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冷冻电镜的二级结构检测和结构建模。

Secondary Structure Detection and Structure Modeling for Cryo-EM.

机构信息

Department of Biological Sciences, Purdue University, West Lafayette, IN, USA.

Department of Computer Science, Purdue University, West Lafayette, IN, USA.

出版信息

Methods Mol Biol. 2025;2870:341-355. doi: 10.1007/978-1-0716-4213-9_17.

Abstract

Rapid advancements in cryogenic electron microscopy (cryo-EM) have revolutionized the field of structural biology by enabling the determination of complex macromolecular structures at unprecedented resolutions. When cryo-EM density maps have a resolution around 3 Å, the atomic structure can be modeled manually. However, as the resolution decreases, analyzing these density maps becomes increasingly challenging. For modeling structures in lower resolution maps, deep learning can be used to identify structural features in the maps to assist in structure modeling.Here, we present a suite of deep learning-based tools developed by our lab that enable structural biologists to work with cryo-EM maps of a wide range of resolutions. For cryo-EM maps at near-atomic resolution (5 Å or better), DeepMainmast automatically models all-atom structures by tracing the main chain from local map features of amino acids and atoms detected by deep learning; DAQ score quantifies map-model fit and indicates potential misassignments in protein models. In intermediate resolution maps (5-10 Å), Emap2sec and Emap2sec+ can accurately detect protein secondary structures and nucleic acids. These tools and more are available at our web server: https://em.kiharalab.org/ .

摘要

低温电子显微镜(cryo-EM)技术的快速发展通过在前所未有的分辨率下确定复杂的大分子结构,彻底改变了结构生物学领域。当 cryo-EM 密度图的分辨率达到 3Å 左右时,可以手动对原子结构进行建模。然而,随着分辨率的降低,分析这些密度图变得越来越具有挑战性。为了在较低分辨率的图谱中进行建模,可以使用深度学习来识别图谱中的结构特征,以辅助结构建模。在这里,我们展示了一套由我们实验室开发的基于深度学习的工具,使结构生物学家能够处理各种分辨率的 cryo-EM 图谱。对于接近原子分辨率(5Å 或更好)的 cryo-EM 图谱,DeepMainmast 通过从氨基酸和由深度学习检测到的原子的局部图谱特征追踪主链,自动对全原子结构进行建模;DAQ 评分量化图谱-模型拟合,并指出蛋白质模型中的潜在错误分配。在中等分辨率图谱(5-10Å)中,Emap2sec 和 Emap2sec+可以准确检测蛋白质二级结构和核酸。这些工具以及更多工具可在我们的网页服务器上获得:https://em.kiharalab.org/

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