School of Computer Technologies and Control, St. Petersburg National Research University of Information Technologies, Mechanics and Optics (ITMO University), Kronverkskiy pr. 49, 197101 St. Petersburg, Russia.
Physics Department, Lomonosov Moscow State University, Leninskie Gory 1-2, 119991 Moscow, Russia.
Int J Mol Sci. 2023 Jan 20;24(3):2078. doi: 10.3390/ijms24032078.
In this article, we used the numerical self-consistent field method of Scheutjens-Fleer to study the micellization of hybrid molecules consisting of one polylysine dendron with charged end groups and several linear hydrophobic tails attached to its root. The main attention was paid to spherical micelles and the determination of the range of parameters at which they can appear. A relationship has been established between the size and internal structure of the resulting spherical micelles and the length and number of hydrophobic tails, as well as the number of dendron generations. It is shown that the splitting of the same number of hydrophobic monomers from one long tail into several short tails leads to a decrease in the aggregation number and, accordingly, the number of terminal charges in micelles. At the same time, it was shown that the surface area per dendron does not depend on the number of hydrophobic monomers or tails in the hybrid molecule. The relationship between the structure of hybrid molecules and the electrostatic properties of the resulting micelles has also been studied. It is found that the charge distribution in the corona depends on the number of dendron generations in the hybrid molecule. For a small number of generations (up to G=3), a standard double electric layer is observed. For a larger number of generations (G=4), the charges of dendrons in the corona are divided into two populations: in the first population, the charges are in the spherical layer near the boundary between the micelle core and shell, and in the second population, the charges are near the periphery of the spherical shell. As a result, a part of the counterions is localized in the wide region between them. These results are of potential interest for the use of spherical dendromicelles as nanocontainers for drug delivery.
本文采用 Scheutjens-Fleer 的数值自洽场方法研究了由带有带电端基的聚赖氨酸树枝状大分子和几个连接在其根部的线性疏水尾巴组成的混合分子的胶束化。主要关注的是球形胶束,并确定了它们可以出现的参数范围。建立了所得球形胶束的大小和内部结构与疏水尾巴的长度和数量以及树枝状大分子的代数之间的关系。结果表明,将相同数量的疏水单体从一个长尾巴分裂成几个短尾巴会导致聚集数减少,相应地,胶束中的末端电荷数也减少。同时,结果表明,每个树枝状大分子的表面积不取决于混合分子中的疏水单体或尾巴的数量。还研究了混合分子的结构与所得胶束的静电性质之间的关系。结果发现,冠层中的电荷分布取决于混合分子中的树枝状大分子的代数。对于较小的代数(最多 G=3),观察到标准的双层电。对于较大的代数(G=4),冠层中的树枝状大分子的电荷分为两群:在第一群中,电荷位于胶束核与壳之间边界附近的球形层中,在第二群中,电荷位于球形壳的外围。结果,一部分抗衡离子被局部化在它们之间的宽区域中。这些结果对于使用球形树枝状胶束作为药物输送的纳米容器具有潜在的兴趣。