Charge‐Driven Self‐Assembly of Cholesterol Surfactants into Biofunctional Nanodiscs with Antiviral Activity

Y Yanping Long S Seyyed Mohammad Mousavifard (Department of Polymer and Color Engineering Amirkabir University of Technology 424 Hafez Tehran Iran) X Xianfeng He (Fachbereich Physik Freie Universität Berlin Arnimallee 14 14195 Berlin Germany) R Roland R. Netz (Fachbereich Physik, Freie Universität Berlin, Arnimallee 14, 14195 Berlin, Germany) H Hesam Makki (Department of Chemical Engineering University of Bath Bath BA2 7AY UK) M Mathias Dimde C Chuanxiong Nie (Institute of Chemistry and Biochemistry Freie Universität Berlin Berlin Germany) A Abhishek K. Singh (Institute of Chemistry and Biochemistry, Freie Universität Berlin, Takustraβe 3, 14195 Berlin, Germany) R Rainer Haag (Institute of Chemistry and Biochemistry, Freie Universität Berlin, Takustraβe 3, 14195 Berlin, Germany)

Abstract

Abstract Self‐assembly of lipid structures derived from amphiphilic molecules plays a crucial role in the development of biomimetic systems. Here we report a modular synthetic strategy for developing cholesteryl‐oligo‐glycerol‐based surfactants with tunable head group functionalities ranging from nonionic to anionic. This approach enables the systematic incorporation of functional groups and thus precise control of surface charge and hydrophilicity. To investigate the influence of multivalent charges on supermolecular‐assembly behavior, we compared three structurally cholesterol (CL) related surfactants: CL‐4S, with four sulfate groups, CL‐1S, with a single sulfate group, and CL‐4OH, a nonionic analog with four hydroxyl groups. We then incorporated these surfactants into lipid bilayers of 1,2‐dimyristoyl‐sn‐glycero‐3‐phosphocholine (DMPC) and cholesterol (CL) to study their behavior in membrane‐like environments. Experimental, simulation, and theoretical studies demonstrated that the CL‐4S formulation was able to convert lipid vesicles into nanodiscs, unlike CL‐1S and CL‐4OH, demonstrating the importance of adequate charges in supramolecular transition. Furthermore, both 1S‐Vesicles (CL‐1S based sulfated vesicles) and 4S‐Nanodiscs (CL‐4S based sulfated nanodiscs) showed inhibitory activity against herpes simplex virus‐1 (HSV‐1), indicating the potential of this multivalent supramolecular platform for antiviral applications.

Article Details

Volume / Issue Vol. 65, Issue 1
Published January 02, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

Y

Yanping Long

S

Seyyed Mohammad Mousavifard

Department of Polymer and Color Engineering Amirkabir University of Technology 424 Hafez Tehran Iran

X

Xianfeng He

Fachbereich Physik Freie Universität Berlin Arnimallee 14 14195 Berlin Germany

R

Roland R. Netz

Fachbereich Physik, Freie Universität Berlin, Arnimallee 14, 14195 Berlin, Germany

H

Hesam Makki

Department of Chemical Engineering University of Bath Bath BA2 7AY UK

M

Mathias Dimde

C

Chuanxiong Nie

Institute of Chemistry and Biochemistry Freie Universität Berlin Berlin Germany

A

Abhishek K. Singh

Institute of Chemistry and Biochemistry, Freie Universität Berlin, Takustraβe 3, 14195 Berlin, Germany

R

Rainer Haag

Institute of Chemistry and Biochemistry, Freie Universität Berlin, Takustraβe 3, 14195 Berlin, Germany