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Journal article

Combining Experiments and Simulations Using the Maximum Entropy Principle

Edited by Levitt, Michael

From

University of Copenhagen1

Department of Systems Biology, Technical University of Denmark2

Center for Biological Sequence Analysis, Department of Systems Biology, Technical University of Denmark3

Cellular Signal Integration, Center for Biological Sequence Analysis, Department of Systems Biology, Technical University of Denmark4

A key component of computational biology is to compare the results of computer modelling with experimental measurements. Despite substantial progress in the models and algorithms used in many areas of computational biology, such comparisons sometimes reveal that the computations are not in quantitative agreement with experimental data.

The principle of maximum entropy is a general procedure for constructing probability distributions in the light of new data, making it a natural tool in cases when an initial model provides results that are at odds with experiments. The number of maximum entropy applications in our field has grown steadily in recent years, in areas as diverse as sequence analysis, structural modelling, and neurobiology.

In this Perspectives article, we give a broad introduction to the method, in an attempt to encourage its further adoption. The general procedure is explained in the context of a simple example, after which we proceed with a real-world application in the field of molecular simulations, where the maximum entropy procedure has recently provided new insight.

Given the limited accuracy of force fields, macromolecular simulations sometimes produce results that are at not in complete and quantitative accordance with experiments. A common solution to this problem is to explicitly ensure agreement between the two by perturbing the potential energy function towards the experimental data.

So far, a general consensus for how such perturbations should be implemented has been lacking. Three very recent papers have explored this problem using the maximum entropy approach, providing both new theoretical and practical insights to the problem. We highlight each of these contributions in turn and conclude with a discussion on remaining challenges.

Language: English
Publisher: Public Library of Science
Year: 2014
Pages: e1003406
ISSN: 15537358 and 1553734x
Types: Journal article
DOI: 10.1371/journal.pcbi.1003406
ORCIDs: 0000-0002-8257-3827 and 0000-0002-4750-6039

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