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A GU‑Net‑Based Architecture Predicting Ligand–Protein‑Binding Atoms
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نویسنده
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nazem fatemeh ,ghasemi fahimeh ,fassihi afshin ,rasti reza ,mehri dehnavi alireza
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منبع
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journal of medical signals and sensors - 2023 - دوره : 13 - شماره : 1 - صفحه:1 -10
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چکیده
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Background: the first step in developing new drugs is to find binding sites for a protein structurethat can be used as a starting point to design new antagonists and inhibitors. the methods relyingon convolutional neural network for the prediction of binding sites have attracted much attention.this study focuses on the use of optimized neural network for three‑dimensional (3d) non‑euclidean data. methods: a graph, which is made from 3d protein structure, is fed to the proposed gu‑net model based on graph convolutional operation. the features of each atom are considered as attributes of each node. the results of the proposed gu‑net are compared with a classifier based on random forest (rf). a new data exhibition is used as the input of rf classifier. results: the performance of our model is also examined through extensive experiments on various datasets from other sources. gu‑net could predict the more number of pockets with accurate shape than rf. conclusions: this study will enable future works on a better modeling of protein structures that will enhance knowledge of proteomics and offer deeper insight into drug design process.
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کلیدواژه
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Graph convolutional neural network ,point cloud semantic segmentation ,protein–ligand‑binding sites ,three‑dimensional U‑Net model
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آدرس
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isfahan university of medical sciences, school of advanced technologies in medicine, department of bioelectrics and biomedical engineering, department of bioinformatics and systems biology, iran, isfahan university of medical sciences, school of advanced technologies in medicine, department of bioinformatics andsystems biology, Iran, isfahan university of medical sciences, school of pharmacology and pharmaceutical sciences, department of medicinal chemistry, Iran, university of isfahan, faculty of engineering, department of biomedical engineering, Iran, isfahan university of medical sciences, medical image and signal processing research center, department of bioelectrics and biomedical engineering, Iran
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Authors
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