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Updated: Jul 1, 2026

In vivo Quantification of G Protein Coupled Receptor Interactions using Spectrally Resolved Two-photon Microscopy
Published on: January 20, 2011
The Two-Photon Polarization Ratio Explains Unusual Shape of the Two-Photon Absorption Spectra of Dyes and Detects
Anna Cusick1, Adam Thuen2, Stuart Schultz2
1Leverhulme Quantum Biology Doctoral Training Centre, School of Biosciences, Advanced Technology Institute, University of Surrey, Guildford GU2 7XH, U.K.
Abstract:
Two-photon absorption is a nonlinear optical process in which a molecule simultaneously absorbs two photons. It finds use in two-photon fluorescence microscopy, providing high spatial resolution and deep imaging of biological tissues. Understanding the physical mechanisms of two-photon absorption will help optimize excitation conditions and design brighter probes for two-photon microscopy. The two-photon polarization ratio (Ω), defined as the ratio of the two-photon absorption strength of circularly and linearly polarized light─carries indispensable information on the symmetry of electronic, vibronic, and excitonic transitions. Here, we present a physical model based on few-state approximations to derive analytical expressions for Ω as a function of molecular dipole moment matrix elements. The model accounts for an unusual, Herzberg-Teller vibronic coupling of the permanent dipole moments to the bond-length alternating vibrational coordinate(s). Using this framework, we analyze both monomeric systems (Rhodamine 6G, TM-BODIPY, and the chromophore in fluorescent protein Venus) and a dimeric Venus protein. For the monomers, Ω measurements allow us to resolve the two-photon absorption spectra into components corresponding to the Franck-Condon vibronic progressions similar to those observed in one-photon absorption, as well as new vibronic progressions built upon Herzberg-Teller replicas of the bond-length alternating vibration(s), only pertinent to two-photon absorption. Our model explains previously reported broadening and blue shift of the two-photon absorption spectra of dyes relative to their one-photon absorption counterparts. For the Venus dimer protein, spectral dependence of Ω helps to resolve strongly overlapping excitonic J- and H-transitions and specify mutual geometrical arrangement of the two chromophores.
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