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Atomic structure of the vimentin central α-helical domain and its implications for intermediate filament assembly

机译:波形蛋白中央α-螺旋结构域的原子结构及其对中间丝组装的影响

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摘要

Together with actin filaments and microtubules, intermediate filaments (IFs) are the basic cytoskeletal components of metazoan cells. Over 80 human diseases have been linked to mutations in various IF proteins to date. However, the filament structure is far from being resolved at the atomic level, which hampers rational understanding of IF pathologies. The elementary building block of all IF proteins is a dimer consisting of an α-helical coiled-coil (CC) “rod” domain flanked by the flexible head and tail domains. Here we present three crystal structures of overlapping human vimentin fragments that comprise the first half of its rod domain. Given the previously solved fragments, a nearly complete atomic structure of the vimentin rod has become available. It consists of three α-helical segments (coils 1A, 1B, and 2) interconnected by linkers (L1 and L12). Most of the CC structure has a left-handed twist with heptad repeats, but both coil 1B and coil 2 also exhibit untwisted, parallel stretches with hendecad repeats. In the crystal structure, linker L1 was found to be α-helical without being involved in the CC formation. The available data allow us to construct an atomic model of the antiparallel tetramer representing the second level of vimentin assembly. Although the presence of the nonhelical head domains is essential for proper tetramer stabilization, the precise alignment of the dimers forming the tetramer appears to depend on the complementarity of their surface charge distribution patterns, while the structural plasticity of linker L1 and coil 1A plays a role in the subsequent IF assembly process.
机译:与肌动蛋白丝和微管一起,中间丝(IFs)是后生细胞的基本细胞骨架成分。迄今为止,已经有80多种人类疾病与各种IF蛋白的突变有关。但是,灯丝结构远未在原子水平上得到解决,这妨碍了对IF病理的合理理解。所有IF蛋白的基本组成部分是一个二聚体,由位于柔性头域和尾域两侧的α-螺旋卷曲螺旋(CC)“杆”域组成。在这里,我们介绍了重叠的人类波形蛋白片段的三个晶体结构,它们构成了其杆域的前半部分。给定先前解决的碎片,波形蛋白棒的几乎完整的原子结构已变得可用。它由通过连接器(L1和L12)互连的三个α螺旋段(线圈1A,1B和2)组成。大部分CC结构的左旋扭曲都带有七残基重复序列,但是线圈1B和线圈2都显示出未加捻的平行拉伸,并带有七十进制重复序列。在晶体结构中,发现接头L1为α-螺旋,而没有参与CC的形成。现有数据使我们能够构建代表波形蛋白装配第二级的反平行四聚体的原子模型。尽管非螺旋头部结构域的存在对于适当的四聚体稳定至关重要,但形成四聚体的二聚体的精确排列似乎取决于其表面电荷分布模式的互补性,而接头L1和线圈1A的结构可塑性起着作用在随后的IF组装过程中。

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