Transmembrane Transport of cAMP and AMP Using a Two Component Small Molecule Transport System

U Uththara M.C. Rathnaweera (Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA) O Olivia Sam (Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA) K Karolis Norvaisa (Engineering of Molecular NanoSystems École Polytechnique de Bruxelles Université Libre de Bruxelles Avenue F.D. Roosevelt 50, CP165/64 Brussels 1050 Belgium) S Sarah R. Marshall (Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA) R Randima D. De Silva Weerakonda Arachchige (Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA) M Matúš Chvojka (Engineering of Molecular NanoSystems École Polytechnique de Bruxelles Université Libre de Bruxelles Avenue F.D. Roosevelt 50, CP165/64 Brussels 1050 Belgium) 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) N Nathalie Busschaert (Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA)

Abstract

Abstract Nucleotides such as cAMP (cyclic adenosine monophosphate) and AMP (adenosine monophosphate) are central to many cellular processes, but their highly hydrophilic and charged nature prevents passive permeation across lipid bilayers. Here, we report the first example of facilitated transport of cAMP and AMP across liposome membranes using a neutral two‐component system at physiological pH. This system pairs a synthetic anionophore targeting the phosphate group with a thymine derivative to boost transport efficiency. Liposome‐based fluorescence and 31 P NMR experiments confirmed transmembrane transport, supported by control experiments. A fluorinated squaramide proved to be the best transporter and was able to transport cAMP even without the help of a thymine derivative, as well as AMP in the presence of a lipophilic thymine derivative. These findings show that carefully designed small molecules can enable direct nucleotide translocation, with potential applications in drug delivery and synthetic biology.

Article Details

Volume / Issue Vol. 65, Issue 4
Published January 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

U

Uththara M.C. Rathnaweera

Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA

O

Olivia Sam

Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA

K

Karolis Norvaisa

Engineering of Molecular NanoSystems École Polytechnique de Bruxelles Université Libre de Bruxelles Avenue F.D. Roosevelt 50, CP165/64 Brussels 1050 Belgium

S

Sarah R. Marshall

Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA

R

Randima D. De Silva Weerakonda Arachchige

Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA

M

Matúš Chvojka

Engineering of Molecular NanoSystems École Polytechnique de Bruxelles Université Libre de Bruxelles Avenue F.D. Roosevelt 50, CP165/64 Brussels 1050 Belgium

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

N

Nathalie Busschaert

Department of Chemistry Tulane University 6400 Freret St New Orleans LA 70118 USA