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Chirality of the cytoskeleton in the origins of cellular asymmetry

机译:细胞不对称起源中细胞骨架的手性

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摘要

Self-assembly of two important components of the cytoskeleton of eukaryotic cells, actin microfilaments and microtubules (MTs) results in polar filaments of one chirality. As is true for bacterial flagella, in actin microfilaments, screw direction is important for assembly processes and motility. For MTs, polar orientation within the cell is paramount. The alignment of these elements in the cell cytoplasm gives rise to emergent properties, including the potential for cell differentiation and specialization. Complex MTs with a characteristic chirality are found in basal bodies and centrioles; this chirality is preserved in cilia. In motile cilia, it is reflected in the direction of the effective stroke. The positioning of the basal body or cilia on the cell surface depends on polarity proteins. In evolution, survival depends on global polarity information relayed to the cell in part by orientation of the MT and actin filament cytoskeletons and the chirality of the basal body to determine left and right coordinates within a defined anterior-posterior cell and tissue axis.
机译:真核细胞的细胞骨架的两个重要组成部分,肌动蛋白微丝和微管(MTs)的自组装导致一种手性的极丝。与细菌鞭毛一样,在肌动蛋白微丝中,螺旋方向对于组装过程和运动性很重要。对于MT,电池内的极性方向至关重要。这些元素在细胞质中的排列会产生新出现的特性,包括细胞分化和特化的潜力。在基体和中心体中发现具有特征性手性的复杂MT。这种手性保留在纤毛中。在活动性纤毛中,它反映在有效冲程的方向上。基体或纤毛在细胞表面上的定位取决于极性蛋白。在进化中,存活取决于部分通过MT和肌动蛋白丝细胞骨架的方向以及基体的手性确定传递给细胞的整体极性信息,以确定在前后前后细胞和组织轴内的左右坐标。

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