Bos Inge, Sprakel Joris
Physical Chemistry and Soft Matter, Wageningen University & Research, Stippeneng 4, 6708 WE Wageningen, The Netherlands.
Macromolecules. 2019 Nov 26;52(22):8923-8931. doi: 10.1021/acs.macromol.9b01442. Epub 2019 Nov 13.
Complex coacervate core micelles (C3Ms) are promising encapsulators for a wide variety of (bio)molecules. To protect and stabilize their cargo, it is essential to control their exchange dynamics. Yet, to date, little is known about the kinetic stability of C3Ms and the dynamic equilibrium of molecular building blocks with micellar species. Here we study the C3M exchange during the initial micellization by using Langevin dynamics simulations. In this way, we show that charge neutral heterocomplexes consisting of multiple building blocks are the primary mediator for exchange. In addition, we show that the kinetic stability of the C3Ms can be tuned not only by the electrostatic interaction but also by the nonelectrostatic attraction between the polyelectrolytes, the polyelectrolyte length ratio, and the overall polyelectrolyte length. These insights offer new rational design guides to aid the development of new C3M encapsulation strategies.
复合凝聚核胶束(C3M)是用于多种(生物)分子的有前景的封装剂。为了保护和稳定其负载物,控制它们的交换动力学至关重要。然而,迄今为止,关于C3M的动力学稳定性以及分子构建块与胶束种类之间的动态平衡知之甚少。在这里,我们通过使用朗之万动力学模拟研究初始胶束化过程中的C3M交换。通过这种方式,我们表明由多个构建块组成的电荷中性异质复合物是交换的主要介质。此外,我们表明C3M的动力学稳定性不仅可以通过静电相互作用来调节,还可以通过聚电解质之间的非静电吸引力、聚电解质长度比和聚电解质总长度来调节。这些见解为开发新的C3M封装策略提供了新的合理设计指南。