与鞭毛长度相反。因此,我们提出了一种模型,其中长度相关的拆卸机制控制在同一小区内的多个鞭毛长度。

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