Membrane-targeted push-pull azobenzenes for the optical modulation of membrane potential

IF 20.6 Q1 OPTICS Light-Science & Applications Pub Date : 2025-01-01 DOI:10.1038/s41377-024-01669-x
Valentina Sesti, Arianna Magni, Matteo Moschetta, Chiara Florindi, Marlene E. Pfeffer, Mattia Lorenzo DiFrancesco, Michele Guizzardi, Giulia Folpini, Luca Sala, Alessandra Gilda Ritacca, Beatrice Campanelli, Paola Moretti, Giuseppe Maria Paternò, Luca Maragliano, Matteo Tommasini, Francesco Lodola, Elisabetta Colombo, Fabio Benfenati, Chiara Bertarelli, Guglielmo Lanzani
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Abstract

We introduce a family of membrane-targeted azobenzenes (MTs) with a push-pull character as a new tool for cell stimulation. These molecules are water soluble and spontaneously partition in the cell membrane. Upon light irradiation, they isomerize from trans to cis, changing the local charge distribution and thus stimulating the cell response. Specifically, MTs photoisomerization induces clear and reproducible depolarization. The most promising species, MTP2, was extensively studied. Time-resolved spectroscopy techniques provide insights into the excited state evolution and a complete understanding of its isomerization reaction. Molecular Dynamics simulations reveal the spontaneous and stable partitioning of the compound into the cellular membrane, without significant alterations to the bilayer thickness. MTP2 was tested in different cell types, including HEK293T cells, primary neurons, and cardiomyocytes, and a steady depolarization is always recorded. The observed membrane potential modulation in in-vitro models is attributed to the variation in membrane surface charge, resulting from the light-driven modulation of the MT dipole moment within the cell membrane. Additionally, a developed mathematical model successfully captures the temporal evolution of the membrane potential upon photostimulation. Despite being insufficient for triggering action potentials, the rapid light-induced depolarization holds potential applications, particularly in cardiac electrophysiology. Low-intensity optical stimulation with these modulators could influence cardiac electrical activity, demonstrating potential efficacy in destabilizing and terminating cardiac arrhythmias. We anticipate the MTs approach to find applications in neuroscience, biomedicine, and biophotonics, providing a tool for modulating cell physiology without genetic interventions.

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Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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