Coupling of Charge Regulation and Geometry in Soft Ionizable Molecular Assemblies.

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL
Joseph M McCourt, Leticia Lopez-Flores, Sumit Kewalramani, Noah B Welke, Monica Olvera de la Cruz, Michael J Bedzyk
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Abstract

The size, shape, and charge of structures, such as proteins and amphiphile assemblies, respond in an interconnected manner to solution ionic conditions. We analyze assemblies of an amphiphile (C16K2), with two ionizable amino acids [lysine (K)] coupled to a 16-carbon alkyl tail, via small-angle X-ray scattering (SAXS), nonlinear Poisson-Boltzmann theory (nl-PB), and hybrid Monte Carlo-molecular dynamics (MC-MD) simulations. SAXS revealed structural transitions from spherical micelles to cylindrical micelles to bilayers with increasing pH. By combining SAXS-determined structural information and nl-PB, we derived the molecular degree of ionization as a function of pH. The back-calculated titration curves matched the experimental data over an extended pH range, without adjustable parameters. Similarly, the SAXS data on the evolution of spherical micelle structure with ionic strength were combined with nl-PB and MC-MD to derive the bare and effective charges. MC-MD, which considered finite ion sizes, showed that bare and effective charges saturate quickly with increasing salt concentration. Furthermore, the calculated effective charges closely matched results from Zeta-potential measurements. The presented approach has advantages over customary methods for charge regulation, such as the Henderson-Hasselbalch (HH) or Hill models, where molecular ionization/deionization in assemblies is described by effective pKs that are distinct from the pK for isolated molecules. However, these models lack a physical explanation for these pK shifts. By contrast, our approach of combining structural details with an electrostatic model and simulations provides a more intuitive understanding of structure-charge coupling and a framework for understanding charge regulation in many synthetic and biological systems.

软电离分子组装中电荷调节与几何耦合。
结构的大小、形状和电荷,如蛋白质和两亲组合物,以相互联系的方式对溶液的离子条件作出反应。我们通过小角x射线散射(SAXS)、非线性泊松-玻尔兹曼理论(nl-PB)和混合蒙特卡罗分子动力学(MC-MD)模拟,分析了两亲化合物(C16K2)与两个可电离氨基酸[赖氨酸(K)]耦合到16碳烷基尾部的组装体。SAXS揭示了随着pH值的增加,从球形胶束到圆柱形胶束再到双层胶束的结构转变。通过结合SAXS测定的结构信息和nl-PB,我们推导出了分子电离度与pH值的函数关系。反向计算的滴定曲线在扩展的pH范围内与实验数据相匹配,没有可调参数。同样,将SAXS数据与nl-PB和MC-MD相结合,得出裸电荷和有效电荷。MC-MD考虑了有限离子尺寸,表明裸电荷和有效电荷随着盐浓度的增加而迅速饱和。此外,计算的有效电荷与zeta电位测量结果非常吻合。所提出的方法比传统的电荷调节方法有优势,如Henderson-Hasselbalch (HH)或Hill模型,其中分子电离/去电离是由有效的pK来描述的,与分离分子的pK不同。然而,这些模型缺乏对这些pK变化的物理解释。相比之下,我们将结构细节与静电模型和模拟相结合的方法提供了对结构-电荷耦合的更直观的理解,并为理解许多合成和生物系统中的电荷调节提供了框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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