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多价结合和易化扩散以协同方式解释了 Grb2-Sos1 信号复合物的形成。

Multivalent binding and facilitated diffusion account for the formation of the Grb2-Sos1 signaling complex in a cooperative manner.

机构信息

Department of Biochemistry and Molecular Biology and USylvester Braman Family Breast Cancer Institute, Leonard Miller School of Medicine, University of Miami, Miami, Florida 33136, United States.

出版信息

Biochemistry. 2012 Mar 13;51(10):2122-35. doi: 10.1021/bi3000534. Epub 2012 Mar 2.

Abstract

Despite its key role in driving cellular growth and proliferation through receptor tyrosine kinase (RTK) signaling, the Grb2-Sos1 macromolecular interaction remains poorly understood in mechanistic terms. Herein, using an array of biophysical methods, we provide evidence that although the Grb2 adaptor can potentially bind to all four PXψPXR motifs (designated herein S1-S4) located within the Sos1 guanine nucleotide exchange factor, the formation of the Grb2-Sos1 signaling complex occurs with a 2:1 stoichiometry. Strikingly, such bivalent binding appears to be driven by the association of the Grb2 homodimer to only two of four potential PXψPXR motifs within Sos1 at any one time. Of particular interest is the observation that of a possible six pairwise combinations in which S1-S4 motifs may act in concert for the docking of the Grb2 homodimer through bivalent binding, only S1 and S3, S1 and S4, S2 and S4, and S3 and S4 do so, while pairwise combinations of sites S1 and S2 and sites S2 and S3 appear to afford only monovalent binding. This salient observation implicates the role of local physical constraints in fine-tuning the conformational heterogeneity of the Grb2-Sos1 signaling complex. Importantly, the presence of multiple binding sites within Sos1 appears to provide a physical route for Grb2 to hop in a flip-flop manner from one site to the next through facilitated diffusion, and such rapid exchange forms the basis of positive cooperativity driving the bivalent binding of Grb2 to Sos1 with high affinity. Collectively, our study sheds new light on the assembly of a key macromolecular signaling complex central to cellular machinery in health and disease.

摘要

尽管 Grb2-Sos1 大分子相互作用通过受体酪氨酸激酶 (RTK) 信号在驱动细胞生长和增殖方面起着关键作用,但在机械方面仍知之甚少。在此,我们使用一系列生物物理方法提供证据表明,尽管 Grb2 衔接蛋白可能潜在地与 Sos1 鸟苷酸交换因子内的所有四个 PXψPXR 基序(本文指定为 S1-S4)结合,但 Grb2-Sos1 信号复合物的形成以 2:1 的化学计量发生。引人注目的是,这种二价结合似乎是由 Grb2 同源二聚体仅与 Sos1 内的四个潜在 PXψPXR 基序中的两个在任何时间点的关联驱动的。特别有趣的是观察到,在可能的六个成对组合中,S1-S4 基序可能通过二价结合协同作用来对接 Grb2 同源二聚体,只有 S1 和 S3、S1 和 S4、S2 和 S4 以及 S3 和 S4 这样做,而 S1 和 S2 位点和 S2 和 S3 位点的成对组合似乎仅提供单价结合。这一显著观察结果暗示了局部物理约束在微调 Grb2-Sos1 信号复合物的构象异质性中的作用。重要的是,Sos1 内存在多个结合位点似乎为 Grb2 提供了一条物理途径,使其能够通过促进扩散以翻转方式从一个位点跳到另一个位点,这种快速交换构成了正协同作用的基础,从而以高亲和力驱动 Grb2 对 Sos1 的二价结合。总的来说,我们的研究为健康和疾病中细胞机制的关键大分子信号复合物的组装提供了新的认识。

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