Agg Kieran J, Groves Timothy S, Miao Shurui, Fung Y K Catherine, Alderman Oliver L G, Headen Thomas F, Hughes Terri-Louise, Smith Gregory N, Youngs Tristan G A, Tellam James P, Chen Yao, Perkin Susan, Hallett James E
Physical and Theoretical Chemistry Laboratory, Department of Chemistry, University of Oxford Oxford OX1 3QZ UK.
ISIS Neutron and Muon Source, Rutherford Appleton Laboratory Didcot OX11 0QX UK.
Chem Sci. 2025 Mar 17;16(16):6770-6779. doi: 10.1039/d5sc00286a. eCollection 2025 Apr 16.
Zwitterionic osmolytes are widely known to have a protein-protective effect against high salt concentration, but a mechanistic picture of osmolyte function remains elusive. Here total scattering is used to determine the room temperature liquid structure of two model cytosol solutions containing trimethylglycine (TMG) with either sodium or potassium chloride. H/D isotopic substitution is used to obtain differential neutron scattering cross sections at multiple contrasts in addition to an X-ray structure factor, and an Empirical Potential Structure Refinement (EPSR) simulation is fitted to the experimental data. We reveal the nature of the interaction between TMG molecules and ions in solution, observing binding between cations and the TMG carboxylate group. We observe three key specific ion effects: first, that sodium ions are more tightly localised at the carboxylate group; second, that sodium localisation in turn promotes head-to-head bridging between carboxylate groups when compared to potassium or no added ions, resulting in strong oxygen-oxygen correlations; and third, that sodium ions promote TMG clusters with greater orientational order, more fully shielding the ion but also in turn limiting access to the carboxylate groups for other molecules. These observations have implications for the bioavailability and protein-stabilising effect of osmolytes under changing extracellular salt conditions.
两性离子渗透剂对高盐浓度具有蛋白质保护作用,这一点广为人知,但渗透剂功能的机制仍不清楚。在这里,我们利用全散射来确定两种含有三甲胺基甘氨酸(TMG)与氯化钠或氯化钾的模型细胞溶质溶液在室温下的液体结构。除了X射线结构因子外,还利用H/D同位素取代来获得多个对比下的差分中子散射截面,并将经验势结构精修(EPSR)模拟与实验数据进行拟合。我们揭示了溶液中TMG分子与离子之间相互作用的本质,观察到阳离子与TMG羧基之间的结合。我们观察到三个关键的特定离子效应:第一,钠离子更紧密地定位在羧基上;第二,与钾离子或不添加离子相比,钠离子的定位反过来促进羧基之间的头对头桥连,导致强烈的氧-氧相关性;第三,钠离子促进TMG簇具有更大的取向有序性,更充分地屏蔽离子,但反过来也限制了其他分子接近羧基。这些观察结果对细胞外盐条件变化时渗透剂的生物利用度和蛋白质稳定作用具有启示意义。