Ice-binding surface of fish type III antifreeze

被引:55
|
作者
Chen, GJ
Jia, ZC [1 ]
机构
[1] Queens Univ, Dept Biochem, Kingston, ON K7L 3N6, Canada
[2] Beijing Normal Univ, Dept Chem, Beijing 100875, Peoples R China
基金
英国医学研究理事会;
关键词
D O I
10.1016/S0006-3495(99)77008-6
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
We employed computational techniques, including molecular docking, energy minimization, and molecular dynamics simulation, to investigate the ice-binding surface of fish type III antifreeze protein (AFP). The putative ice-binding site was previously identified by mutagenesis, structural analysis, and flatness evaluation. Using a high-resolution x-ray structure of fish type III AFP as a model, we calculated the ice-binding interaction energy of 11 surface patches chosen to cover the entire surface of the protein. These various surface patches exhibit small but significantly different ice-binding interaction energies. For both the prism ice plane and an "ice" plane in which water O atoms are randomly positioned, our calculations show that a surface patch containing 14 residues (L19, V20, T18, S42, V41, Q9, P12, Ale, M21, T15, Q44, 113, N14, K61) has the most favorable interaction energy and corresponds to the previously identified ice-binding site of type III AFP. Although in general agreement with the earlier studies, our results also suggest that the ice-binding site may be larger than the previously identified "core" cluster that includes mostly hydrophilic residues. The enlargement mainly results from the inclusion of peripheral hydrophobic residues and K61.
引用
收藏
页码:1602 / 1608
页数:7
相关论文
共 50 条
  • [21] Identification of the ice-binding face of a plant antifreeze protein
    Middleton, Adam J.
    Brown, Alan M.
    Davies, Peter L.
    Walker, Virginia K.
    FEBS LETTERS, 2009, 583 (04) : 815 - 819
  • [22] Synthetic Antifreeze Glycoproteins with Potent Ice-Binding Activity
    Deleray, Anna C.
    Saini, Simranpreet S.
    Wallberg, Alexander C.
    Kramer, Jessica R.
    CHEMISTRY OF MATERIALS, 2024, 36 (07) : 3424 - 3434
  • [23] 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
  • [24] Ice-binding mechanism of the antifreeze protein by MD simulations
    Cheng, A
    Merz, KM
    PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 1996, 65 : PA310 - PA310
  • [25] Structures and ice-binding faces of the alanine-rich type I antifreeze proteins
    Patel, Shruti N.
    Graether, Steffen P.
    BIOCHEMISTRY AND CELL BIOLOGY, 2010, 88 (02) : 223 - 229
  • [26] Studies of ice-binding mechanism of the winter flounder skin-type antifreeze polypeptide
    Lin, QS
    Hew, CL
    FASEB JOURNAL, 2002, 16 (04): : A550 - A550
  • [27] Synergy between Antifreeze Proteins Is Driven by Complementary Ice-Binding
    Berger, Tehilla
    Meister, Konrad
    DeVries, Arthur L.
    Eves, Robert
    Davies, Peter L.
    Drori, Ran
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2019, 141 (48) : 19144 - 19150
  • [28] Identification of the critical ice-binding residues in herring antifreeze protein
    Li, ZJ
    Lin, QS
    Hew, CL
    FASEB JOURNAL, 2002, 16 (04): : A550 - A550
  • [29] Crystal structure of an insect antifreeze protein reveals ordered waters on the ice-binding surface
    Ye, Qilu
    Eves, Robert
    Campbell, Robert L.
    Davies, Peter L.
    BIOCHEMICAL JOURNAL, 2020, 477 (17) : 3271 - 3286
  • [30] Understanding the mechanism of ice binding by type III antifreeze proteins
    Antson, AA
    Smith, DJ
    Roper, DI
    Lewis, S
    Caves, LSD
    Verma, CS
    Buckley, SL
    Lillford, PJ
    Hubbard, RE
    JOURNAL OF MOLECULAR BIOLOGY, 2001, 305 (04) : 875 - 889