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Identifying Pupylation Proteins and Sites by Incorporating Multiple Methods.


ABSTRACT: Pupylation is an important posttranslational modification in proteins and plays a key role in the cell function of microorganisms; an accurate prediction of pupylation proteins and specified sites is of great significance for the study of basic biological processes and development of related drugs since it would greatly save experimental costs and improve work efficiency. In this work, we first constructed a model for identifying pupylation proteins. To improve the pupylation protein prediction model, the KNN scoring matrix model based on functional domain GO annotation and the Word Embedding model were used to extract the features and Random Under-sampling (RUS) and Synthetic Minority Over-sampling Technique (SMOTE) were applied to balance the dataset. Finally, the balanced data sets were

SUBMITTER: Qiu WR 

PROVIDER: S-EPMC9088680 | biostudies-literature | 2022

REPOSITORIES: biostudies-literature

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