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SxIP 结合破坏了 EB1 的组成性同源二聚体界面并稳定了 EB1 单体。

SxIP binding disrupts the constitutive homodimer interface of EB1 and stabilizes EB1 monomer.

机构信息

School of Chemistry, Indian Institute of Science Education and Research, Thiruvananthapuram, Kerala, India.

School of Biology, Indian Institute of Science Education and Research, Thiruvananthapuram, Kerala, India.

出版信息

Biophys J. 2021 May 18;120(10):2019-2029. doi: 10.1016/j.bpj.2021.03.004. Epub 2021 Mar 16.

Abstract

SxIP is a microtubule tip localizing signal found in many +TIP proteins that bind to the hydrophobic cavity of the C-terminal domain of end binding protein 1 (EB1) and then positively regulate the microtubule plus-end tracking of EBs. However, the exact mechanism of microtubule activation of EBs in the presence of SxIP signaling motif is not known. Here, we studied the effect of SxIP peptide on the native conformation of EB1 in solution. Using various NMR experiments, we found that SxIP peptide promoted the dissociation of natively formed EB1 dimer. We also discovered that I224A mutation of EB1 resulted in an unfolded C-terminal domain, which upon binding with the SxIP motif folded to its native structure. Molecular dynamics simulations also confirmed the relative structural stability of EB1 monomer in the SxIP bound state. Residual dipolar couplings and heteronuclear NOE analysis suggested that the binding of SxIP peptide at the C-terminal domain of EB1 decreased the dynamics and conformational flexibility of the N-terminal domain involved in EB1-microtubule interaction. The SxIP-induced disruption of the dimeric interactions in EB1, coupled with the reduction in conformational flexibility of the N-terminal domain of EB1, might facilitate the microtubule association of EB1.

摘要

SxIP 是一种存在于许多 +TIP 蛋白中的微管尖端定位信号,它与末端结合蛋白 1(EB1)的 C 端结构域的疏水性腔结合,然后正向调节 EB1 的微管末端追踪。然而,在 SxIP 信号基序存在的情况下,EB1 被微管激活的确切机制尚不清楚。在这里,我们研究了 SxIP 肽对 EB1 天然构象的影响。使用各种 NMR 实验,我们发现 SxIP 肽促进了天然形成的 EB1 二聚体的解离。我们还发现,EB1 的 I224A 突变导致 C 端结构域展开,当与 SxIP 基序结合时,折叠到其天然结构。分子动力学模拟也证实了 EB1 单体在 SxIP 结合状态下的相对结构稳定性。残差偶极耦合和异核 NOE 分析表明,SxIP 肽在 EB1 的 C 端结构域的结合降低了参与 EB1-微管相互作用的 N 端结构域的动力学和构象灵活性。EB1 中二聚体相互作用的 SxIP 诱导破坏,加上 EB1 的 N 端结构域构象灵活性的降低,可能促进了 EB1 与微管的结合。

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