How Does Solvation Layer Mobility Affect Protein Structural Dynamics?

被引:53
作者
Dahanayake, Jayangika N. [1 ]
Mitchell-Koch, Katie R. [1 ]
机构
[1] Wichita State Univ, Dept Chem, Wichita, KS 67208 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
viscosity; protein dynamics; hydration dynamics; solvation shell; CALB; Markov state model; Kramers' theory; non-aqueous enzymes; INVERSE TEMPERATURE TRANSITION; HYDROGEN-BOND DYNAMICS; ANTARCTICA LIPASE B; MOLECULAR-DYNAMICS; CANDIDA-ANTARCTICA; CONFORMATIONAL TRANSITIONS; DIHYDROFOLATE-REDUCTASE; HYDRATION DYNAMICS; SOLVENT VISCOSITY; ORGANIC-SOLVENTS;
D O I
10.3389/fmolb.2018.00065
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Salvation is critical for protein structural dynamics. Spectroscopic studies have indicated relationships between protein and solvent dynamics, and rates of gas binding to heme proteins in aqueous solution were previously observed to depend inversely on solution viscosity. In this work, the solvent-compatible enzyme Cane/Ida antarctica lipase B, which functions in aqueous and organic solvents, was modeled using molecular dynamics simulations. Data was obtained for the enzyme in acetonitrile, cyclohexane, n-butanol, and tert-butanol, in addition to water. Protein dynamics and solvation shell dynamics are characterized regionally: for each alpha-helix, beta-sheet, and loop or connector region. Correlations are seen between solvent mobility and protein flexibility. So, does local viscosity explain the relationship between protein structural dynamics and solvation layer dynamics? Halle and Davidovic presented a cogent analysis of data describing the global hydrodynamics of a protein (tumbling in solution) that fits a model in which the protein's interfacial viscosity is higher than that of bulk water's, due to retarded water dynamics in the hydration layer (measured in NMR tau 2 reorientation times). Numerous experiments have shown coupling between protein and solvation layer dynamics in site-specific measurements. Our data provides spatially-resolved characterization of solvent shell dynamics, showing correlations between regional solvation layer dynamics and protein dynamics in both aqueous and organic solvents. Correlations between protein flexibility and inverse solvent viscosity (1/eta) are considered across several protein regions and for a rather disparate collection of solvents. It is seen that the correlation is consistently higher when local solvent shell dynamics are considered, rather than bulk viscosity. Protein flexibility is seen to correlate best with either the local interfacial viscosity or the ratio of the mobility of an organic solvent in a regional solvation layer relative to hydration dynamics around the same region. Results provide insight into the function of aqueous proteins, while also suggesting a framework for interpreting and predicting enzyme structural dynamics in non-aqueous solvents, based on the mobility of solvents within the solvation layer. We suggest that Kramers' theory may be used in future work to model protein conformational transitions in different solvents by incorporating local viscosity effects.
引用
收藏
页数:20
相关论文
共 95 条
[1]   On the Structural and Dynamical Properties of DOPC Reverse Micelles [J].
Abel, Stephane ;
Galamba, Nuno ;
Karakas, Esra ;
Marchi, Massimo ;
Thompson, Ward H. ;
Laage, Damien .
LANGMUIR, 2016, 32 (41) :10610-10620
[2]   ENZYMATIC CATALYSIS AND DYNAMICS IN LOW-WATER ENVIRONMENTS [J].
AFFLECK, R ;
XU, ZF ;
SUZAWA, V ;
FOCHT, K ;
CLARK, DS ;
DORDICK, JS .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1992, 89 (03) :1100-1104
[3]   One biocatalyst - Many applications: The use of Candida antarctica B-lipase in organic synthesis [J].
Anderson, EM ;
Karin, M ;
Kirk, O .
BIOCATALYSIS AND BIOTRANSFORMATION, 1998, 16 (03) :181-204
[4]  
[Anonymous], EXPT PHYS CHEM
[5]  
Arfken G., 1985, Mathematical Methods for Physicists
[6]   Inverse temperature transition of a biomimetic elastin model: Reactive flux analysis of folding/unfolding and its coupling to solvent dielectric relaxation [J].
Baer, M ;
Schreiner, E ;
Kohlmeyer, A ;
Rousseau, R ;
Marx, D .
JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (08) :3576-3587
[7]   STRUCTURAL FEATURES IN ETHANOL-WATER MIXTURES REVEALED BY PICOSECOND FLUORESCENCE ANISOTROPY [J].
BEDDARD, GS ;
DOUST, T ;
HUDALES, J .
NATURE, 1981, 294 (5837) :145-146
[8]   SOLVENT VISCOSITY AND PROTEIN DYNAMICS [J].
BEECE, D ;
EISENSTEIN, L ;
FRAUENFELDER, H ;
GOOD, D ;
MARDEN, MC ;
REINISCH, L ;
REYNOLDS, AH ;
SORENSEN, LB ;
YUE, KT .
BIOCHEMISTRY, 1980, 19 (23) :5147-5157
[9]   THE MISSING TERM IN EFFECTIVE PAIR POTENTIALS [J].
BERENDSEN, HJC ;
GRIGERA, JR ;
STRAATSMA, TP .
JOURNAL OF PHYSICAL CHEMISTRY, 1987, 91 (24) :6269-6271
[10]   MOLECULAR-DYNAMICS WITH COUPLING TO AN EXTERNAL BATH [J].
BERENDSEN, HJC ;
POSTMA, JPM ;
VANGUNSTEREN, WF ;
DINOLA, A ;
HAAK, JR .
JOURNAL OF CHEMICAL PHYSICS, 1984, 81 (08) :3684-3690