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ISLAND: In-Silico Prediction of Proteins Binding Affinity Using Sequence Descriptors
November 22, 2017 ยท Entered Twilight ยท ๐ arXiv.org
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Repo contents: README.md, llc.py
Authors
Wajid Arshad Abbasi, Fahad Ul Hassan, Adiba Yaseen, Fayyaz Ul Amir Afsar Minhas
arXiv ID
1711.10540
Category
q-bio.QM
Cross-listed
cs.LG
Citations
3
Venue
arXiv.org
Repository
https://github.com/foxtrotmike/LLC
โญ 7
Last Checked
29 days ago
Abstract
Determination of binding affinity of proteins in the formation of protein complexes requires sophisticated, expensive and time-consuming experimentation which can be replaced with computational methods. Most computational prediction techniques require protein structures which limit their applicability to protein complexes with known structures. In this work, we explore sequence based protein binding affinity prediction using machine learning. Our paper highlights the fact that the generalization performance of even the state of the art sequence-only predictor of binding affinity is far from satisfactory and that the development of effective and practical methods in this domain is still an open problem. We also propose a novel sequence-only predictor of binding affinity called ISLAND which gives better accuracy than existing methods over the same validation set as well as on external independent test dataset. A cloud-based webserver implementation of ISLAND and its Python code are available at the URL: http://faculty.pieas.edu.pk/fayyaz/software.html#island.
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