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利用机器学习模型进行肽-蛋白质相互作用预测。

Leveraging Machine Learning Models for Peptide-Protein Interaction Prediction.

作者信息

Yin Song, Mi Xuenan, Shukla Diwakar

机构信息

Department of Chemical and Biomolecular Engineering, University of Illinois Urbana-Champaign, Urbana, IL 61801, United States.

These authors contributed to the work equally.

出版信息

ArXiv. 2024 Feb 7:arXiv:2310.18249v2.

Abstract

Peptides play a pivotal role in a wide range of biological activities through participating in up to 40% protein-protein interactions in cellular processes. They also demonstrate remarkable specificity and efficacy, making them promising candidates for drug development. However, predicting peptide-protein complexes by traditional computational approaches, such as Docking and Molecular Dynamics simulations, still remains a challenge due to high computational cost, flexible nature of peptides, and limited structural information of peptide-protein complexes. In recent years, the surge of available biological data has given rise to the development of an increasing number of machine learning models for predicting peptide-protein interactions. These models offer efficient solutions to address the challenges associated with traditional computational approaches. Furthermore, they offer enhanced accuracy, robustness, and interpretability in their predictive outcomes. This review presents a comprehensive overview of machine learning and deep learning models that have emerged in recent years for the prediction of peptide-protein interactions.

摘要

肽通过参与细胞过程中高达40%的蛋白质-蛋白质相互作用,在广泛的生物活性中发挥关键作用。它们还表现出显著的特异性和有效性,使其成为药物开发的有前景的候选物。然而,由于计算成本高、肽的柔性性质以及肽-蛋白质复合物的结构信息有限,通过传统计算方法(如对接和分子动力学模拟)预测肽-蛋白质复合物仍然是一个挑战。近年来,可用生物数据的激增推动了越来越多用于预测肽-蛋白质相互作用的机器学习模型的发展。这些模型为应对与传统计算方法相关的挑战提供了有效的解决方案。此外,它们在预测结果中提供了更高的准确性、稳健性和可解释性。本综述全面概述了近年来出现的用于预测肽-蛋白质相互作用的机器学习和深度学习模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6510/10878669/5b33b7fe7ecd/nihpp-2310.18249v2-f0001.jpg

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