Water‐Soluble Molecular Wires for Membrane Potential Imaging

M Mirna El Khatib (Department of Biochemistry and Biophysics Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA) M Margret A. Fye (Department of Cell and Developmental Biology School of Medicine Vanderbilt University Nashville TN 37240 USA) K Keita Uchida (Department of Physiology Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA) A Ana L. Obaid (Department of Neuroscience Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA) T Thomas Troxler (Department of Biochemistry and Biophysics, Perelman School of Medicine, University of Pennsylvania) D Dylan Valente (Department of Biochemistry and Biophysics Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA) B Brian M. Salzberg (Department of Physiology Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA) B Benjamin Prosser (Department of Physiology Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA) I Irina N. Kaverina (Department of Cell and Developmental Biology School of Medicine Vanderbilt University Nashville TN 37240 USA) S Sergei A. Vinogradov (Department of Biochemistry and Biophysics, University of Pennsylvania)

Abstract

Abstract Voltage‐sensitive probes based on donor‐acceptor dyads, whose fluorescence is modulated by photoinduced electron transfer (PET) in response to changes in membrane potential, are known as PET molecular wires. PET wires have been widely used in cultured cells; however, their applications in tissue‐level imaging have been hampered by their inadequate aqueous solubility, necessitating pre‐dissolution in organic solvents that potentially can cause toxic effects. Here we present the synthesis, electronic structure analysis, photophysical characterization, and initial demonstration of water‐soluble amphiphilic molecular wires, consisting of a rosamine, as a fluorescent PET acceptor, and a PET donor consisting of a conjugated bridge terminated by dimethylaniline (DMA). The rosamine moiety is extended by several carboxylates or polyethylene glycol (PEG) groups, which render the probes highly water‐soluble and facilitate labeling of phospholipid membranes, positioning molecules in proper orientation. The probes produced functional responses in electrically stimulated mouse cardiomyocytes and as well as in intact neurohypophysis, and in glucose‐stimulated murine islets of Langerhans. The new molecular wires make up a useful addition to the toolkit of optical reporters for membrane potential imaging.

Article Details

Volume / Issue Vol. 64, Issue 37
Published September 08, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

M

Mirna El Khatib

Department of Biochemistry and Biophysics Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA

M

Margret A. Fye

Department of Cell and Developmental Biology School of Medicine Vanderbilt University Nashville TN 37240 USA

K

Keita Uchida

Department of Physiology Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA

A

Ana L. Obaid

Department of Neuroscience Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA

T

Thomas Troxler

Department of Biochemistry and Biophysics, Perelman School of Medicine, University of Pennsylvania

D

Dylan Valente

Department of Biochemistry and Biophysics Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA

B

Brian M. Salzberg

Department of Physiology Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA

B

Benjamin Prosser

Department of Physiology Perelman School of Medicine University of Pennsylvania Philadelphia PA 19104 USA

I

Irina N. Kaverina

Department of Cell and Developmental Biology School of Medicine Vanderbilt University Nashville TN 37240 USA

S

Sergei A. Vinogradov

Department of Biochemistry and Biophysics, University of Pennsylvania