Inferential Structure Determination

Author:

Rieping Wolfgang1,Habeck Michael1,Nilges Michael1

Affiliation:

1. Unité de Bioinformatique Structurale, Institut Pasteur, CNRS URA 2185, 25-28 rue du Docteur Roux, 75724 Paris CEDEX 15, France.

Abstract

Macromolecular structures calculated from nuclear magnetic resonance data are not fully determined by experimental data but depend on subjective choices in data treatment and parameter settings. This makes it difficult to objectively judge the precision of the structures. We used Bayesian inference to derive a probability distribution that represents the unknown structure and its precision. This probability distribution also determines additional unknowns, such as theory parameters, that previously had to be chosen empirically. We implemented this approach by using Markov chain Monte Carlo techniques. Our method provides an objective figure of merit and improves structural quality.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

Reference26 articles.

1. S. Macura, R. R. Ernst, Mol. Phys.41, 95 (1980).

2. A. T. Brünger, M. Nilges, Q. Rev. Biophys.26, 49 (1993).

3. R. T. Cox, Am. J. Phys.14, 1 (1946).

4. Probability Theory: The Logic of Science 2003

5. Materials and methods are available as supporting material on Science Online.

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