Self‐Assembled Polypseudorotaxanes Crosslinked by Dynamic Disulfide Bonds as Modular Functionalization for Thiophilic Metal Nanoparticles

X Xiang Xu B Bing Zan (School of Physics and Astronomy, Shanghai Jiao Tong University, No. 800 Dongchuan Road, Shanghai 200240, China) Y Yuanyang Xie P Pornpilat Akapan (Institute of Pharmaceutical Science King's College London Franklin Wilkins Building Stamford Street London SE1 9NH UK) M Marcelo da Silva (Institute of Pharmaceutical Science King's College London Franklin Wilkins Building Stamford Street London SE1 9NH UK) M Miao Zhao E Erol Hasan A Aliaksandra Rakovich (Department of Physics and London Centre for Nanotechnology King's College London London WS2R 2LS UK) D Driton Vllasaliu (Institute of Pharmaceutical Science King's College London Franklin Wilkins Building Stamford Street London SE1 9NH UK) G Gregory N. Smith G Gustavo González‐Gaitano (Department of Chemistry School of Science University of Navarra Pamplona 31080 Spain) G Graeme Hogarth (Department of Chemistry King's College London Britannia House 7 Trinity Street London SE1 1DB UK) C Cécile A. Dreiss (Institute of Pharmaceutical Science King's College London Franklin Wilkins Building Stamford Street London SE1 9NH UK)

Abstract

Abstract As supramolecular assemblies, polypseudorotaxanes (PPR) exhibit inherent advantages in modular adaptability and structural programmability, with the potential to build tuneable platforms integrating various functionalities. Here we report the “one‐pot” preparation of a self‐assembled thiol‐rich PPR (SPPR), where thiolated‐α‐cyclodextrins (SHαCD) spontaneously thread onto polymers, and are then crosslinked into a three‐dimensional network by the thermally‐triggered oxidation of thiols into disulfide bonds. The dynamic thiol groups along the SPPR provide remarkable modularity for the functionalization of thiophilic metal nanoparticles (NPs), exemplified by two application vectors. First, SPPR were used as building blocks of a thermo‐responsive hydrogel to incorporate thiophilic NPs, where NPs are tethered to the networks and, in turn, reinforce its mechanical properties. The resulting gels, characterized by small‐angle neutron‐scattering and rheology, display photo‐responsive gelation and thixotropy. In the second application, the affinity of metal NPs to the dynamic thiol groups on SPPR was exploited to “wrap” the polymers around the NPs, through simple tuning of concentration and chain length. The flexible polydisulfides layer endows NPs with enhanced cancer cytotoxicity, possibly via the thiol‐mediated uptake pathway. These results establish SPPR as a powerful functionalization platform, offering a promising route toward customized supramolecular materials.

Article Details

Volume / Issue Vol. 64, Issue 44
Published October 27, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

X

Xiang Xu

B

Bing Zan

School of Physics and Astronomy, Shanghai Jiao Tong University, No. 800 Dongchuan Road, Shanghai 200240, China

Y

Yuanyang Xie

P

Pornpilat Akapan

Institute of Pharmaceutical Science King's College London Franklin Wilkins Building Stamford Street London SE1 9NH UK

M

Marcelo da Silva

Institute of Pharmaceutical Science King's College London Franklin Wilkins Building Stamford Street London SE1 9NH UK

M

Miao Zhao

E

Erol Hasan

A

Aliaksandra Rakovich

Department of Physics and London Centre for Nanotechnology King's College London London WS2R 2LS UK

D

Driton Vllasaliu

Institute of Pharmaceutical Science King's College London Franklin Wilkins Building Stamford Street London SE1 9NH UK

G

Gregory N. Smith

G

Gustavo González‐Gaitano

Department of Chemistry School of Science University of Navarra Pamplona 31080 Spain

G

Graeme Hogarth

Department of Chemistry King's College London Britannia House 7 Trinity Street London SE1 1DB UK

C

Cécile A. Dreiss

Institute of Pharmaceutical Science King's College London Franklin Wilkins Building Stamford Street London SE1 9NH UK