Statistical mechanics of protein allostery: Roles of backbone and side-chain structural fluctuations

被引:20
作者
Itoh, Kazuhito [1 ]
Sasai, Masaki [1 ,2 ,3 ]
机构
[1] Nagoya Univ, Dept Appl Phys, Nagoya, Aichi 4648603, Japan
[2] Korea Inst Adv Study, Seoul 130722, South Korea
[3] Natl Inst Nat Sci, Okazaki Inst Integrat Biosci, Okazaki, Aichi 4448787, Japan
基金
日本学术振兴会; 新加坡国家研究基金会;
关键词
PHOTOACTIVE YELLOW PROTEIN; SIGNALING PROTEIN; CONFORMATIONAL-CHANGES; NMR-SPECTROSCOPY; DYNAMICS; CALMODULIN; RAS; TRANSITION; DOMAIN; RECOGNITION;
D O I
10.1063/1.3565025
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A statistical mechanical model of allosteric transition of proteins is developed by extending the structure-based model of protein folding to cases that a protein has two different native conformations. Partition function is calculated exactly within the model and free-energy surfaces associated with allostery are derived. In this paper, the model of allosteric transition proposed in a previous paper [Proc. Natl. Acad. Sci. U. S. A 134, 7775 (2010)] is reformulated to describe both fluctuation in side-chain configurations and that in backbone structures in a balanced way. The model is applied to example proteins, Ras, calmodulin, and CheY: Ras undergoes the allosteric transition between guanosine diphosphate (GDP)-bound and guanosine triphosphate (GTP)-bound forms, and the model results show that the GDP-bound form is stabilized enough to prevent unnecessary signal transmission, but the conformation in the GTP-bound state bears large fluctuation in side-chain configurations, which may help to bind multiple target proteins for multiple pathways of signaling. The calculated results of calmodulin show the scenario of sequential ordering in Ca2+ binding and the associated allosteric conformational change, which are realized though the sequential appearing of pre-existing structural fluctuations, i.e., fluctuations to show structures suitable to bind Ca2+ before its binding. Here, the pre-existing fluctuations to accept the second and third Ca2+ ions are dominated by the side-chain fluctuation. In CheY, the calculated side-chain fluctuation of Tyr106 is coordinated with the backbone structural change in the beta 4-alpha 4 loop, which explains the pre-existing Y-T coupling process in this protein. Ability of the model to explain allosteric transitions of example proteins supports the view that the large entropic effects lower the free-energy barrier of allosteric transition. (C) 2011 American Institute of Physics. [doi: 10.1063/1.3565025]
引用
收藏
页数:19
相关论文
共 50 条
[21]   Backbone and side-chain resonance assignments of the NISTmAb-scFv and antigen-binding study [J].
Ghasriani, Houman ;
Ahmadi, Sara ;
Hodgson, Derek J. ;
Aubin, Yves .
BIOMOLECULAR NMR ASSIGNMENTS, 2022, 16 (02) :391-398
[22]   Using Side-Chain Aromatic Proton Chemical Shifts for a Quantitative Analysis of Protein Structures [J].
Sahakyan, Aleksandr B. ;
Vranken, Wim F. ;
Cavalli, Andrea ;
Vendruscolo, Michele .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2011, 50 (41) :9620-9623
[23]   Backbone and nearly complete side-chain chemical shift assignments reveal the human uncharacterized protein CXorf51A as intrinsically disordered [J].
Wiedemann, Christoph ;
Obika, Kingsley Benjamin ;
Liebscher, Sandra ;
Jirschitzka, Jan ;
Ohlenschlager, Oliver ;
Bordusa, Frank .
BIOMOLECULAR NMR ASSIGNMENTS, 2021, 15 (02) :441-448
[24]   A Dictionary for Protein Side-Chain Entropies from NMR Order Parameters [J].
Li, Da-Wei ;
Brueschweiler, Rafael .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (21) :7226-+
[25]   Improved prediction of protein side-chain conformations with SCWRL4 [J].
Krivov, Georgii G. ;
Shapovalov, Maxim V. ;
Dunbrack, Roland L., Jr. .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2009, 77 (04) :778-795
[26]   Computational Feasibility of an Exhaustive Search of Side-Chain Conformations in Protein-Protein Docking [J].
Dauzhenka, Taras ;
Kundrotas, Petras J. ;
Vakser, Ilya A. .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2018, 39 (24) :2012-2021
[27]   Direct Evidence of the Amino Acid Side Chain and Backbone Contributions to Protein Anharmonicity [J].
Schiro, Giorgio ;
Caronna, Chiara ;
Natali, Francesca ;
Cupane, Antonio .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (04) :1371-1376
[28]   Optimization of the Additive CHARMM All-Atom Protein Force Field Targeting Improved Sampling of the Backbone φ, ψ and Side-Chain χ1 and χ2 Dihedral Angles [J].
Best, Robert B. ;
Zhu, Xiao ;
Shim, Jihyun ;
Lopes, Pedro E. M. ;
Mittal, Jeetain ;
Feig, Michael ;
MacKerell, Alexander D., Jr. .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2012, 8 (09) :3257-3273
[29]   Side-chain specific isotopic labeling of proteins for infrared structural biology: The case of ring-D4-tyrosine isotope labeling of photoactive yellow protein [J].
Rathod, Rachana ;
Kang, Zhouyang ;
Hartson, Steven D. ;
Kumauchi, Masato ;
Xie, Aihua ;
Hoff, Wouter D. .
PROTEIN EXPRESSION AND PURIFICATION, 2012, 85 (01) :125-132
[30]   Backbone and side chain assignments of human cell cycle regulatory protein S-phase kinase-associated protein 1 [J].
Kachariya, Nitin Nathubhai ;
Dantu, Sarath Chandra ;
Kumar, Ashutosh .
BIOMOLECULAR NMR ASSIGNMENTS, 2016, 10 (02) :351-355