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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >A calorimetric and spectroscopic comparison of the effects of cholesterol and its sulfur-containing analogs thiocholesterol and cholesterol sulfate on the thermotropic phase behavior and organization of dipalmitoylphosphatidylcholine bilayer membranes
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A calorimetric and spectroscopic comparison of the effects of cholesterol and its sulfur-containing analogs thiocholesterol and cholesterol sulfate on the thermotropic phase behavior and organization of dipalmitoylphosphatidylcholine bilayer membranes

机译:量热法和光谱法比较胆固醇及其含硫类似物巯基胆固醇和胆固醇硫酸盐对二棕榈酰磷脂酰胆碱双层膜的热致相行为和组织的影响

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We performed differential scanning calorimetric (DSC) and Fourier transform infrared (FTIR) spectroscopic studies of the effects of cholesterol (Chol), thiocholesterol (tChol) and cholesterol sulfate (CholS) on the thermotropic phase behavior and organization of dipalmitoylphosphatidylcholine (DPPC) bilayer membranes. Our DSC results indicate that Chol and tChol incorporation produce small temperature increases in the main phase transition broad component while CholS markedly decreases it, but Chol decreases cooperativity and enthalpy more strongly than CholS and especially tChol. Hence, Chol and tChol thermally stabilize fluid DPPC bilayer sterol rich domains while CholS markedly destabilizes them, and CholS and particularly tChol are less miscible in such domains. Our FTIR spectroscopic results indicate that Chol incorporation increases the rotational conformational order of fluid DPPC bilayers to a slightly and somewhat greater degree than tChol and CholS, respectively, consistent with our DSC findings. Also, Chol and CholS produce comparable degrees of H-bonding (hydration) of the DPPC ester carbonyls in fluid bilayers, whereas tChol increases H-bonding. At low temperatures, Chol is fully soluble in gel-state DPPC bilayers, whereas tChol and CholS are not. Thus tChol and CholS incorporation can produce considerably different effects on DPPC bilayers. In particular, the tChol thiol group markedly reduces its lateral miscibility and increases DPPC carbonyl H-bonding without significantly affecting the other characteristic effects of Chol itself, while the CholS sulfate group significantly reduces its ability to thermally stabilize and order fluid DPPC membranes. This latter result suggests that the molecular basis for the purported ability of CholS to "stabilize" various biological membranes should be re-examined. (C) 2015 Elsevier B.V. All rights reserved.
机译:我们进行了差示扫描量热(DSC)和傅里叶变换红外(FTIR)光谱研究,研究了胆固醇(Chol),硫代胆固醇(tChol)和胆固醇硫酸盐(CholS)对热致相行为和二棕榈酰磷脂酰胆碱(DPPC)双层膜组织的影响。 。我们的DSC结果表明,Chol和tChol的掺入会在主相变宽组分中产生较小的温度升高,而CholS显着降低它,但是Chol比CholS尤其是tChol更有力地降低了协同性和焓。因此,Chol和tChol热稳定了富含DPPC双层固醇的流体域,而CholS显着地使它们不稳定,并且CholS特别是tChol在此类域中的混溶性较小。我们的FTIR光谱结果表明,Chol掺入分别增加了DPPC双层流体的旋转构象顺序,其程度分别略高于tChol和CholS,这与我们的DSC结果一致。同样,Chol和CholS在流体双层中产生相当程度的DPPC酯羰基的H键合(水合),而tChol增加了H键合。在低温下,Chol完全溶于凝胶态DPPC双层,而tChol和CholS则不然。因此,tChol和CholS的掺入可以对DPPC双层产生明显不同的影响。特别地,tChol硫醇基团显着降低了其侧向溶混性并增加了DPPC羰基H键,而没有显着影响Chol本身的其他特征作用,而CholS硫酸盐基团则大大降低了其热稳定和订购流体DPPC膜的能力。后一个结果表明,应该重新检查CholS所谓的“稳定”各种生物膜能力的分子基础。 (C)2015 Elsevier B.V.保留所有权利。

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