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The kinesin–tubulin complex: considerations in structural and functional complexity

机译:驱动蛋白-微管蛋白复合物:结构和功能复杂性的考虑

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Abstract: The ability of cells to respond to external cues by appropriately manipulating their internal environment requires a dynamic microtubule cytoskeleton that is facilitated by associated kinesin motor interactions. The evolutionary adaptations of kinesins and tubulins when merged generate a highly adaptable communication and infrastructure cellular network that is important to understanding specialized cell functions, human disease, and disease therapies. Here, we review the state of the field in the complex relationship of kinesin–tubulin interactions. We propose 12 mechanistic specializations of kinesins. In one category, referred to as sortability, we describe how kinesin interactions with tubulin isoforms, isotypes, or posttranslationally modified tubulins contribute to diverse cellular roles. Fourteen kinesin families have previously been described. Here, we illustrate the great depth of functional complexity that is possible in members within a single kinesin family by mechanistic specialization through discussion of the well-studied Kinesin-14 family. This includes new roles of Kinesin-14 in regulating supramolecular structures such as the microtubule-organizing center γ-tubulin ring complex of centrosomes. We next explore the value of an improved mechanistic understanding of kinesin–tubulin interactions in regard to human development, disease mechanisms, and improving treatments that target kinesin–tubulin complexes. The ability to combine the current kinesin nomenclature along with a more precisely defined kinesin and tubulin molecular toolbox is needed to support more detailed exploration of kinesin–tubulin interaction mechanisms including functional uniqueness, redundancy, or adaptations to new roles upon cell specialization, and to thereby accelerate applications in human health.
机译:摘要:细胞通过适当地操纵其内部环境来响应外部线索的能力需要动态的微管细胞骨架,而相关的驱动蛋白运动相互作用则促进了这种动态微管的细胞骨架。驱动蛋白和微管蛋白融合后的进化适应性产生了高度适应性的通信和基础设施细胞网络,这对于理解专门的细胞功能,人类疾病和疾病疗法非常重要。在这里,我们回顾了驱动蛋白与微管蛋白相互作用的复杂关系领域的状况。我们提出了12种驱动蛋白的机制专业化知识。在称为可分类性的一类中,我们描述了驱动蛋白与微管蛋白同种型,同种型或翻译后修饰的微管蛋白的相互作用如何促进多种细胞作用。先前已经描述了十四种驱动蛋白家族。在这里,我们通过对深入研究的Kinesin-14家族的讨论,通过机械化专业化说明了单个kinesin家族中成员可能具有的功能复杂性的深度。这包括Kinesin-14在调节超分子结构(如中心体的微管组织中心γ-微管蛋白环复合物)中的新作用。接下来,我们将探讨对人的发展,疾病机理以及针对靶蛋白-微管蛋白复合物的治疗方法进行改进的对肌钙蛋白-微管蛋白相互作用的机械理解的价值。需要将当前的驱动蛋白命名法与更精确定义的驱动蛋白和微管蛋白分子工具箱相结合的能力,以支持对驱动蛋白-微管蛋白相互作用机制的更详细探索,包括功能独特性,冗余性或在细胞专业化后适应新角色,从而加速在人类健康中的应用。

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