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A Molecular and Structural Mechanism for G Protein-mediated Microtubule Destabilization

机译:G蛋白介导的微管去稳定的分子和结构机理。

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摘要

The heterotrimeric, G protein-coupled receptor-associated G protein, Gαs, binds tubulin with nanomolar affinity and disrupts microtubules in cells and in vitro. Here we determine that the activated form of Gαs binds tubulin with a KD of 100 nm, stimulates tubulin GTPase, and promotes microtubule dynamic instability. Moreover, the data reveal that the α3–β5 region of Gαs is a functionally important motif in the Gαs-mediated microtubule destabilization. Indeed, peptides corresponding to that region of Gαs mimic Gαs protein in activating tubulin GTPase and increase microtubule dynamic instability. We have identified specific mutations in peptides or proteins that interfere with this process. The data allow for a model of the Gαs/tubulin interface in which Gαs binds to the microtubule plus-end and activates the intrinsic tubulin GTPase. This model illuminates both the role of tubulin as an “effector” (e.g. adenylyl cyclase) for Gαs and the role of Gαs as a GTPase activator for tubulin. Given the ability of Gαs to translocate intracellularly in response to agonist activation, Gαs may play a role in hormone- or neurotransmitter-induced regulation of cellular morphology.
机译:异源三聚体,G蛋白偶联受体相关的G蛋白,Gαs,以纳摩尔亲和力结合微管蛋白,破坏细胞和体外的微管。在这里,我们确定激活形式的Gαs以100 nm的KD结合微管蛋白,刺激微管蛋白GTPase,并促进微管动态不稳定。此外,数据表明,Gαs的α3–β5区是Gαs介导的微管去稳定作用中的一个重要功能基序。实际上,对应于Gαs区域的肽模拟Gαs蛋白激活微管蛋白GTP酶并增加微管动态不稳定性。我们已经确定了干扰这一过程的肽或蛋白质中的特定突变。数据允许建立Gαs/微管蛋白界面模型,其中Gαs结合至微管正端并激活内在的微管蛋白GTPase。该模型阐明了微管蛋白作为Gαs的“效应子”(例如腺苷酸环化酶)的作用以及Gαs作为微管蛋白的GTPase激活剂的作用。鉴于Gα能够响应激动剂激活而在细胞内转运,Gα可能在激素或神经递质诱导的细胞形态调节中发挥作用。

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