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Water Loss from Protonated XxxSer and XxxThr Dipeptides Gives Oxazoline—Not Oxazolone—Product Ions

[Image: see text] Neutral loss of water and ammonia are often significant fragmentation channels upon collisional activation of protonated peptides. Here, we deploy infrared ion spectroscopy to investigate the dehydration reactions of protonated AlaSer, AlaThr, GlySer, GlyThr, PheSer, PheThr, ProSer...

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Autores principales: Oomens, Jos, Kempkes, Lisanne J. M., Geurts, Thijs P. J., van Dijk, Luuk, Martens, Jonathan, Berden, Giel, Armentrout, P. B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7552115/
https://www.ncbi.nlm.nih.gov/pubmed/32876444
http://dx.doi.org/10.1021/jasms.0c00239
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author Oomens, Jos
Kempkes, Lisanne J. M.
Geurts, Thijs P. J.
van Dijk, Luuk
Martens, Jonathan
Berden, Giel
Armentrout, P. B.
author_facet Oomens, Jos
Kempkes, Lisanne J. M.
Geurts, Thijs P. J.
van Dijk, Luuk
Martens, Jonathan
Berden, Giel
Armentrout, P. B.
author_sort Oomens, Jos
collection PubMed
description [Image: see text] Neutral loss of water and ammonia are often significant fragmentation channels upon collisional activation of protonated peptides. Here, we deploy infrared ion spectroscopy to investigate the dehydration reactions of protonated AlaSer, AlaThr, GlySer, GlyThr, PheSer, PheThr, ProSer, ProThr, AsnSer, and AsnThr, focusing on the question of the structure of the resulting [M + H – H(2)O](+) fragment ion and the site from which H(2)O is expelled. In all cases, the second residue of the selected peptides contains a hydroxyl moiety, so that H(2)O loss can potentially occur from this side-chain, as an alternative to loss from the C-terminal free acid of the dipeptide. Infrared action spectra of the product ions along with quantum-chemical calculations unambiguously show that dehydration consistently produces fragment ions containing an oxazoline moiety. This contrasts with the common oxazolone structure that would result from dehydration at the C-terminus analogous to the common b/y dissociation forming regular b(2)-type sequence ions. The oxazoline product structure suggests a reaction mechanism involving water loss from the Ser/Thr side-chain with concomitant nucleophilic attack of the amide carbonyl oxygen at its β-carbon, forming an oxazoline ring. However, an extensive quantum-chemical investigation comparing the potential energy surfaces for three entirely different dehydration reaction pathways indicates that it is actually the backbone amide oxygen atom that leaves as the water molecule.
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spelling pubmed-75521152020-10-14 Water Loss from Protonated XxxSer and XxxThr Dipeptides Gives Oxazoline—Not Oxazolone—Product Ions Oomens, Jos Kempkes, Lisanne J. M. Geurts, Thijs P. J. van Dijk, Luuk Martens, Jonathan Berden, Giel Armentrout, P. B. J Am Soc Mass Spectrom [Image: see text] Neutral loss of water and ammonia are often significant fragmentation channels upon collisional activation of protonated peptides. Here, we deploy infrared ion spectroscopy to investigate the dehydration reactions of protonated AlaSer, AlaThr, GlySer, GlyThr, PheSer, PheThr, ProSer, ProThr, AsnSer, and AsnThr, focusing on the question of the structure of the resulting [M + H – H(2)O](+) fragment ion and the site from which H(2)O is expelled. In all cases, the second residue of the selected peptides contains a hydroxyl moiety, so that H(2)O loss can potentially occur from this side-chain, as an alternative to loss from the C-terminal free acid of the dipeptide. Infrared action spectra of the product ions along with quantum-chemical calculations unambiguously show that dehydration consistently produces fragment ions containing an oxazoline moiety. This contrasts with the common oxazolone structure that would result from dehydration at the C-terminus analogous to the common b/y dissociation forming regular b(2)-type sequence ions. The oxazoline product structure suggests a reaction mechanism involving water loss from the Ser/Thr side-chain with concomitant nucleophilic attack of the amide carbonyl oxygen at its β-carbon, forming an oxazoline ring. However, an extensive quantum-chemical investigation comparing the potential energy surfaces for three entirely different dehydration reaction pathways indicates that it is actually the backbone amide oxygen atom that leaves as the water molecule. American Chemical Society 2020-09-02 2020-10-07 /pmc/articles/PMC7552115/ /pubmed/32876444 http://dx.doi.org/10.1021/jasms.0c00239 Text en Published by the American Chemical Society. All rights reserved. This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Oomens, Jos
Kempkes, Lisanne J. M.
Geurts, Thijs P. J.
van Dijk, Luuk
Martens, Jonathan
Berden, Giel
Armentrout, P. B.
Water Loss from Protonated XxxSer and XxxThr Dipeptides Gives Oxazoline—Not Oxazolone—Product Ions
title Water Loss from Protonated XxxSer and XxxThr Dipeptides Gives Oxazoline—Not Oxazolone—Product Ions
title_full Water Loss from Protonated XxxSer and XxxThr Dipeptides Gives Oxazoline—Not Oxazolone—Product Ions
title_fullStr Water Loss from Protonated XxxSer and XxxThr Dipeptides Gives Oxazoline—Not Oxazolone—Product Ions
title_full_unstemmed Water Loss from Protonated XxxSer and XxxThr Dipeptides Gives Oxazoline—Not Oxazolone—Product Ions
title_short Water Loss from Protonated XxxSer and XxxThr Dipeptides Gives Oxazoline—Not Oxazolone—Product Ions
title_sort water loss from protonated xxxser and xxxthr dipeptides gives oxazoline—not oxazolone—product ions
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7552115/
https://www.ncbi.nlm.nih.gov/pubmed/32876444
http://dx.doi.org/10.1021/jasms.0c00239
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