Literature DB >> 25877596

Essential roles of protein-solvent many-body correlation in solvent-entropy effect on protein folding and denaturation: comparison between hard-sphere solvent and water.

Hiraku Oshima1, Masahiro Kinoshita1.   

Abstract

In earlier works, we showed that the entropic effect originating from the translational displacement of water molecules plays the pivotal role in protein folding and denaturation. The two different solvent models, hard-sphere solvent and model water, were employed in theoretical methods wherein the entropic effect was treated as an essential factor. However, there were similarities and differences in the results obtained from the two solvent models. In the present work, to unveil the physical origins of the similarities and differences, we simultaneously consider structural transition, cold denaturation, and pressure denaturation for the same protein by employing the two solvent models and considering three different thermodynamic states for each solvent model. The solvent-entropy change upon protein folding/unfolding is decomposed into the protein-solvent pair (PA) and many-body (MB) correlation components using the integral equation theories. Each component is further decomposed into the excluded-volume (EV) and solvent-accessible surface (SAS) terms by applying the morphometric approach. The four physically insightful constituents, (PA, EV), (PA, SAS), (MB, EV), and (MB, SAS), are thus obtained. Moreover, (MB, SAS) is discussed by dividing it into two factors. This all-inclusive investigation leads to the following results: (1) the protein-water many-body correlation always plays critical roles in a variety of folding/unfolding processes; (2) the hard-sphere solvent model fails when it does not correctly reproduce the protein-water many-body correlation; (3) the hard-sphere solvent model becomes problematic when the dependence of the many-body correlation on the solvent number density and temperature is essential: it is not quite suited to studies on cold and pressure denaturating of a protein; (4) when the temperature and solvent number density are limited to the ambient values, the hard-sphere solvent model is usually successful; and (5) even at the ambient values, however, the many-body correlation plays significant roles in the β-sheet formation and argument of relative stabilities of very similar structures of a protein. These results are argued in detail with respect to the four physically insightful constituents and the two factors mentioned above. The relevance to the absence or presence of hydrogen-bonding properties in the solvent is also discussed in detail.

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Year:  2015        PMID: 25877596     DOI: 10.1063/1.4917075

Source DB:  PubMed          Journal:  J Chem Phys        ISSN: 0021-9606            Impact factor:   3.488


  5 in total

1.  Statistical Thermodynamics for Actin-Myosin Binding: The Crucial Importance of Hydration Effects.

Authors:  Hiraku Oshima; Tomohiko Hayashi; Masahiro Kinoshita
Journal:  Biophys J       Date:  2016-06-07       Impact factor: 4.033

Review 2.  Accurate and rapid calculation of hydration free energy and its physical implication for biomolecular functions.

Authors:  Masahiro Kinoshita; Tomohiko Hayashi
Journal:  Biophys Rev       Date:  2020-03-17

Review 3.  Theoretical identification of thermostabilizing amino acid mutations for G-protein-coupled receptors.

Authors:  Takeshi Murata; Satoshi Yasuda; Tomohiko Hayashi; Masahiro Kinoshita
Journal:  Biophys Rev       Date:  2020-04-08

4.  Physicochemical origin of high correlation between thermal stability of a protein and its packing efficiency: a theoretical study for staphylococcal nuclease mutants.

Authors:  Koji Oda; Masahiro Kinoshita
Journal:  Biophys Physicobiol       Date:  2015-07-31

5.  On the molecular origin of the cooperative coil-to-globule transition of poly(N-isopropylacrylamide) in water.

Authors:  L Tavagnacco; E Zaccarelli; E Chiessi
Journal:  Phys Chem Chem Phys       Date:  2018-04-18       Impact factor: 3.676

  5 in total

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