Spatiotemporal Control of the Formation of Luminescent Lanthanide Complexes in Liposome‐Based Nanoreactors

A Aaron Torres‐Huerta (Engineering of Molecular NanoSystems (EMNS) Université libre de Bruxelles Avenue F. Roosevelt 50, CP165/64 Brussels B‐1050 Belgium) M Miriam de J. Velásquez‐Hernández (Center for Membrane Separations Adsorption Catalysis, and Spectroscopy (cMACS) KU Leuven Leuven 3001 Belgium) E Elena Tamarit‐Amoros (Engineering of Molecular NanoSystems (EMNS) Université libre de Bruxelles Avenue F. Roosevelt 50, CP165/64 Brussels B‐1050 Belgium) M Marina Raschetti (CNRS, Institut FEMTO‐ST Université Marie et Louis Pasteur Besançon F‐25000 France) D Daniel Pinkas (CEITEC – Central European Institute of Technology Masaryk University Kamenice 5 Brno CZ‐62500 Czechia) O Ondřej Jurček (Department of Natural Drugs Faculty of Pharmacy Masaryk University Palackého 1946/1 Brno CZ‐61200 Czechia) J Javier Pérez H Hennie Valkenier (Université libre de Bruxelles (ULB), Engineering of Molecular NanoSystems, Ecole Polytechnique De Bruxelles, Avenue F. Roosevelt 50, CP165/64, 1050 Brussels, Belgium)

Abstract

Abstract The controlled mass transfer across compartmentalised environments in synthetic nanoreactors is essential for enhancing precise spatiotemporal manipulation of chemical transformations within confined spaces. In this study, we present a strategy that integrates a synthetic anion transporter in liposome‐based nanoreactors, allowing for spatiotemporal control over the formation of metal–organic complexes in liposomes. This approach enables us to effectively modulate the assembly of luminescent lanthanide‐benzenedicarboxylate nanostructures. Fluorescence studies demonstrate that the reaction rate can be customised by varying the anion transporter concentration, which dictates the rate of entry of the carboxylate ligand. Changes in the morphology of the liposome nanoreactors due to the assisted transmembrane transport of benzenedicarboxylate were investigated using cryo‐TEM and time‐resolved SAXS measurements, which revealed a structural transformation of the lipid bilayer during the complex formation. Our findings provide a novel platform for exploring coordination chemistry in nanoscale confinements, opening avenues for the design of biohybrid materials.

Article Details

Volume / Issue Vol. 64, Issue 45
Published November 03, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

A

Aaron Torres‐Huerta

Engineering of Molecular NanoSystems (EMNS) Université libre de Bruxelles Avenue F. Roosevelt 50, CP165/64 Brussels B‐1050 Belgium

M

Miriam de J. Velásquez‐Hernández

Center for Membrane Separations Adsorption Catalysis, and Spectroscopy (cMACS) KU Leuven Leuven 3001 Belgium

E

Elena Tamarit‐Amoros

Engineering of Molecular NanoSystems (EMNS) Université libre de Bruxelles Avenue F. Roosevelt 50, CP165/64 Brussels B‐1050 Belgium

M

Marina Raschetti

CNRS, Institut FEMTO‐ST Université Marie et Louis Pasteur Besançon F‐25000 France

D

Daniel Pinkas

CEITEC – Central European Institute of Technology Masaryk University Kamenice 5 Brno CZ‐62500 Czechia

O

Ondřej Jurček

Department of Natural Drugs Faculty of Pharmacy Masaryk University Palackého 1946/1 Brno CZ‐61200 Czechia

J

Javier Pérez

H

Hennie Valkenier

Université libre de Bruxelles (ULB), Engineering of Molecular NanoSystems, Ecole Polytechnique De Bruxelles, Avenue F. Roosevelt 50, CP165/64, 1050 Brussels, Belgium