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An overview of the recent advances in cryo-electron microscopy for life sciences

机译:生命科学的低温电子显微镜的最新进展概述

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Cryo-electron microscopy (CryoEM) has superseded X-ray crystallography and NMR to emerge as a popular and effective tool for structure determination in recent times. It has become indispensable for the characterization of large macromolecular assemblies, membrane proteins, or samples that are limited, conformationally heterogeneous, and recalcitrant to crystallization. Besides, it is the only tool capable of elucidating high-resolution structures of macromolecules and biological assemblies in situ . A state-of-the-art electron microscope operable at cryo-temperature helps preserve high-resolution details of the biological sample. The structures can be determined, either in isolation via single-particle analysis (SPA) or helical reconstruction, electron diffraction (ED) or within the cellular environment via cryo-electron tomography (cryoET). All the three streams of SPA, ED, and cryoET (along with subtomogram averaging) have undergone significant advancements in recent times. This has resulted in breaking the boundaries with respect to both the size of the macromolecules/assemblies whose structures could be determined along with the visualization of atomic details at resolutions unprecedented for cryoEM. In addition, the collection of larger datasets combined with the ability to sort and process multiple conformational states from the same sample are providing the much-needed link between the protein structures and their functions. In overview, these developments are helping scientists decipher the molecular mechanism of critical cellular processes, solve structures of macromolecules that were challenging targets for structure determination until now, propelling forward the fields of biology and biomedicine. Here, we summarize recent advances and key contributions of the three cryo-electron microscopy streams of SPA, ED, and cryoET.
机译:冷冻电子显微镜(Cryoem)已取代X射线晶体学和NMR,以作为近来结构测定的一种流行和有效的工具。对于大型大分子组件,膜蛋白或有限,构象异质性和顽固型结晶的样品的表征,它已成为必不可少的。此外,它是唯一能够阐明大分子和生物组件的高分辨率结构的工具。可在冷冻温度上操作的最先进的电子显微镜有助于保留生物样品的高分辨率细节。可以通过单粒子分析(SPA)或螺旋重建,电子衍射(ED)或通过冷冻电子层析成像(Cryoet)在细胞环境中分离确定结构。近来,所有三个水疗中心,ED和冷冻的流(以及亚图平均)都在近期都取得了重大进步。这导致了有关大分子/组件的大小的边界,它们的结构可以确定,以及在分辨率上的原子细节的可视化,对于冷冻的分辨率而言。此外,较大数据集的收集结合了从同一样本进行分类和处理多个构象状态的能力,这提供了蛋白质结构及其功能之间急需的联系。在概述中,这些发展有助于科学家解密关键细胞过程的分子机制,解决了大分子的结构,这些结构是挑战到结构确定目标的挑战,直到现在,推动了生物学和生物医学领域。在这里,我们总结了Spa,Ed和Cryoet的三个冷冻电子显微镜流的最新进展和关键贡献。

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