PROPERTIES OF BILAYER MEMBRANES IN THE PHASE-TRANSITION OR PHASE-SEPARATION REGION

被引:67
|
作者
MARCELJA, S
WOLFE, J
机构
[1] Department of Applied Mathematics, Research School of Physical Sciences, Institute of Advanced Studies, Canberra
关键词
(Bilayer membrane); Bilayer compressibility; Lipid domain; Phase separation;
D O I
10.1016/0005-2736(79)90086-5
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The increase in passive permeability of bilayer membranes near the phase transition temperature is usually explained as caused by either the increase in the amount of 'boundary lipid' present in the membrane, or by the increase in lateral compressibility of the membrane. Since both the amount of 'boundary lipid' and the lateral compressibility show a similar anomaly near the transition temperature, it is difficult to distinguish experimentally between the two proposed mechanisms. We have examined some details of both of the proposed pictures. The fluid-solid boundary energy, neglected in previous work, has been computed as a function of the domain size. For a single component uncharged lipid bilayer, the results rule out the existence of even loosely defined solid domains in a fluid phase, or vice versa. Thermodynamic fluctuations, which are responsible for anomalous behaviour near the phase transition temperature, are not intense enough to approximate the formation of a domain of the opposite phase. Turning next to lateral compressibility of bilayer membranes we have considered two-component mixtures in the phase separation region. We present the first calculation of lateral compressibility for such systems. The behaviour shows interesting anomalies, which should correlate with existing and future data on transport across membranes. © 1979.
引用
收藏
页码:24 / 31
页数:8
相关论文
共 50 条
  • [31] Structural Phase Separation of Membranes and Fibers
    Xu, Weiwei
    Zhuang, Hui
    Lei, Sheng
    Tu, Mei
    Jiang, Lingxiang
    ACS NANO, 2024, 18 (26) : 17314 - 17325
  • [32] Thermotropic and barotropic phase transition on bilayer membranes of phospholipids with varying acyl chain-lengths
    Ichimori, H
    Hata, T
    Yoshioka, T
    Matsuki, H
    Kaneshina, S
    CHEMISTRY AND PHYSICS OF LIPIDS, 1997, 89 (02) : 97 - 105
  • [33] MICROSTRUCTURE AND MECHANICAL-PROPERTIES OF SIC-ALN CERAMICS AFTER PHASE-SEPARATION TREATMENT
    MIURA, M
    YOGO, T
    HIRANO, S
    NIPPON SERAMIKKUSU KYOKAI GAKUJUTSU RONBUNSHI-JOURNAL OF THE CERAMIC SOCIETY OF JAPAN, 1993, 101 (07): : 793 - 799
  • [34] Particle method for phase separation on membranes
    Daniel Duque
    Microfluidics and Nanofluidics, 2018, 22
  • [35] PHASE-SEPARATION OF HALOGEN-CONTAINING SODIUM BOROSILICATE GLASSES
    UO, M
    YAMASHIKA, Y
    MORITA, K
    KARUBE, I
    MAKISHIMA, A
    NIPPON SERAMIKKUSU KYOKAI GAKUJUTSU RONBUNSHI-JOURNAL OF THE CERAMIC SOCIETY OF JAPAN, 1992, 100 (01): : 17 - 21
  • [36] PHASE-SEPARATION IN MIXTURES OF POLY(VINYLIDENE FLUORIDE) AND HYDROXYPROPYL CELLULOSE
    AMBROSINO, S
    SIXOU, P
    POLYMER, 1992, 33 (04) : 795 - 800
  • [37] PHASE-SEPARATION AND RANDOM DOMAIN PATTERNS IN A STOCHASTIC PARTICLE MODEL
    GIACOMIN, G
    STOCHASTIC PROCESSES AND THEIR APPLICATIONS, 1994, 51 (01) : 25 - 62
  • [38] Phase Imaging of Phosphatidylcholine Bilayer Membranes by Prodan Fluorescence
    Tamai, Nobutake
    Matsuki, Hitoshi
    Goto, Masaki
    MEMBRANES, 2022, 12 (12)
  • [39] Phase-separation dominating mechanical properties of a novel tung-oil-based thermosetting polymer
    Liu, Chengguo
    Dai, Yan
    Wang, Chengshuang
    Xie, Hongfeng
    Zhou, Yonghong
    Lin, Xiaoyu
    Zhang, Liyun
    INDUSTRIAL CROPS AND PRODUCTS, 2013, 43 : 677 - 683
  • [40] PHASE-SEPARATION DYNAMICS IN A MIXTURE OF POLYSTYRENE AND LIQUID-CRYSTAL
    KIM, WK
    KYU, T
    MOLECULAR CRYSTALS AND LIQUID CRYSTALS SCIENCE AND TECHNOLOGY SECTION A-MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 1994, 250 : 131 - 141