Hybrid Molecules Consisting of Lysine Dendrons with Several Hydrophobic Tails: A SCF Study of Self-Assembling

Author:

Shavykin Oleg V.123ORCID,Mikhtaniuk Sofia E.1ORCID,Fatullaev Emil I.1ORCID,Neelov Igor M.1ORCID,Leermakers Frans A. M.4ORCID,Brito Mariano E.5ORCID,Holm Christian5ORCID,Borisov Oleg V.67ORCID,Darinskii Anatoly A.6ORCID

Affiliation:

1. 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

2. Physics Department, Lomonosov Moscow State University, Leninskie Gory 1-2, 119991 Moscow, Russia

3. Department of Mathematics, Tver State University, Sadoviy per., 35, 170102 Tver, Russia

4. Physical Chemistry and Soft Matter, Wageningen University, 6703 NB Wageningen, The Netherlands

5. Institute for Computational Physics, University of Stuttgart, D-70569 Stuttgart, Germany

6. Institute of Macromolecular Compounds of the Russian Academy of Sciences, 199004 St. Petersburg, Russia

7. Institutdes Sciences Analytiques et de Physico-Chimie pour l’Environnementetles Matériaux, UMR 5254 CNRS UPPA, 64053 Pau, France

Abstract

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 G 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.

Funder

O.V.S., S.E.M., E.I.F., I.M.N., O.V.B. and A.A.D.

DFG-RBS Russia

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference101 articles.

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3. Hamley, I.W. (2004). Developments in Block Copolymer Science and Technology, John Wiley & Sons.

4. Frechet, M., and Tomalia, D. (2001). Dendrimers and Other Dendritic Polymer, Wiley.

5. Cheng, Y., and Tomalia, D. (2012). Dendrimer-Based Drug Delivery Systems: From Theory to Practice, Wiley.

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. An Overview of Supramolecular Platforms Boosting Drug Delivery;Bioinorganic Chemistry and Applications;2023-11-13

2. Molecular Dynamics of Lysine Dendrigrafts in Methanol–Water Mixtures;International Journal of Molecular Sciences;2023-02-04

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