Molecular basis for antifreeze activity difference of two insect antifreeze protein isoforms

被引:0
作者
YanXia Zhou
HongWei Tan
ZuoYin Yang
ZongChao Jia
RuoZhuang Liu
GuangJu Chen
机构
[1] Beijing Normal University,Department of Chemistry
[2] Beijing University of Chemical Technology,Faculty of Science
[3] Queen’s University,Department of Biochemistry
来源
Science in China Series B: Chemistry | 2007年 / 50卷
关键词
insect antifreeze protein; synergistic effect; antifreeze activity; -helix; quantum chemistry; molecular mechanics; molecular dynamics;
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学科分类号
摘要
The insect spruce budworm (Choristoneura fumiferana) produces antifreeze protein (AFP) to assist in the protection of the over-wintering larval stage and contains multiple isoforms. Structures for two isoforms, known as CfAFP-501 and CfAFP-337, show that both possess similar left-handed β-helical structure, although thermal hysteresis activity of the longer isoform CfAFP-501 is three times that of CfAFP-337. The markedly enhanced activity of CfAFP-501 is not proportional to, and cannot be simply accounted for, by the increased ice-binding site resulting from the two extra coils in CfAFP-501. In order to investigate the molecular basis for the activity difference and gain better understanding of AFPs in general, we have employed several different computational methods to systematically study the structural properties and ice interactions of the AFPs and their deletion models. In the context of intact AFPs, a majority of the coils in CfAFP-501 has better ice interaction and causes stronger ice lattice disruption than CfAFP-337, strongly suggesting a cooperative or synergistic effect among β-helical coils. The synergistic effect would play a critical role and make significant contributions to the antifreeze activity β-helical antifreeze proteins. This is the first time that synergistic effect and its implication for antifreeze activity are reported for β-helical antifreeze proteins.
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页码:266 / 271
页数:5
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共 57 条
[1]  
Raymond J. A.(1977)Adsorption inhibition as a mechanism of freezing resistance in polar fish P Natl Acad Sci USA 74 2589-2593
[2]  
Devries A. L.(2002)A family of expressed antifreeze protein genes from the moth, Choristoneura fumiferana Eur J Biochem 269 38-46
[3]  
Doucet D.(2000)-helix structure and ice-binding properties of a hyperactive antifreeze protein from an insect Nature 401 325-328
[4]  
Tyshenko M. G.(2002)Crystal structure of Structure 10 619-627
[5]  
Davies P. L.(2002)-helical antifreeze protein points to a general ice binding model J. Biol Chem 277 33349-33352
[6]  
Walker V. K.(1995)A J Am Chem Soc 117 5179-5197
[7]  
Graether S. P.(1985)-helical antifreeze protein isoform with increased activity J Am Chem Soc 107 3902-3909
[8]  
Kuiper M. J.(1989)A second generation force field for the simulation of proteins and nucleic acids J Comp Chem 10 209-220
[9]  
Gagne S. M.(1999)AM1: a new general purpose quantum mechanical model Biophys J 77 1602-1608
[10]  
Walker V. K.(2002)Optimization of parameters for semi-empirical methods I-method Biophys J 83 2202-2210