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深度学习在理解基因调控中的应用。

Applications of deep learning in understanding gene regulation.

机构信息

Computer Science Program, Computer, Electrical and Mathematical Sciences and Engineering (CEMSE) Division, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Kingdom of Saudi Arabia.

KAUST Computational Bioscience Research Center (CBRC), King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Kingdom of Saudi Arabia.

出版信息

Cell Rep Methods. 2023 Jan 11;3(1):100384. doi: 10.1016/j.crmeth.2022.100384. eCollection 2023 Jan 23.

Abstract

Gene regulation is a central topic in cell biology. Advances in omics technologies and the accumulation of omics data have provided better opportunities for gene regulation studies than ever before. For this reason deep learning, as a data-driven predictive modeling approach, has been successfully applied to this field during the past decade. In this article, we aim to give a brief yet comprehensive overview of representative deep-learning methods for gene regulation. Specifically, we discuss and compare the design principles and datasets used by each method, creating a reference for researchers who wish to replicate or improve existing methods. We also discuss the common problems of existing approaches and prospectively introduce the emerging deep-learning paradigms that will potentially alleviate them. We hope that this article will provide a rich and up-to-date resource and shed light on future research directions in this area.

摘要

基因调控是细胞生物学的一个核心课题。组学技术的进步和组学数据的积累为基因调控研究提供了比以往任何时候都更好的机会。出于这个原因,深度学习作为一种数据驱动的预测建模方法,在过去十年中已经成功地应用于该领域。在本文中,我们旨在对基因调控的代表性深度学习方法进行简要而全面的概述。具体来说,我们讨论和比较了每种方法的设计原则和使用的数据集,为希望复制或改进现有方法的研究人员提供了参考。我们还讨论了现有方法的常见问题,并前瞻性地介绍了可能缓解这些问题的新兴深度学习范例。我们希望本文能够提供一个丰富而最新的资源,并为该领域的未来研究方向提供启示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e975/9939384/2f4d661c8103/gr1.jpg

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