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蛋白质结构建模与设计中的深度学习

Deep Learning in Protein Structural Modeling and Design.

作者信息

Gao Wenhao, Mahajan Sai Pooja, Sulam Jeremias, Gray Jeffrey J

机构信息

Department of Chemical and Biomolecular Engineering, Johns Hopkins University, Baltimore, MD 21218, USA.

Department of Biomedical Engineering, Johns Hopkins University, Baltimore, MD 21218, USA.

出版信息

Patterns (N Y). 2020 Nov 12;1(9):100142. doi: 10.1016/j.patter.2020.100142. eCollection 2020 Dec 11.

Abstract

Deep learning is catalyzing a scientific revolution fueled by big data, accessible toolkits, and powerful computational resources, impacting many fields, including protein structural modeling. Protein structural modeling, such as predicting structure from amino acid sequence and evolutionary information, designing proteins toward desirable functionality, or predicting properties or behavior of a protein, is critical to understand and engineer biological systems at the molecular level. In this review, we summarize the recent advances in applying deep learning techniques to tackle problems in protein structural modeling and design. We dissect the emerging approaches using deep learning techniques for protein structural modeling and discuss advances and challenges that must be addressed. We argue for the central importance of structure, following the "sequence structure function" paradigm. This review is directed to help both computational biologists to gain familiarity with the deep learning methods applied in protein modeling, and computer scientists to gain perspective on the biologically meaningful problems that may benefit from deep learning techniques.

摘要

深度学习正在催化一场由大数据、可获取的工具包和强大计算资源推动的科学革命,影响着包括蛋白质结构建模在内的许多领域。蛋白质结构建模,如从氨基酸序列和进化信息预测结构、设计具有理想功能的蛋白质,或预测蛋白质的性质或行为,对于在分子水平上理解和设计生物系统至关重要。在本综述中,我们总结了应用深度学习技术解决蛋白质结构建模和设计问题的最新进展。我们剖析了使用深度学习技术进行蛋白质结构建模的新兴方法,并讨论了必须解决的进展和挑战。我们遵循“序列-结构-功能”范式,论证了结构的核心重要性。本综述旨在帮助计算生物学家熟悉蛋白质建模中应用的深度学习方法,并帮助计算机科学家了解可能受益于深度学习技术的具有生物学意义的问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dbb0/7733882/fe6c83eeffde/gr1.jpg

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