Inferring functional units in ion channel pores via relative entropy.

Michael Schmidt, Indra Schroeder, Daniel Bauer, Gerhard Thiel, Kay Hamacher

Journal: European biophysics journal : EBJ 2024;50(1):37-57

PMID: 33523249

Abstract

Coarse-grained protein models approximate the first-principle physical potentials. Among those modeling approaches, the relative entropy framework yields promising and physically sound results, in which a mapping from the target protein structure and dynamics to a model is defined and subsequently adjusted by an entropy minimization of the model parameters. Minimization of the relative entropy is equivalent to maximization of the likelihood of reproduction of (configurational ensemble) observations by the model. In this study, we extend the relative entropy minimization procedure beyond parameter fitting by a second optimization level, which identifies the optimal mapping to a (dimension-reduced) topology. We consider anisotropic network models of a diverse set of ion channels and assess our findings by comparison to experimental results.

Address: Department of Physics, TU Darmstadt, Karolinenpl. 5, 64289, Darmstadt, Germany.; Department of Biology, TU Darmstadt, Schnittspahnstr. 10, 64287, Darmstadt, Germany.; Department of Biology, TU Darmstadt, Schnittspahnstr. 10, 64287, Darmstadt, Germany. [email protected].; Department of Physics, Department of Biology, Department of Computer Science, TU Darmstadt, Schnittspahnstr. 10, 64287, Darmstadt, Germany.
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