Live‐Cell RNA Imaging via Clickable Tri <i>PPP</i> ro Nucleotide Reporters

J J. Iven H. Knaack (Organic Chemistry Department of Chemistry Faculty of Sciences University of Hamburg Martin‐Luther‐King‐Platz 6 20146 Hamburg Germany) E Eileen List (Institute of Organic Chemistry Karlsruher Institute of Technology (KIT) Fritz‐Haber‐Weg 6 76131 Karlsruhe Germany) D Dörte Stalling (Centre for Structural Systems Biology (CSSB) Notkestraße 85, Building 15 22607 Hamburg Germany) V Vincente T. Sterrenberg (Organic Chemistry Department of Chemistry Faculty of Sciences University of Hamburg Martin‐Luther‐King‐Platz 6 20146 Hamburg Germany) C Chris Meier H Hans‐Achim Wagenknecht (Institute of Organic Chemistry Karlsruher Institute of Technology (KIT) Fritz‐Haber‐Weg 6 76131 Karlsruhe Germany) J Jens B. Bosse (Centre for Structural Systems Biology (CSSB) Notkestraße 85, Building 15 22607 Hamburg Germany)

Abstract

Abstract Understanding RNA synthesis and dynamics in cells requires efficient labeling strategies that are not only compatible with cellular environments but can be performed in living cells. We developed a robust, bio‐orthogonal approach for live‐cell RNA labeling using Tri PPP ro (triphosphate prodrug) chemistry. This strategy enables the intracellular delivery of sterically demanding nucleoside triphosphates modified with inverse electron‐demand Diels–Alder (IEDDA)‐reactive groups, specifically trans ‐cyclooctene (2TCO a ) and bicyclo[6.1.0]nonyne (BCN). Once hydrolyzed inside cells, these Tri PPP ro‐modified uridines and cytidines are metabolically incorporated into nascent RNA by endogenous RNA polymerases. Subsequent IEDDA reaction with a dual‐fluorogenic tetrazine‐cyanine styryl dye conjugate allows wash‐free, high‐contrast imaging of RNA synthesis in cells. We demonstrate efficient RNA labeling, including nucleolar localization and specificity for newly transcribed RNA, validated by transcriptional inhibition and colocalization with ribosomal RNA. Comparative analyses confirm that Tri PPP ro delivery surpasses conventional transporter‐based systems in both labeling efficiency and cellular compatibility. This platform offers a modular, non‐genetic, and highly specific method for real‐time RNA imaging, with broad applicability for RNA biology and antiviral research.

Article Details

Volume / Issue Vol. 65, Issue 2
Published January 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

J

J. Iven H. Knaack

Organic Chemistry Department of Chemistry Faculty of Sciences University of Hamburg Martin‐Luther‐King‐Platz 6 20146 Hamburg Germany

E

Eileen List

Institute of Organic Chemistry Karlsruher Institute of Technology (KIT) Fritz‐Haber‐Weg 6 76131 Karlsruhe Germany

D

Dörte Stalling

Centre for Structural Systems Biology (CSSB) Notkestraße 85, Building 15 22607 Hamburg Germany

V

Vincente T. Sterrenberg

Organic Chemistry Department of Chemistry Faculty of Sciences University of Hamburg Martin‐Luther‐King‐Platz 6 20146 Hamburg Germany

C

Chris Meier

H

Hans‐Achim Wagenknecht

Institute of Organic Chemistry Karlsruher Institute of Technology (KIT) Fritz‐Haber‐Weg 6 76131 Karlsruhe Germany

J

Jens B. Bosse

Centre for Structural Systems Biology (CSSB) Notkestraße 85, Building 15 22607 Hamburg Germany