Structural Property Prediction
Maurits Dijkstra, Punto Bawono, Isabel Houtkamp, Jose, Gavald\'a-Garci\'a, Mascha Okounev, Robbin Bouwmeester, Bas Stringer, Jaap, Heringa, Sanne Abeln, K. Anton Feenstra, Juami H. M. van Gils

TL;DR
This paper introduces the field of Structural Bioinformatics, focusing on computational techniques for predicting and analyzing protein structures and properties, emphasizing practical applications and machine learning methods.
Contribution
It provides an overview of computational techniques for structural property prediction and explains how to apply machine learning and benchmarking in this context.
Findings
Overview of computational methods for protein structure analysis
Introduction to machine learning applications in structural property prediction
Discussion of cross-validation and benchmarking techniques
Abstract
While many good textbooks are available on Protein Structure, Molecular Simulations, Thermodynamics and Bioinformatics methods in general, there is no good introductory level book for the field of Structural Bioinformatics. This book aims to give an introduction into Structural Bioinformatics, which is where the previous topics meet to explore three dimensional protein structures through computational analysis. We provide an overview of existing computational techniques, to validate, simulate, predict and analyse protein structures. More importantly, it will aim to provide practical knowledge about how and when to use such techniques. We will consider proteins from three major vantage points: Protein structure quantification, Protein structure prediction, and Protein simulation & dynamics. Some structural properties of proteins that are closely linked to their function may be easier…
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Taxonomy
TopicsProtein Structure and Dynamics · Genetics, Bioinformatics, and Biomedical Research · Computational Drug Discovery Methods
