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通过单颗粒冷冻电子显微镜研究大分子复合物的结构、组装和动力学。

Structure, assembly and dynamics of macromolecular complexes by single particle cryo-electron microscopy.

出版信息

J Nanobiotechnology. 2013;11 Suppl 1(Suppl 1):S4. doi: 10.1186/1477-3155-11-S1-S4. Epub 2013 Dec 10.

Abstract

BACKGROUND

Proteins in their majority act rarely as single entities. Multisubunit macromolecular complexes are the actors in most of the cellular processes. These nanomachines are hold together by weak protein-protein interactions and undergo functionally important conformational changes. TFIID is such a multiprotein complex acting in eukaryotic transcription initiation. This complex is first to be recruited to the promoter of the genes and triggers the formation of the transcription preinitiation complex involving RNA polymerase II which leads to gene transcription. The exact role of TFIID in this process is not yet understood.

METHODS

Last generation electron microscopes, improved data collection and new image analysis tools made it possible to obtain structural information of biological molecules at atomic resolution. Cryo-electron microscopy of vitrified samples visualizes proteins in a fully hydrated, close to native state. Molecular images are recorded at liquid nitrogen temperature in low electron dose conditions to reduce radiation damage. Digital image analysis of these noisy images aims at improving the signal-to-noise ratio, at separating distinct molecular views and at reconstructing a three-dimensional model of the biological particle.

RESULTS

Using these methods we showed the early events of an activated transcription initiation process. We explored the interaction of the TFIID coactivator with the yeast Rap1 activator, the transcription factor TFIIA and the promoter DNA. We demonstrated that TFIID serves as an assembly platform for transient protein-protein interactions, which are essential for transcription initiation.

CONCLUSIONS

Recent developments in electron microscopy have provided new insights into the structural organization and the dynamic reorganization of large macromolecular complexes. Examples of near-atomic resolutions exist but the molecular flexibility of macromolecular complexes remains the limiting factor in most case. Electron microscopy has the potential to provide both structural and dynamic information of biological assemblies in order to understand the molecular mechanisms of their functions.

摘要

背景

大多数蛋白质很少作为单个实体发挥作用。多亚基大分子复合物是大多数细胞过程的参与者。这些纳米机器由弱的蛋白质-蛋白质相互作用结合在一起,并经历功能上重要的构象变化。TFIID 就是这样一种在真核转录起始中起作用的多蛋白复合物。该复合物首先被招募到基因的启动子上,并触发涉及 RNA 聚合酶 II 的转录起始复合物的形成,从而导致基因转录。TFIID 在这个过程中的确切作用尚不清楚。

方法

新一代电子显微镜、改进的数据收集和新的图像分析工具使我们能够以原子分辨率获得生物分子的结构信息。玻璃化样品的冷冻电子显微镜使蛋白质在完全水合、接近天然状态下可视化。分子图像在液氮温度下以低电子剂量条件下记录,以减少辐射损伤。对这些有噪声的图像进行数字图像分析旨在提高信噪比、分离不同的分子视图,并重建生物颗粒的三维模型。

结果

使用这些方法,我们展示了一个激活的转录起始过程的早期事件。我们探索了 TFIID 共激活因子与酵母 Rap1 激活剂、转录因子 TFIIA 和启动子 DNA 的相互作用。我们证明 TFIID 作为瞬时蛋白质-蛋白质相互作用的组装平台,这对于转录起始是必不可少的。

结论

电子显微镜的最新发展为大的大分子复合物的结构组织和动态重排提供了新的见解。存在接近原子分辨率的例子,但大分子复合物的分子灵活性仍然是大多数情况下的限制因素。电子显微镜有可能提供生物组装的结构和动态信息,以了解它们功能的分子机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d65/4028798/8bacf7b3bdf7/1477-3155-11-S1-S4-1.jpg

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