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首页> 外文期刊>Journal of Molecular Biology >Three-dimensional structure of CAP-gly domain of mammalian dynactin determined by magic angle spinning NMR spectroscopy: Conformational plasticity and interactions with end-binding protein EB1
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Three-dimensional structure of CAP-gly domain of mammalian dynactin determined by magic angle spinning NMR spectroscopy: Conformational plasticity and interactions with end-binding protein EB1

机译:魔角旋转NMR光谱法测定哺乳动物动力蛋白CAP-gly结构域的三维结构:构象可塑性和与末端结合蛋白EB1的相互作用

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摘要

Microtubules and their associated proteins play important roles in vesicle and organelle transport, cell motility and cell division. Perturbation of these processes by mutation typically gives rise to severe pathological conditions. In our efforts to obtain atomic information on microtubule-associated protein/microtubule interactions with the goal to understand mechanisms that might potentially assist in the development of treatments for these diseases, we have determined the three-dimensional structure of CAP-Gly (cytoskeleton- associated protein, glycine-rich) domain of mammalian dynactin by magic angle spinning NMR spectroscopy. We observe two conformations in the β2 strand encompassing residues T43-V44-A45, residues that are adjacent to the disease-associated mutation, G59S. Upon binding of CAP-Gly to microtubule plus-end tracking protein EB1, the CAP-Gly shifts to a single conformer. We find extensive chemical shift perturbations in several stretches of residues of CAP-Gly upon binding to EB1, from which we define accurately the CAP-Gly/EB1 binding interface. We also observe that the loop regions may exhibit unique flexibility, especially in the GKNDG motif, which participates in the microtubule binding. This study in conjunction with our previous reports suggests that conformational plasticity is an intrinsic property of CAP-Gly likely due to its unusually high loop content and may be required for its biological functions.
机译:微管及其相关蛋白在囊泡和细胞器运输,细胞运动和细胞分裂中起重要作用。通过突变对这些过程的干扰通常引起严重的病理状况。为了获得有关微管相关蛋白/微管相互作用的原子信息,并试图了解可能有助于这些疾病的治疗方法的机制,我们确定了CAP-Gly的三维结构(与细胞骨架相关魔角旋转NMR光谱分析哺乳动物dynactin的蛋白质,富含甘氨酸的结构域)。我们在β2链中观察到两个构象,包括残基T43-V44-A45,这些残基与疾病相关突变G59S相邻。在CAP-Gly与微管正末端追踪蛋白EB1结合后,CAP-Gly转移至单个构象体。我们发现,在与EB1结合后,CAP-Gly的多个残基片段中都发生了广泛的化学位移扰动,由此我们可以准确地定义CAP-Gly / EB1的结合界面。我们还观察到,环区域可能表现出独特的柔韧性,尤其是在参与微管结合的GKNDG基序中。这项研究与我们以前的报告一起表明,构象可塑性是CAP-Gly的固有属性,可能是由于其异常高的环含量,并且可能是其生物学功能所必需的。

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