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A simple spatial extension to the extended connectivity interaction features for binding affinity prediction

Authors :
Orhobor, Oghenejokpeme I
Rehim, Abbi Abdel
Lou, Hang
Ni, Hao
King, Ross D
Orhobor, Oghenejokpeme I. [0000-0003-1178-611X]
King, Ross D. [0000-0001-7208-4387]
Apollo - University of Cambridge Repository
Orhobor, Oghenejokpeme I [0000-0003-1178-611X]
King, Ross D [0000-0001-7208-4387]
King, Ross [0000-0001-7208-4387]
Publication Year :
2022
Publisher :
Apollo - University of Cambridge Repository, 2022.

Abstract

Peer reviewed: True<br />The representation of the protein-ligand complexes used in building machine learning models play an important role in the accuracy of binding affinity prediction. The Extended Connectivity Interaction Features (ECIF) is one such representation. We report that (i) including the discretized distances between protein-ligand atom pairs in the ECIF scheme improves predictive accuracy, and (ii) in an evaluation using gradient boosted trees, we found that the resampling method used in selecting the best hyperparameters has a strong effect on predictive performance, especially for benchmarking purposes.

Details

Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....65d19a906389e8ad67c84e1f3d990665
Full Text :
https://doi.org/10.17863/cam.84264