Proteochemometric method for pIC50 prediction of Flaviviridae

Author:

Singh DivyeORCID,Mahadik Avani,Surana ShraddhaORCID,Arora PoojaORCID

Abstract

AbstractViruses remain an area of concern despite constant development of antiviral drugs and therapies. One of the contributors among others is the flaviviridae family of viruses. Like other spaces, antiviral peptides (AVP) are gaining importance for studying flaviviridae family. Along with antiviral properties of peptides, information about bioactivity takes it even closer to accurate predictions of peptide capabilities. Experimental identification of bioactivity of each potential peptide is an expensive and time consuming task. Computational methods like Proteochemometric modelling (PCM) are promising for prediction of bioactivity based on peptide and target sequence. The additional edge PCM methods bring in is the aspect of considering both peptide and target properties instead of only looking at peptide properties. In this study, we propose prediction of pIC50 for AVP against flaviviridae family target proteins. The target proteins were manually curated from literature. Here we utilize the PCM descriptors as peptide descriptors, target descriptors and cross term descriptors. We observe taking peptide and target information improves the results qualitatively and gives better pIC50 predictions. The R2 and MAPE values are 0.85 and 8.44 % respectively

Publisher

Cold Spring Harbor Laboratory

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Proteochemometric Method for pIC50 Prediction of Flaviviridae;BioMed Research International;2022-09-15

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