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本文引用的文献

1
Effect of cholesterol on the water permeability of thin lipid membranes.胆固醇对薄脂质膜水渗透性的影响。
Nature. 1967 Nov 18;216(5116):717-8. doi: 10.1038/216717a0.
2
Properties of liquid bilayer membranes separating two aqueous phases: temperature dependence of water permeability.分隔两个水相的液体双层膜的性质:水渗透性的温度依赖性。
J Mol Biol. 1969 May 14;41(3):443-57. doi: 10.1016/0022-2836(69)90287-3.
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Influence of temperature and membrane composition on the water permeability of lipid bilayers.温度和膜组成对脂质双层水渗透性的影响。
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The water and nonelectrolyte permeability induced in thin lipid membranes by the polyene antibiotics nystatin and amphotericin B.多烯抗生素制霉菌素和两性霉素B在薄脂质膜中诱导产生的水和非电解质通透性。
J Gen Physiol. 1970 Jul;56(1):125-45. doi: 10.1085/jgp.56.1.125.
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Structure of aqueous mixtures of lecithin and cholesterol.卵磷脂与胆固醇的水性混合物结构
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6
Permeability of red cell membranes to small hydrophilic and lipophilic solutes.红细胞膜对亲水性和疏水性小分子溶质的通透性。
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Model of interaction of polar lipids, cholesterol, and proteins in biological membranes.生物膜中极性脂质、胆固醇和蛋白质的相互作用模型。
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8
Thermodynamic constants for nonelectrolyte partition between dimyristoyl lecithin and water.二肉豆蔻酰卵磷脂与水之间非电解质分配的热力学常数。
J Membr Biol. 1974;17(2):101-20. doi: 10.1007/BF01870175.
9
Routes of nonelectrolyte permeation across epithelial membranes.非电解质跨上皮细胞膜的渗透途径。
J Membr Biol. 1974 Jul 12;17(3):293-312. doi: 10.1007/BF01870189.
10
Non-electrolyte permeability across thin lipid membranes.非电解质跨薄脂质膜的通透性。
Arch Int Physiol Biochim. 1971 Dec;79(5):881-7. doi: 10.3109/13813457109104847.

脂质双分子层膜的水和非电解质通透性

Water and nonelectrolyte permeability of lipid bilayer membranes.

作者信息

Finkelstein A

出版信息

J Gen Physiol. 1976 Aug;68(2):127-35. doi: 10.1085/jgp.68.2.127.

DOI:10.1085/jgp.68.2.127
PMID:956767
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2228420/
Abstract

Both the permeability coefficients (Pd's) through lipid bilayer membranes of varying composition (lecithin [L], lecithin:cholesterol [LC], and spingomyelin:cholesterol [SC]) and the n-hexadecane:water partition coefficients (Knc's) of H2O and seven nonelectrolytes (1,6 hexanediol, 1,4 butanediol, n-butyramide, isobutyramide, acetamide, formamide, and urea) were measured. For a given membrane compositiin, Pd/DKnc (where D is the diffusion constant in water) is the same for most of the molecules tested. There is no extraordinary dependence of Pd on molecular weight; thus, given Pd(acetamide), Pd(1,6 hexanediol) is correctly predicted from the Knc and D values for the two molecules. The major exceptions are H2O, whose value of Pd/DKnc is about 10-fold larger, and urea, whose value is about 5-fold smaller than the general average. In a "tight" membrane such as SC, Pd(n-butyramide)/Pd(isobutyramide)=2.5; thus this bilayer manifests the same sort of discrimination between branched and straight chain molecules as occurs in many plasma membranes. Although the absolute values of the Pd's change by more than a factor of 100 in going from the tightest membrane (SC) to the loosest (L), the relative values remain approximately constant. The general conclusion of this study is that H2O and nonelectrolytes cross lipid bilayer membranes by a solubility-diffusion mechanism, and that the bilayer interior is much more like an oil (a la Overton) than a rubber-like polymer (a la Lieb and Stein).

摘要

测量了水和七种非电解质(1,6 -己二醇、1,4 -丁二醇、正丁酰胺、异丁酰胺、乙酰胺、甲酰胺和尿素)通过不同组成的脂质双分子层膜(卵磷脂[L]、卵磷脂:胆固醇[LC]和鞘磷脂:胆固醇[SC])的渗透系数(Pd)以及正十六烷:水的分配系数(Knc)。对于给定的膜组成,大多数测试分子的Pd/DKnc(其中D是在水中的扩散常数)是相同的。Pd对分子量没有特别的依赖性;因此,给定乙酰胺的Pd,根据这两种分子的Knc和D值可以正确预测1,6 -己二醇的Pd。主要的例外是水,其Pd/DKnc值大约大10倍,以及尿素,其值比一般平均值小约5倍。在像SC这样的“紧密”膜中,正丁酰胺的Pd/异丁酰胺的Pd = 2.5;因此这种双分子层对支链和直链分子表现出与许多质膜中相同类型的区分。尽管从最紧密的膜(SC)到最疏松的膜(L),Pd的绝对值变化超过100倍,但相对值大致保持不变。这项研究的总体结论是,水和非电解质通过溶解扩散机制穿过脂质双分子层膜,并且双分子层内部更像油(如奥弗顿所说)而不是橡胶状聚合物(如利布和斯坦所说)。