ISOTHERMAL LIPID PHASE-TRANSITIONS

被引:61
作者
CEVC, G
机构
[1] Medizinische Biophysik - Forschungslaboratorien, Urologische Klinik, Poliklinik der Technischen Universität München, D-8000 München 80
关键词
PHASE TRANSITIONS; HYDRATION; SURFACE ELECTROSTATICS; LATERAL SEPARATION; MODEL MEMBRANES;
D O I
10.1016/0009-3084(91)90082-M
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
In liotropic lipid systems phase transitions can be induced isothermally by changing the solvent concentration or composition; alternatively, lipid composition can be modified by (bio)chemical means. The probability for isothermal phase transitions increases with the decreasing transition entropy; it is proportional to the magnitude of the transition temperature shift caused by transformation-inducing system variation. Manipulations causing large thermodynamic effects, such as lipid (de)hydration, binding of protons or divalent ions and macromolecular adsorption, but also close bilayer approach are, therefore, likely to cause structural lipid change(s) at a constant temperature. Net lipid charges enhance the membrane susceptibility to salt-induced isothermal phase transitions; a large proportion of this effect is due to the bilayer dehydration, however, rather than being a consequence of the decreased Coulombic electrostatic interactions. Membrane propensity for isothermal phase transitions, consequently, always increases with the hydrophilicity of the lipid heads, as well as with the desaturation and shortening of the lipid chains. Upon a phase change at a constant temperature, some of the interfacially bound solutes (e.g. protons or calcium) are released in the solution. Membrane permeability and fusogenicity simultaneously increase. In mixed systems, isothermal phase transitions, moreover, may result in lateral phase separation. All this opens up ways for the involvement of isothermal phase transitions in the regulation of biological processes.
引用
收藏
页码:293 / 307
页数:15
相关论文
共 89 条
[1]   POLYMORPHISM OF PHOSPHOLIPID MONOLAYERS [J].
ALBRECHT, O ;
GRULER, H ;
SACKMANN, E .
JOURNAL DE PHYSIQUE, 1978, 39 (03) :301-313
[2]   APPEARANCE OF SINGLE-ION CHANNELS IN UNMODIFIED LIPID BILAYER-MEMBRANES AT THE PHASE-TRANSITION TEMPERATURE [J].
ANTONOV, VF ;
PETROV, VV ;
MOLNAR, AA ;
PREDVODITELEV, DA ;
IVANOV, AS .
NATURE, 1980, 283 (5747) :585-586
[3]  
ARNOLD K, 1975, Z PHYS CHEM-LEIPZIG, V256, P522
[4]  
ARNOLD K, 1976, STUD BIOPHYS, V59, P139
[5]   PHASE SEPARATIONS INDUCED BY MELITTIN IN NEGATIVELY-CHARGED PHOSPHOLIPID-BILAYERS AS DETECTED BY FLUORESCENCE POLARIZATION AND DIFFERENTIAL SCANNING CALORIMETRY [J].
BERNARD, E ;
FAUCON, JF ;
DUFOURCQ, J .
BIOCHIMICA ET BIOPHYSICA ACTA, 1982, 688 (01) :152-162
[6]  
BIVAS I, 1985, J PHYS LETT-PARIS, V46, pL513, DOI 10.1051/jphyslet:019850046011051300
[7]   INFLUENCE OF CHARGE ON BILAYER MEMBRANES - CALORIMETRIC INVESTIGATIONS OF PHOSPHATIDIC-ACID BILAYERS [J].
BLUME, A ;
EIBL, H .
BIOCHIMICA ET BIOPHYSICA ACTA, 1979, 558 (01) :13-21
[8]   PHASE-EQUILIBRIA, MOLECULAR-CONFORMATION, AND DYNAMICS IN PHOSPHATIDYLCHOLINE PHOSPHATIDYLETHANOLAMINE BILAYERS [J].
BLUME, A ;
WITTEBORT, RJ ;
DASGUPTA, SK ;
GRIFFIN, RG .
BIOCHEMISTRY, 1982, 21 (24) :6243-6253
[9]  
BLUMENTHAL R, 1987, CURR TOP MEMBR TRANS, V29, P203
[10]   LIPID INTERMOLECULAR HYDROGEN-BONDING - INFLUENCE ON STRUCTURAL ORGANIZATION AND MEMBRANE-FUNCTION [J].
BOGGS, JM .
BIOCHIMICA ET BIOPHYSICA ACTA, 1987, 906 (03) :353-404