A parametrized two-domain thermodynamic model explains diverse mutational effects on protein allostery

Author:

Liu Zhuang1ORCID,Gillis Thomas2,Raman Srivatsan234ORCID,Cui Qiang15ORCID

Affiliation:

1. Department of Physics, Boston University

2. Department of Biochemistry, University of Wisconsin

3. Department of Chemistry, University of Wisconsin

4. Department of Bacteriology, University of Wisconsin

5. Department of Chemistry, Boston University

Abstract

New experimental findings continue to challenge our understanding of protein allostery. Recent deep mutational scanning study showed that allosteric hotspots in the tetracycline repressor (TetR) and its homologous transcriptional factors are broadly distributed rather than spanning well-defined structural pathways as often assumed. Moreover, hotspot mutation-induced allostery loss was rescued by distributed additional mutations in a degenerate fashion. Here, we develop a two-domain thermodynamic model for TetR, which readily rationalizes these intriguing observations. The model accurately captures the in vivo activities of various mutants with changes in physically transparent parameters, allowing the data-based quantification of mutational effects using statistical inference. Our analysis reveals the intrinsic connection of intra- and inter-domain properties for allosteric regulation and illustrate epistatic interactions that are consistent with structural features of the protein. The insights gained from this study into the nature of two-domain allostery are expected to have broader implications for other multidomain allosteric proteins.

Publisher

eLife Sciences Publications, Ltd

Reference81 articles.

1. Prediction of allosteric sites and mediating interactions through bond-to-bond propensities;Nature Communications,2016

2. On the nature of allosteric transitions: a plausible model;J Mol Biol,1965

3. Investigation of Changes in Tetracycline Repressor Binding upon Mutations in the Tetracycline Operator;Journal of Chemical and Engineering Data,2014

4. The Transcription Factor Titration Effect Dictates Level of Gene Expression;Cell,2014

5. Allostery and the Monod-Wyman-Changeux model after 50 years;Annual review of biophysics,2012

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