低温电子显微
分辨率(逻辑)
分子
粒子(生态学)
单粒子分析
化学
生物分子结构
纳米技术
化学物理
生物系统
蛋白质结构
计算机科学
材料科学
生物
人工智能
生态学
生物化学
气溶胶
有机化学
作者
Takanori Nakane,Abhay Kotecha,Andrija Sente,Greg McMullan,Simonas Masiulis,Patricia M.G.E. Brown,Ioana T. Grigoras,L. Malinauskaitė,Tomas Malinauskas,Jonas Miehling,Tomasz Uchański,Lingbo Yu,Dimple Karia,Evgeniya Pechnikova,Erwin de Jong,Jeroen Keizer,Maarten Bischoff,Jamie McCormack,Peter Tiemeijer,Steven W. Hardwick
出处
期刊:Nature
[Nature Portfolio]
日期:2020-10-21
卷期号:587 (7832): 152-156
被引量:741
标识
DOI:10.1038/s41586-020-2829-0
摘要
The three-dimensional positions of atoms in protein molecules define their structure and their roles in biological processes. The more precisely atomic coordinates are determined, the more chemical information can be derived and the more mechanistic insights into protein function may be inferred. Electron cryo-microscopy (cryo-EM) single-particle analysis has yielded protein structures with increasing levels of detail in recent years1,2. However, it has proved difficult to obtain cryo-EM reconstructions with sufficient resolution to visualize individual atoms in proteins. Here we use a new electron source, energy filter and camera to obtain a 1.7 Å resolution cryo-EM reconstruction for a human membrane protein, the β3 GABAA receptor homopentamer3. Such maps allow a detailed understanding of small-molecule coordination, visualization of solvent molecules and alternative conformations for multiple amino acids, and unambiguous building of ordered acidic side chains and glycans. Applied to mouse apoferritin, our strategy led to a 1.22 Å resolution reconstruction that offers a genuine atomic-resolution view of a protein molecule using single-particle cryo-EM. Moreover, the scattering potential from many hydrogen atoms can be visualized in difference maps, allowing a direct analysis of hydrogen-bonding networks. Our technological advances, combined with further approaches to accelerate data acquisition and improve sample quality, provide a route towards routine application of cryo-EM in high-throughput screening of small molecule modulators and structure-based drug discovery. Advances in electron cryo-microscopy hardware allow proteins to be studied at atomic resolution.
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