Nonlinear optical properties of photosensory core modules of monomeric and dimeric bacterial phytochromes

Abstract

Near-infrared (NIR) fluorescent proteins and optogenetic tools derived from bacterial phytochromes' photosensory core modules (PCMs) operate within the first (NIR-I) tissue transparency window under single-photon activation. Leveraging two-photon (2P) light in the second transparency window (NIR-II) for photoswitching bacterial phytochromes between Pr and Pfr absorption states offers significant advantages, including enhanced tissue penetration, spatial resolution, and signal-to-noise ratio. However, 2P photoconversion of bacterial phytochromes remains understudied. Here, we study the non-linear Pr to Pfr photoconversion's dependence on irradiation wavelength (1180-1360 nm) and energy fluence (41-339 mJ/cm 2) for the PCM of DrBphP bacterial phytochrome. Our findings reveal substantially higher photoconversion efficiency for the engineered monomeric DrBphP-PCM (73%) compared to the natural dimeric DrBphP-PCM (57%). Molecular mechanical calculations, based on experimentally determined 2P absorption cross-section coefficients for the monomer (167 GM) and dimer (170 GM), further verify these results. We demonstrate both short- (SWE) and long-wavelength excitation (LWE) fluorescence of the Soret band using 405 and 810-890 nm laser sources, respectively. Under LWE, fluorescence emission (724 nm) exhibits saturation at a peak power density of 1.5 GW/cm 2. For SWE, we observe linear degradation of fluorescence for both DrBphP-PCMs, decreasing by 32% as the temperature rises from 19 to 38°C. Conversely, under LWE, the monomeric DrBphP-PCM's brightness increases up to 182% (at 37°C), surpassing the dimeric form's fluorescence rise by 39%. These findings establish the monomeric DrBphP-PCM as a promising template for developing NIR imaging and optogenetic probes operating under the determined optimal parameters for its 2P photoconversion and LWE fluorescence.

Publication DOI: https://doi.org/10.1002/pro.70118
Divisions: College of Engineering & Physical Sciences > Aston Institute of Photonics Technology (AIPT)
College of Engineering & Physical Sciences
Funding Information: This work was supported by grants from the EU’s H2020 Research and Innovation Programme (grant 863214), COST (European Cooperation in Science andTechnology) Action CA23125, EPSRC project EP/W002868/1, and the US National Institutes of Health (grant GM1225
Additional Information: Copyright © 2025 The Author(s). Protein Science published by Wiley Periodicals LLC on behalf of The Protein Society. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
Uncontrolled Keywords: bacterial phytocrome,DrBphP,Near-infrared fluorescent protein (iRFP),long-wavelength excitation,two-photon photoconversation
Publication ISSN: 1469-896X
Last Modified: 19 May 2025 16:41
Date Deposited: 23 Apr 2025 12:09
Full Text Link:
Related URLs: https://onlinel ... .1002/pro.70118 (Publisher URL)
http://www.scop ... tnerID=8YFLogxK (Scopus URL)
PURE Output Type: Article
Published Date: 2025-05
Published Online Date: 2025-04-18
Accepted Date: 2025-03-21
Authors: Galiakhmetova, Diana (ORCID Profile 0000-0002-6222-2122)
Koviarov, Aleksandr
Dremin, Viktor (ORCID Profile 0000-0001-6974-3505)
Gric, Tatjana
Stoliarov, Dmitrii (ORCID Profile 0000-0001-8635-2346)
Gorodetsky, Andrei
Maimaris, Marios
Shcherbakova, Daria
Baloban, Mikhail
Verkhusha, Vladislav
Sokolovski, Sergei G. (ORCID Profile 0000-0001-7445-7204)
Rafailov, Edik (ORCID Profile 0000-0002-4152-0120)

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