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EB1 结构的深入了解及其 C 末端结构域在区分微管末端和晶格中的作用。

Insights into EB1 structure and the role of its C-terminal domain for discriminating microtubule tips from the lattice.

机构信息

Biomolecular Research, Paul Scherrer Institut, 5232 Villigen PSI, Switzerland.

出版信息

Mol Biol Cell. 2011 Aug 15;22(16):2912-23. doi: 10.1091/mbc.E11-01-0017. Epub 2011 Jul 7.

Abstract

End-binding proteins (EBs) comprise a conserved family of microtubule plus end-tracking proteins. The concerted action of calponin homology (CH), linker, and C-terminal domains of EBs is important for their autonomous microtubule tip tracking, regulation of microtubule dynamics, and recruitment of numerous partners to microtubule ends. Here we report the detailed structural and biochemical analysis of mammalian EBs. Small-angle X-ray scattering, electron microscopy, and chemical cross-linking in combination with mass spectrometry indicate that EBs are elongated molecules with two interacting CH domains, an arrangement reminiscent of that seen in other microtubule- and actin-binding proteins. Removal of the negatively charged C-terminal tail did not affect the overall conformation of EBs; however, it increased the dwell times of EBs on the microtubule lattice in microtubule tip-tracking reconstitution experiments. An even more stable association with the microtubule lattice was observed when the entire negatively charged C-terminal domain of EBs was replaced by a neutral coiled-coil motif. In contrast, the interaction of EBs with growing microtubule tips was not significantly affected by these C-terminal domain mutations. Our data indicate that long-range electrostatic repulsive interactions between the C-terminus and the microtubule lattice drive the specificity of EBs for growing microtubule ends.

摘要

末端结合蛋白(EBs)是微管正极端追踪蛋白的保守家族。EBs 的肌钙蛋白同源结构域(CH)、连接区和 C 末端域的协同作用对于其自主的微管尖端追踪、微管动力学的调节以及众多伴侣到微管末端的募集是很重要的。在这里,我们报告了哺乳动物 EBs 的详细结构和生化分析。小角度 X 射线散射、电子显微镜和化学交联结合质谱分析表明,EBs 是具有两个相互作用的 CH 结构域的长形分子,这种排列类似于其他微管和肌动蛋白结合蛋白中看到的。尽管去除带负电荷的 C 末端尾巴不会影响 EBs 的整体构象;然而,在微管尖端追踪重建实验中,它增加了 EBs 在微管晶格上的停留时间。当 EBs 的整个带负电荷的 C 末端结构域被中性的卷曲螺旋结构域取代时,与微管晶格的结合甚至更加稳定。相比之下,这些 C 末端结构域突变对 EBs 与生长中的微管尖端的相互作用没有显著影响。我们的数据表明,C 末端和微管晶格之间的长程静电排斥相互作用驱动 EBs 对生长中的微管末端的特异性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c10e/3154886/ed1f84686875/2912fig1.jpg

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