Plasson Raphaël, Vayaboury Willy, Giani Olivia, Cottet Hervé
Institut des Biomolécules Max Mousseron, UMR 5247 CNRS - Université de Montpellier 1 - Université de Montpellier 2, Montpellier, France.
Electrophoresis. 2007 Oct;28(20):3617-24. doi: 10.1002/elps.200700349.
The aim of this work was to study changes in homopolypeptide chain conformation as a function of the number of residues by the modeling of the electrophoretic mobility. For this purpose, the frictional coefficients of poly(N(epsilon)-trifluoroacetyl-L-lysine) with different number of residues (up to 11) were determined from the absolute ionic mobilities and modeled by the hydrodynamic frictional coefficient of an equivalent cylinder. This approach allowed determination of geometrical parameters of the polypeptide chain in a liquid phase (nonaqueous solution of the BGE). The fact that the BGE and analyte are dissolved in mixed (methanol-ACN) organic solvent implied to take into account different effects and corrections that are generally not considered in aqueous solvent: namely, the effect of ion-pairs between constituents of the BGE for the calculation of the ionic strength, the effect of ion-pairs between the solutes and the electrolyte counterions and the correction due to the dielectric friction (Hubbard-Onsager equations). In addition, the influence of the ionic strength on the electrophoretic mobility was corrected using the Pitts equation, and the effect of lateral charges due to a slight deprotonation of the -NH- group in the lateral chain was also considered. From this modeling, molecular geometrical parameters relative to the linear and helicoïdal conformations were obtained with very good correlation coefficients. Interestingly, this work also points out that the use of ionic mobility modeling for extracting molecular geometrical parameters can also be applied to end-charged polypeptides with slightly charged lateral chains (3% of elementary charge per residue).
这项工作的目的是通过对电泳迁移率进行建模,研究同聚多肽链构象随残基数量的变化。为此,根据绝对离子迁移率确定了不同残基数量(最多11个)的聚(N(ε)-三氟乙酰-L-赖氨酸)的摩擦系数,并通过等效圆柱体的流体动力学摩擦系数进行建模。这种方法能够确定多肽链在液相(BGE的非水溶液)中的几何参数。BGE和分析物溶解在混合(甲醇-乙腈)有机溶剂中这一事实意味着要考虑在水性溶剂中通常不考虑的不同影响和校正:即,BGE成分之间的离子对效应用于计算离子强度,溶质与电解质抗衡离子之间的离子对效应以及介电摩擦引起的校正(哈伯德-昂萨格方程)。此外,使用皮茨方程校正离子强度对电泳迁移率的影响,并考虑侧链中-NH-基团轻微去质子化导致的侧电荷效应。通过这种建模,获得了与线性和螺旋构象相关的分子几何参数,相关系数非常好。有趣的是,这项工作还指出,利用离子迁移率建模来提取分子几何参数也可应用于带有轻微带电侧链(每个残基3%基本电荷)的端带电多肽。