State Key Laboratory of Chemical Engineering, and Shanghai Key Laboratory of Multiphase Materials Chemical Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, People's Republic of China.
Soft Matter. 2020 Mar 28;16(12):2953-2960. doi: 10.1039/c9sm02386k. Epub 2020 Mar 13.
Polyelectrolyte complex based micelles have attracted significant attention due to their potential regarding bio-applications. Although the morphology and functions have been studied extensively, dynamic properties, particularly component exchange with other surrounding molecules, have remained elusive to date. Here, we show how micelles based on metal-ligand coordination complex coacervate-core micelles (M-C3Ms) respond to addition of extra ligand and metal ions. The micelles are prepared from a polycationic-neutral diblock copolymer and an anionic coordination polyelectrolyte, which is obtained by coordination between metal ions (lanthanides Ln and Zn) and a bis-ligand (LEO) containing two dipicolinic acid (DPA) groups connected by a tetra-ethylene oxide spacer (4EO). Our findings show that the bis-ligand LEO is essential for the growth of coordination polymers and consequently the formation of micelles, leading to equilibrium structures with the same micellar composition and structure independent of the order of mixing. In other words, adding single DPA has no effect on the formed M-C3Ms. As for metal exchange, we find that added Zn can replace some of the Ln from Ln-C3Ms, leading to a hybrid coordination structure with both Ln and Zn. We find that component exchange occurs in these coordination polyelectrolyte micelles, but it is more favorable in the direction of replacing the weak binding components with strong ones. Hence, the designed M-C3Ms based on the strong binding components, such as Ln-C3Ms, shall be relatively stable in biological surroundings, paving the way for the application of such particles as bio-imaging probes.
基于聚电解质复合物的胶束由于其在生物应用方面的潜力而受到了广泛关注。尽管已经对其形态和功能进行了广泛的研究,但动态特性,特别是与其他周围分子的成分交换,至今仍难以捉摸。在这里,我们展示了基于金属-配体配位复合物凝聚核胶束(M-C3Ms)的胶束如何响应额外配体和金属离子的添加。这些胶束是由阳离子-中性二嵌段共聚物和阴离子配位聚电解质制备而成的,后者是通过金属离子(镧系元素Ln 和 Zn)与含有两个二吡啶酸(DPA)基团的双配体(LEO)之间的配位而得到的,二吡啶酸基团由一个四乙氧基间隔基(4EO)连接。我们的研究结果表明,双配体 LEO 对于配位聚合物的生长以及胶束的形成是必不可少的,导致形成具有相同胶束组成和结构的平衡结构,而与混合顺序无关。换句话说,添加单个 DPA 对形成的 M-C3Ms 没有影响。至于金属交换,我们发现添加的 Zn 可以取代 Ln-C3Ms 中的一些 Ln,从而形成具有 Ln 和 Zn 的混合配位结构。我们发现,在这些配位聚合物胶束中发生了成分交换,但更有利于用强的成分取代弱结合的成分。因此,基于强结合成分(如 Ln-C3Ms)设计的 M-C3Ms 在生物环境中应相对稳定,为将这些颗粒用作生物成像探针铺平了道路。