Ultraviolet superradiance from mega-networks of tryptophan in biological architectures

Fuente: arXiv
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Autori principali: Babcock, N. S., Montes-Cabrera, G., Oberhofer, K. E., Chergui, M., Celardo, G. L., Kurian, P.
Natura: Preprint
Pubblicazione: 2023
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author Babcock, N. S.
Montes-Cabrera, G.
Oberhofer, K. E.
Chergui, M.
Celardo, G. L.
Kurian, P.
author_facet Babcock, N. S.
Montes-Cabrera, G.
Oberhofer, K. E.
Chergui, M.
Celardo, G. L.
Kurian, P.
contents Networks of tryptophan -- an aromatic amino acid with strong fluorescent response -- are ubiquitous in biological systems, forming diverse architectures in transmembrane proteins, cytoskeletal filaments, sub-neuronal elements, photoreceptor complexes, virion capsids, and other cellular structures. We analyze the cooperative effects induced by ultraviolet (UV) excitation of several biologically relevant tryptophan mega-networks, thus giving insight into novel mechanisms for cellular signalling and control. Our theoretical analysis in the single-excitation manifold predicts the formation of strongly superradiant states due to collective interactions among organized arrangements of up to more than $10^5$ tryptophan UV-excited transition dipoles in microtubule architectures, which leads to an enhancement of the fluorescence quantum yield that is confirmed by our experiments. We demonstrate the observed consequences of this superradiant behavior in the fluorescence quantum yield for hierarchically organized tubulin structures, which increases in different geometric regimes at thermal equilibrium before saturation -- highlighting the effect's persistence in the presence of disorder.
format Preprint
id arxiv_https___arxiv_org_abs_2302_01469
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Ultraviolet superradiance from mega-networks of tryptophan in biological architectures
Babcock, N. S.
Montes-Cabrera, G.
Oberhofer, K. E.
Chergui, M.
Celardo, G. L.
Kurian, P.
Quantum Physics
Mesoscale and Nanoscale Physics
Biological Physics
Optics
Networks of tryptophan -- an aromatic amino acid with strong fluorescent response -- are ubiquitous in biological systems, forming diverse architectures in transmembrane proteins, cytoskeletal filaments, sub-neuronal elements, photoreceptor complexes, virion capsids, and other cellular structures. We analyze the cooperative effects induced by ultraviolet (UV) excitation of several biologically relevant tryptophan mega-networks, thus giving insight into novel mechanisms for cellular signalling and control. Our theoretical analysis in the single-excitation manifold predicts the formation of strongly superradiant states due to collective interactions among organized arrangements of up to more than $10^5$ tryptophan UV-excited transition dipoles in microtubule architectures, which leads to an enhancement of the fluorescence quantum yield that is confirmed by our experiments. We demonstrate the observed consequences of this superradiant behavior in the fluorescence quantum yield for hierarchically organized tubulin structures, which increases in different geometric regimes at thermal equilibrium before saturation -- highlighting the effect's persistence in the presence of disorder.
title Ultraviolet superradiance from mega-networks of tryptophan in biological architectures
topic Quantum Physics
Mesoscale and Nanoscale Physics
Biological Physics
Optics
url https://arxiv.org/abs/2302.01469