Institut für Angewandte Physik, Eberhard Karls Universität Tübingen, Auf der Morgenstelle 10, D-72076 Tübingen, Germany.
Phys Chem Chem Phys. 2012 Feb 21;14(7):2483-93. doi: 10.1039/c2cp23460b. Epub 2012 Jan 16.
During protein crystallization and purification, proteins are commonly found in concentrated salt solutions. The exact interplay of the hydration shell, the salt ions, and protein-protein interactions under these conditions is far from being understood on a fundamental level, despite the obvious practical relevance. We have studied a model globular protein (bovine serum albumin, BSA) in concentrated salt solutions by small-angle neutron scattering (SANS). The data are also compared to previous studies using SAXS. The SANS results for dilute protein solutions give an averaged volume of BSA of 91,700 Å(3), which is about 37% smaller than that determined by SAXS. The difference in volume corresponds to the contribution of a hydration shell with a hydration level of 0.30 g g(-1) protein. The forward intensity I(0) determined from Guinier analysis is used to determine the second virial coefficient, A(2), which describes the overall protein interactions in solution. It is found that A(2) follows the reverse order of the Hofmeister series, i.e. (NH(4))(2)SO(4) < Na(2)SO(4) < NaOAc < NaCl < NaNO(3) < NaSCN. The dimensionless second virial coefficient B(2), corrected for the particle volume and molecular weight, has been calculated using different approaches, and shows that B(2) with corrections for hydration and the non-spherical shape of the protein describes the interactions better than those determined from the bare protein. SANS data are further analyzed in the full q-range using liquid theoretical approaches, which gives results consistent with the A(2) analysis and the experimental structure factor.
在蛋白质结晶和纯化过程中,蛋白质通常存在于高浓度盐溶液中。尽管实际意义明显,但在基本水平上,对于这些条件下水合壳、盐离子和蛋白质-蛋白质相互作用的确切相互作用仍远未被理解。我们通过小角中子散射(SANS)研究了一种模型球状蛋白质(牛血清白蛋白,BSA)在高浓度盐溶液中的情况。该数据还与之前使用 SAXS 的研究进行了比较。稀蛋白溶液的 SANS 结果给出了 BSA 的平均体积为 91700 Å(3),比 SAXS 测定的体积小约 37%。体积差异对应于水合水平为 0.30 g g(-1)蛋白质的水合壳的贡献。从 Guinier 分析确定的正向强度 I(0)用于确定第二维里系数 A(2),该系数描述了溶液中蛋白质的总体相互作用。发现 A(2)遵循 Hofmeister 序列的相反顺序,即(NH(4))(2)SO(4) < Na(2)SO(4) < NaOAc < NaCl < NaNO(3) < NaSCN。已使用不同方法计算了校正粒子体积和分子量后的无量纲第二维里系数 B(2),并表明,校正水合和蛋白质非球形形状的 B(2)比从裸蛋白确定的 B(2)更好地描述了相互作用。进一步在全 q 范围内使用液体理论方法分析 SANS 数据,该方法给出的结果与 A(2)分析和实验结构因子一致。