Analysis of shorthorn sculpin antifreeze protein stereospecific binding to (2-10) faces of ice

被引:67
|
作者
Wierzbicki, A
Taylor, MS
Knight, CA
Madura, JD
Harrington, JP
Sikes, CS
机构
[1] NATL CTR ATMOSPHER RES,BOULDER,CO 80307
[2] UNIV S ALABAMA,DEPT BIOL SCI,MOBILE,AL 36688
基金
美国国家科学基金会;
关键词
D O I
10.1016/S0006-3495(96)79204-4
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
In this paper we report the results of our studies on the stereospecific binding of shorthorn sculpin antifreeze protein (AFP) to (2-10) secondary prism faces of ice. Using ice crystal growth and etching techniques together with molecular modeling, molecular dynamics, and energy minimization, we explain the nature of preferential binding of shorthorn sculpin AFP along the [122] direction on (2-10) planes. In agreement with ice etching studies, the mechanism of preferential binding suggested by molecular modeling explains why the binding of shorthorn sculpin AFP occurs along [122] and not along its mirror symmetry-related direction [-1-22] on (2-10). This binding mechanism is based on the protein-crystal surface enantioselective recognition that utilizes both alpha-helical protein backbone matching to the (2-10) surface topography and matching of side chains of polar/charged residues with specific water molecule positions in the ice surface. The mechanisms of winter flounder and shorthorn sculpin antifreeze binding to ice re compared.
引用
收藏
页码:8 / 18
页数:11
相关论文
共 50 条
  • [31] Crystal structure of β-helical antifreeze protein points to a general ice binding model
    Leinala, EK
    Davies, PL
    Jia, ZC
    STRUCTURE, 2002, 10 (05) : 619 - 627
  • [32] ICE-BINDING STRUCTURE AND MECHANISM OF AN ANTIFREEZE PROTEIN FROM WINTER FLOUNDER
    SICHERI, F
    YANG, DSC
    NATURE, 1995, 375 (6530) : 427 - 431
  • [33] Hydration Behavior at the Ice-Binding Surface of the Tenebrio molitor Antifreeze Protein
    Midya, Uday Sankar
    Bandyopadhyay, Sanjoy
    JOURNAL OF PHYSICAL CHEMISTRY B, 2014, 118 (18): : 4743 - 4752
  • [34] High water mobility on the ice-binding surface of a hyperactive antifreeze protein
    Modig, Kristofer
    Qvist, Johan
    Marshall, Christopher B.
    Davies, Peter L.
    Halle, Bertil
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2010, 12 (35) : 10189 - 10197
  • [35] Identification of the ice-binding face of antifreeze protein from Tenebrio molitor
    Marshall, CB
    Daley, ME
    Graham, LA
    Sykes, BD
    Davies, PL
    FEBS LETTERS, 2002, 529 (2-3): : 261 - 267
  • [36] Detailed Analysis of the Ice Surface after Binding of an Insect Antifreeze Protein and Correlation with the Gibbs-Thomson Equation
    Gerhauser, Julian
    Gaukel, Volker
    LANGMUIR, 2021, 37 (40) : 11716 - 11725
  • [37] Hyperactive antifreeze protein from fish contains multiple ice-binding sites
    Graham, Laurie A.
    Marshall, Christopher B.
    Lin, Feng-Hsu
    Campbell, Robert L.
    Davies, Peter L.
    BIOCHEMISTRY, 2008, 47 (07) : 2051 - 2063
  • [38] Re-Evaluation of a Bacterial Antifreeze Protein as an Adhesin with Ice-Binding Activity
    Guo, Shuaiqi
    Garnham, Christopher P.
    Whitney, John C.
    Graham, Laurie A.
    Davies, Peter L.
    PLOS ONE, 2012, 7 (11):
  • [39] Alternative roles for putative ice-binding residues in type I antifreeze protein
    Loewen, MC
    Chao, HM
    Houston, ME
    Baardsnes, J
    Hodges, RS
    Kay, CM
    Sykes, BD
    Sonnichsen, FD
    Davies, PL
    BIOCHEMISTRY, 1999, 38 (15) : 4743 - 4749
  • [40] Compound Ice-Binding Site of an Antifreeze Protein Revealed by Mutagenesis and Fluorescent Tagging
    Garnham, Christopher P.
    Natarajan, Aditya
    Middleton, Adam J.
    Kuiper, Mike J.
    Braslavsky, Ido
    Davies, Peter L.
    BIOCHEMISTRY, 2010, 49 (42) : 9063 - 9071