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Non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations

Cysteine–water cluster cations Cys(H(2)O)(3,6)(+) and Cys(H(2)O)(3,6)H(+) are assembled in He droplets and probed by tandem mass spectrometry with collision-induced activation. Benchmark experimental data for this biologically important system are complemented with theory to elucidate the details of...

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Autores principales: Tiefenthaler, Lukas, Scheier, Paul, Erdmann, Ewa, Aguirre, Néstor F., Díaz-Tendero, Sergio, Luxford, Thomas F. M., Kočišek, Jaroslav
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9930733/
https://www.ncbi.nlm.nih.gov/pubmed/36647750
http://dx.doi.org/10.1039/d2cp04172c
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author Tiefenthaler, Lukas
Scheier, Paul
Erdmann, Ewa
Aguirre, Néstor F.
Díaz-Tendero, Sergio
Luxford, Thomas F. M.
Kočišek, Jaroslav
author_facet Tiefenthaler, Lukas
Scheier, Paul
Erdmann, Ewa
Aguirre, Néstor F.
Díaz-Tendero, Sergio
Luxford, Thomas F. M.
Kočišek, Jaroslav
author_sort Tiefenthaler, Lukas
collection PubMed
description Cysteine–water cluster cations Cys(H(2)O)(3,6)(+) and Cys(H(2)O)(3,6)H(+) are assembled in He droplets and probed by tandem mass spectrometry with collision-induced activation. Benchmark experimental data for this biologically important system are complemented with theory to elucidate the details of the collision-induced activation process. Experimental energy thresholds for successive release of water are compared to water dissociation energies from DFT calculations showing that clusters do not only fragment exclusively by sequential emission of single water molecules but also by the release of small water clusters. Release of clustered water is observed also in the ADMP (atom centered density matrix propagation) molecular dynamics model of small Cys(H(2)O)(3)(+) and Cys(H(2)O)(3)H(+) clusters. For large clusters Cys(H(2)O)(6)(+) and Cys(H(2)O)(6)H(+) the less computationally demanding statistical Microcanonical Metropolis Monte–Carlo method (M(3)C) is used to model the experimental fragmentation patterns. We are able to detail the energy redistribution in clusters upon collision activation. In the present case, about two thirds of the collision energy redistribute via an ergodic process, while the remaining one third is transferred into a non-ergodic channel leading to ejection of a single water molecule from the cluster. In contrast to molecular fragmentation, which can be well described by statistical models, modelling of collision-induced activation of weakly bound clusters requires inclusion of non-ergodic processes.
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spelling pubmed-99307332023-02-16 Non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations Tiefenthaler, Lukas Scheier, Paul Erdmann, Ewa Aguirre, Néstor F. Díaz-Tendero, Sergio Luxford, Thomas F. M. Kočišek, Jaroslav Phys Chem Chem Phys Chemistry Cysteine–water cluster cations Cys(H(2)O)(3,6)(+) and Cys(H(2)O)(3,6)H(+) are assembled in He droplets and probed by tandem mass spectrometry with collision-induced activation. Benchmark experimental data for this biologically important system are complemented with theory to elucidate the details of the collision-induced activation process. Experimental energy thresholds for successive release of water are compared to water dissociation energies from DFT calculations showing that clusters do not only fragment exclusively by sequential emission of single water molecules but also by the release of small water clusters. Release of clustered water is observed also in the ADMP (atom centered density matrix propagation) molecular dynamics model of small Cys(H(2)O)(3)(+) and Cys(H(2)O)(3)H(+) clusters. For large clusters Cys(H(2)O)(6)(+) and Cys(H(2)O)(6)H(+) the less computationally demanding statistical Microcanonical Metropolis Monte–Carlo method (M(3)C) is used to model the experimental fragmentation patterns. We are able to detail the energy redistribution in clusters upon collision activation. In the present case, about two thirds of the collision energy redistribute via an ergodic process, while the remaining one third is transferred into a non-ergodic channel leading to ejection of a single water molecule from the cluster. In contrast to molecular fragmentation, which can be well described by statistical models, modelling of collision-induced activation of weakly bound clusters requires inclusion of non-ergodic processes. The Royal Society of Chemistry 2023-01-17 /pmc/articles/PMC9930733/ /pubmed/36647750 http://dx.doi.org/10.1039/d2cp04172c Text en This journal is © the Owner Societies https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Tiefenthaler, Lukas
Scheier, Paul
Erdmann, Ewa
Aguirre, Néstor F.
Díaz-Tendero, Sergio
Luxford, Thomas F. M.
Kočišek, Jaroslav
Non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations
title Non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations
title_full Non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations
title_fullStr Non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations
title_full_unstemmed Non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations
title_short Non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations
title_sort non-ergodic fragmentation upon collision-induced activation of cysteine–water cluster cations
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9930733/
https://www.ncbi.nlm.nih.gov/pubmed/36647750
http://dx.doi.org/10.1039/d2cp04172c
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