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Human septin–septin interactions as a prerequisite for targeting septin complexes in the cytosol

机译:人类septin-septin相互作用是靶向胞浆中septin复合物的前提

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pSeptins are a cytosolic GTP-binding protein family first characterized in yeast, but gaining increasing recognition as critical protagonists in higher eukaryotic cellular events. Mammalian septins have been associated with cytokinesis and exocytosis, along with contributing to the development of neurological disorders. Ten different septins, divided into four groups, have been identified in mammals, and individual septins are capable of interacting with each other to form macromolecular complexes. The present study characterizes the structural requirements for human septin–septin interactions using a yeast two-hybrid system. We focus on three septins that are highly expressed in platelets and neurons, SEPT4 [previously designated H5, CDCrel-2 (cell-division-control-related-2), PNUTL2], SEPT5 (CDCrel-1, PNUTL1) and SEPT8 (KIAA0202). Each of these three septins contains a characteristic domain structure consisting of unique N- and C-termini, and a central core domain conserved among the family of proteins. The yeast two-hybrid system yielded data consistent with a model where each of the three septins can interact with itself (homotypic assembly) or with one of the other septins (heterotypic assembly). For SEPT5 and SEPT8, the results illustrate a model whereby heterotypic septin assembly is dependent on the conserved central core domain and homotypic interactions require the N- and C-termini of each protein. We also characterized a model in which the proper cellular localization of SEPT5 and SEPT8 requires concomitant expression of both proteins. Co-transfection of SEPT5 and SEPT8 results in both proteins targeted to a vesicular-like location. Therefore the cellular repertoire of human septins has an impact on function by targeting septin macromolecular complexes to specific cellular locations./p
机译:> Septin是最早在酵母中表征的胞质GTP结合蛋白家族,但在高等真核细胞事件中作为关键的主角越来越得到认可。哺乳动物的隔膜已经与胞质分裂和胞吐作用有关,并促进了神经系统疾病的发展。在哺乳动物中已经鉴定出十种不同的Septin,分为四类,各个Septin能够彼此相互作用形成大分子复合物。本研究表征了使用酵母双杂交系统对人类Septin-Septin相互作用的结构要求。我们专注于在血小板和神经元中高度表达的三种Septins,SEPT4 [先前指定为H5,CDCrel-2(与细胞分裂控制相关的2),PNUTL2],SEPT5(CDCrel-1,PNUTL1)和SEPT8(KIAA0202) )。这三种Septin中的每一个都包含由独特的N和C末端组成的特征性结构域结构,以及在蛋白质家族中保守的中央核心结构域。酵母双杂交系统产生的数据与模型相符,在该模型中,三个Septins中的每一个均可与自身相互作用(同型装配)或与其他Septins中的一个相互作用(异型装配)。对于SEPT5和SEPT8,结果说明了一个模型,其中异型Septin组装依赖于保守的中心核心结构域,同型相互作用需要每种蛋白质的N和C末端。我们还表征了一个模型,其中SEPT5和SEPT8的正确细胞定位需要两种蛋白质的同时表达。 SEPT5和SEPT8的共转染导致两种蛋白质都靶向囊泡样位置。因此,通过将Septin大分子复合物靶向特定的细胞位置,人类Septins的细胞组成会影响功能。

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