Biocompatible TADF Probes for Highly Multiplexed Fluorescence Lifetime Imaging

P Pilar Suárez de Cepeda (Centre for Inflammation Research The University of Edinburgh Edinburgh EH16 4UU UK) F Ferran Nadal‐Bufi (Centre for Inflammation Research The University of Edinburgh Edinburgh EH16 4UU UK) J Janine Haug (Organic Semiconductor Centre EaStCHEM School of Chemistry University of St Andrews St Andrews Fife KY16 9ST UK) T Tomas Matulaitis (Organic Semiconductor Centre EaStCHEM School of Chemistry University of St Andrews St Andrews Fife KY16 9ST UK) Y Yanzi Zhou C Charles Lochenie (Pandemic Science Hub, Institute for Regeneration and Repair) Q Quan Qi (Department of Economics, University at Albany, State University of New York) A André Jung (Organic Semiconductor Centre EaStCHEM School of Chemistry University of St Andrews St Andrews Fife KY16 9ST UK) D Dongyang Chen C Concepción González‐Bello (Centro Singular de Investigación en Química Biolóxica e Materiais Moleculares (CiQUS) Departamento de Química Orgánica Universidade de Santiago de Compostela Santiago de Compostela 15782 Spain) S Stefan Bräse (Institute of Biological and Chemical Systems–Functional Molecular Systems, Karlsruhe Institute of Technology) E Eli Zysman‐Colman (Organic Semiconductor Centre, EaStCHEM School of Chemistry University of St Andrews St Andrews UK) M Marc Vendrell (Centre for Inflammation Research)

Abstract

Abstract Fluorescence lifetime imaging microscopy (FLIM) is an optical imaging modality that can provide multiplexed readouts with remarkable sensitivity to cellular microenvironments. Even though fluorescence lifetimes can distinguish fluorophores having overlapping spectral profiles, conventional fluorophores possess a narrow range of emission lifetimes (typically shorter than 5 ns) that limits their potential for multiplexed imaging. In this work, we have systematically designed and evaluated a combination of thermally activated delayed fluorescence (TADF) nanoprobes for multiplexed FLIM. We have synthesized a collection of 36 TADF biocompatible nanoprobes with long and diverse fluorescence lifetimes in aqueous media (up to 15 ns) and employed selected probes for live‐cell imaging of bacterial cells under physiological conditions. By leveraging the exceptionally broad range of fluorescence lifetimes of these TADF emitters, we have achieved unprecedented simultaneous imaging of five nanoprobes within a single spectral window using a FLIM‐phasor strategy. These findings demonstrate that TADF emitters are excellent scaffolds to unlock the capabilities of fluorescence lifetime imaging for multi‐color biological studies.

Article Details

Volume / Issue Vol. 65, Issue 8
Published February 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

P

Pilar Suárez de Cepeda

Centre for Inflammation Research The University of Edinburgh Edinburgh EH16 4UU UK

F

Ferran Nadal‐Bufi

Centre for Inflammation Research The University of Edinburgh Edinburgh EH16 4UU UK

J

Janine Haug

Organic Semiconductor Centre EaStCHEM School of Chemistry University of St Andrews St Andrews Fife KY16 9ST UK

T

Tomas Matulaitis

Organic Semiconductor Centre EaStCHEM School of Chemistry University of St Andrews St Andrews Fife KY16 9ST UK

Y

Yanzi Zhou

C

Charles Lochenie

Pandemic Science Hub, Institute for Regeneration and Repair

Q

Quan Qi

Department of Economics, University at Albany, State University of New York

A

André Jung

Organic Semiconductor Centre EaStCHEM School of Chemistry University of St Andrews St Andrews Fife KY16 9ST UK

D

Dongyang Chen

C

Concepción González‐Bello

Centro Singular de Investigación en Química Biolóxica e Materiais Moleculares (CiQUS) Departamento de Química Orgánica Universidade de Santiago de Compostela Santiago de Compostela 15782 Spain

S

Stefan Bräse

Institute of Biological and Chemical Systems–Functional Molecular Systems, Karlsruhe Institute of Technology

E

Eli Zysman‐Colman

Organic Semiconductor Centre, EaStCHEM School of Chemistry University of St Andrews St Andrews UK

M

Marc Vendrell

Centre for Inflammation Research