Growth of Ice Crystals in the Presence of Type III Antifreeze Protein

被引:19
|
作者
Vorontsov, Dmitry A. [1 ,2 ]
Sazaki, Gen [2 ]
Titaeva, Evgeniia K. [1 ]
Kim, Ekaterina L. [1 ]
Bayer-Giraldi, Maddalena [3 ]
Furukawa, Yoshinori [2 ]
机构
[1] Lobachevsky State Univ Nizhny Novgorod, Gagarin Ave 23, Nizhnii Novgorod 603950, Russia
[2] Hokkaido Univ, Inst Low Temp Sci, Kita Ku, Kita 19,Nishi 8, Sapporo, Hokkaido 0600819, Japan
[3] Alfred Wegener Inst, Helmholtz Ctr Polar & Marine Res, Alten Hafen 26, D-27568 Bremerhaven, Germany
基金
日本学术振兴会; 俄罗斯基础研究基金会;
关键词
PHYSICAL-PROPERTIES; BASAL-PLANE; KINETICS; BINDING; RECRYSTALLIZATION; INHIBITION; MECHANISMS; SURFACE; HYPERACTIVITY; GLYCOPROTEINS;
D O I
10.1021/acs.cgd.8b00172
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The morphology and growth kinetics of ice single crystals in aqueous solutions of type III antifreeze protein (AFP-III) have been studied in detail over a range of AFP-III concentrations and supercoolings. In pure water, the shape of ice crystals changes from the circular disklike to planar dendritic with increasing supercooling. In AFP-III solutions, ice crystals in the form of faceted plates, irregular dendrites with polygonized tips, and needles appear with increasing supercooling and AFP-III concentration. The growth rate of ice crystals in the crystallographic a direction is 2 orders of magnitude higher than that in the c direction. AFP-III molecules cause the stoppage of the growth of the prismatic and basal faces at low supercoolings. When supercooling exceeds the critical value, AFP-III favors the acceleration of the growth in both a and c directions. The observed behavior of AFP-III is explained in terms of the Cabrera-Vermilyea pinning model and the specificity of the dissipation of latent heat from the growing crystals with different shapes.
引用
收藏
页码:2563 / 2571
页数:9
相关论文
共 50 条
  • [21] Antifreeze glycoproteins - Preventing the growth of ice
    Ben, RN
    CHEMBIOCHEM, 2001, 2 (03) : 161 - 166
  • [22] Molecular basis of ice-binding and cryopreservation activities of type III antifreeze proteins
    Choi, Seo-Ree
    Lee, Jaewang
    Seo, Yeo-Jin
    Kong, Hyun Sun
    Kim, Minjae
    Jin, EonSeon
    Lee, Jung Ryeol
    Lee, Joon-Hwa
    COMPUTATIONAL AND STRUCTURAL BIOTECHNOLOGY JOURNAL, 2021, 19 : 897 - 909
  • [23] Blocking rapid ice crystal growth through nonbasal plane adsorption of antifreeze proteins
    Olijve, Luuk L. C.
    Meister, Konrad
    DeVries, Arthur L.
    Duman, John G.
    Guo, Shuaiqi
    Bakker, Huib J.
    Voets, Ilja K.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2016, 113 (14) : 3740 - 3745
  • [24] When Are Antifreeze Proteins in Solution Essential for Ice Growth Inhibition?
    Drori, Ran
    Davies, Peter L.
    Braslavsky, Ido
    LANGMUIR, 2015, 31 (21) : 5805 - 5811
  • [26] A random sequential adsorption model for the irreversible binding of Tenebrio molitor antifreeze protein to ice crystals
    Guo, Tinghe
    Zhang, Nan
    Li, Yannan
    Zhang, Luqiang
    Wang, Jun
    Zhang, Lirong
    Liu, Junjie
    AIP ADVANCES, 2024, 14 (06)
  • [27] Ice recrystallization inhibition behavior by wheat flour and its synergy effect with antifreeze protein III
    Monalisa, K.
    Shibata, Mario
    Hagiwara, Tomoaki
    FOOD HYDROCOLLOIDS, 2023, 143
  • [28] Growth inhibition at the ice prismatic plane induced by a spruce budworm antifreeze protein: a molecular dynamics simulation study
    Nada, H.
    Furukawa, Y.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2011, 13 (44) : 19936 - 19942
  • [29] Effects of Winter Flounder Antifreeze Protein on the Growth of Ice Particles in an Ice Slurry Flow in Mini-Channels
    Takeshita, Yuki
    Waku, Tomonori
    Wilson, Peter W.
    Hagiwara, Yoshimichi
    BIOMOLECULES, 2019, 9 (02):
  • [30] Synthetic insect antifreeze peptides modify ice crystal growth habit
    Kong, Charles H. Z.
    Leung, Ivanhoe K. H.
    Sarojini, Vijayalekshmi
    CRYSTENGCOMM, 2017, 19 (16): : 2163 - 2167