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New approaches to the simulation of heat-capacity curves and phase diagrams of pseudobinary phospholipid mixtures.

机译:模拟伪二元磷脂混合物热容量曲线和相图的新方法。

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摘要

A simulation program using least-squares minimization was developed to calculate and fit heat capacity (cp) curves to experimental thermograms of dilute aqueous dispersions of phospholipid mixtures determined by high-sensitivity differential scanning calorimetry. We analyzed cp curves and phase diagrams of the pseudobinary aqueous lipid systems 1,2-dimyristoyl-sn-glycero-3-phosphatidylglycerol/ 1,2-dipalmitoyl-sn-glycero-3phosphatidylcholine (DMPG/DPPC) and 1,2-dimyristoyl-sn-glycero-3-phosphatidic acid/1, 2-dipalmitoyl-sn-glycero-3-phosphatidylcholine (DMPA/DPPC) at pH 7. The simulation of the cp curves is based on regular solution theory using two nonideality parameters rho g and rho l for symmetric nonideal mixing in the gel and the liquid-crystalline phases. The broadening of the cp curves owing to limited cooperativity is incorporated into the simulation by convolution of the cp curves calculated for infinite cooperativity with a broadening function derived from a simple two-state transition model with the cooperative unit size n = delta HVH/delta Hcal as an adjustable parameter. The nonideality parameters and the cooperative unit size turn out to be functions of composition. In a second step, phase diagrams were calculated and fitted to the experimental data by use of regular solution theory with four different model assumptions. The best fits were obtained with a four-parameter model based on nonsymmetric, nonideal mixing in both phases. The simulations of the phase diagrams show that the absolute values of the nonideality parameters can be changed in a certain range without large effects on the shape of the phase diagram as long as the difference of the nonideality parameters for rho g for the gel and rho l for the liquid-crystalline phase remains constant. The miscibility in DMPG/DPPC and DMPA/DPPC mixtures differs remarkably because, for DMPG/DPPC, delta rho = rho l -rho g is negative, whereas for DMPA/DPPC this difference is positive. For DMPA/DPPC, this difference is interpreted as being caused by a negative rho g value, indicating complex formation of unlike molecules in the gel phase.
机译:开发了使用最小二乘最小化的模拟程序,以计算热容量(cp)曲线并将其拟合到通过高灵敏度差示扫描量热法确定的磷脂混合物的稀水分散体的实验热分析图中。我们分析了伪二元水性脂质系统1,2-二肉豆蔻酰基-sn-甘油-3-磷脂酰甘油/ 1,2-二棕榈酰-sn-甘油-3磷脂酰胆碱(DMPG / DPPC)和1,2-二肉豆蔻酰基-cp的cp曲线和相图。 pH值为7时,sn-glycero-3-phosphatidic acid / 1,2-dipalmitoyl-sn-glycero-3-phosphatidylcholine(DMPA / DPPC)。cp曲线的模拟基于常规溶液理论,使用两个非理想参数rho g和用于凝胶和液晶相中的对称非理想混合。由于有限合作性而导致的cp曲线的加宽通过对无限合作性所计算出的cp曲线的卷积与从简单的两态转换模型得到的扩展函数进行卷积而得到了模拟,其中合作单位大小为n = delta HVH / delta Hcal作为可调参数。非理想参数和协作单元大小证明是合成的函数。第二步,通过使用具有四个不同模型假设的常规解理论,计算出相图并将其拟合到实验数据中。使用基于两相非对称,非理想混合的四参数模型可获得最佳拟合。相图的仿真表明,只要凝胶和rho g的非理想参数的差异不同,就可以在一定范围内更改非理想参数的绝对值,而不会对相图的形状产生较大影响。液晶相的常数保持恒定。 DMPG / DPPC和DMPA / DPPC混合物的可混溶性显着不同,因为对于DMPG / DPPC,Δrho = rhl -rho g为负,而对于DMPA / DPPC,该差异为正。对于DMPA / DPPC,此差异被解释为由负的rhg值引起,表明凝胶相中复杂分子的复杂形成。

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