脊椎动物肌球蛋白I和II的差异调控。

K Collins, P Matsudaira
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引用次数: 32

摘要

细胞运动事件需要细胞骨架的运动。肌动蛋白为基础的运动是由机械酶肌球蛋白催化的,肌动蛋白以atp依赖的方式向肌动蛋白丝的倒钩端转移。有两个亚类肌球蛋白具有不同的结构和功能:传统的丝状肌球蛋白(肌球蛋白II)和单体肌球蛋白I。脊椎动物非肌肉肌球蛋白I和II在体外作为类似的肌动蛋白马达,催化几乎相同的肌动蛋白激活的MgATP水解和运动。这两种酶的功能多样化是由它们的不同调控引起的。钙和原肌球蛋白激活脊椎动物非骨骼肌肌球蛋白II蛋白的MgATP水解和运动,抑制脊椎动物(刷缘)肌球蛋白I。刷缘肌球蛋白I的活性和调控提供了对肌球蛋白机械酶的保守和独特特征的深入了解,并提示了肌球蛋白I和肌球蛋白II的功能如何在脊椎动物细胞中分裂。刷边肌球蛋白I作为一种酶也有助于我们理解运动的分子机制。
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Differential regulation of vertebrate myosins I and II.

Cell motility events require movement of the cytoskeleton. Actin-based movement is catalyzed by the mechanoenzyme myosin, which translocates toward the barbed end of actin filaments in an ATP-dependent fashion. There are two subclasses of myosin with different structures and functions: conventional filamentous myosin (myosin II) and monomeric myosin I. Vertebrate non-muscle myosins I and II function as similar actin motors in vitro, catalyzing virtually identical actin-activated MgATP hydrolysis and motility. The functional diversification of these two enzymes results from their differential regulation. Calcium and tropomyosin, which activate the MgATP hydrolysis and motility of vertebrate non-skeletal muscle myosin II proteins, inhibit vertebrate (brush border) myosin I. The activities and regulation of brush border myosin I provide insight into conserved and unique features of the myosin mechanoenzymes and suggest how the functions of myosins I and II are divided in vertebrate cells. Brush border myosin I as an enzyme also contributes to our understanding of the molecular mechanism of motility.

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