The carbonyl-lock mechanism underlying non-aromatic fluorescence in biological matter

Author:

Mirón Gonzalo Díaz,Semelak Jonathan A.,Grisanti LucaORCID,Rodriguez AlexORCID,Conti IreneORCID,Stella Martina,Velusamy JayaramakrishnanORCID,Seriani Nicola,Došlić Nadja,Rivalta IvanORCID,Garavelli MarcoORCID,Estrin Dario A.ORCID,Kaminski Schierle Gabriele S.ORCID,González Lebrero Mariano C.,Hassanali AliORCID,Morzan Uriel N.

Abstract

AbstractChallenging the basis of our chemical intuition, recent experimental evidence reveals the presence of a new type of intrinsic fluorescence in biomolecules that exists even in the absence of aromatic or electronically conjugated chemical compounds. The origin of this phenomenon has remained elusive so far. In the present study, we identify a mechanism underlying this new type of fluorescence in different biological aggregates. By employing non-adiabatic ab initio molecular dynamics simulations combined with a data-driven approach, we characterize the typical ultrafast non-radiative relaxation pathways active in non-fluorescent peptides. We show that the key vibrational mode for the non-radiative decay towards the ground state is the carbonyl elongation. Non-aromatic fluorescence appears to emerge from blocking this mode with strong local interactions such as hydrogen bonds. While we cannot rule out the existence of alternative non-aromatic fluorescence mechanisms in other systems, we demonstrate that this carbonyl-lock mechanism for trapping the excited state leads to the fluorescence yield increase observed experimentally, and set the stage for design principles to realize novel non-invasive biocompatible probes with applications in bioimaging, sensing, and biophotonics.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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