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An integrative approach combining ion mobility mass spectrometry, X-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding

Native mass spectrometry (MS) methods permit the study of multiple protein species within solution equilibria, whereas ion mobility (IM)-MS can report on conformational behavior of specific states. We used IM-MS to study a conformationally labile protein (α(1)-antitrypsin) that undergoes pathologica...

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Autores principales: Nyon, Mun Peak, Prentice, Tanya, Day, Jemma, Kirkpatrick, John, Sivalingam, Ganesh N, Levy, Geraldine, Haq, Imran, Irving, James A, Lomas, David A, Christodoulou, John, Gooptu, Bibek, Thalassinos, Konstantinos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Ltd 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4534181/
https://www.ncbi.nlm.nih.gov/pubmed/26011795
http://dx.doi.org/10.1002/pro.2706
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author Nyon, Mun Peak
Prentice, Tanya
Day, Jemma
Kirkpatrick, John
Sivalingam, Ganesh N
Levy, Geraldine
Haq, Imran
Irving, James A
Lomas, David A
Christodoulou, John
Gooptu, Bibek
Thalassinos, Konstantinos
author_facet Nyon, Mun Peak
Prentice, Tanya
Day, Jemma
Kirkpatrick, John
Sivalingam, Ganesh N
Levy, Geraldine
Haq, Imran
Irving, James A
Lomas, David A
Christodoulou, John
Gooptu, Bibek
Thalassinos, Konstantinos
author_sort Nyon, Mun Peak
collection PubMed
description Native mass spectrometry (MS) methods permit the study of multiple protein species within solution equilibria, whereas ion mobility (IM)-MS can report on conformational behavior of specific states. We used IM-MS to study a conformationally labile protein (α(1)-antitrypsin) that undergoes pathological polymerization in the context of point mutations. The folded, native state of the Z-variant remains highly polymerogenic in physiological conditions despite only minor thermodynamic destabilization relative to the wild-type variant. Various data implicate kinetic instability (conformational lability within a native state ensemble) as the basis of Z α(1)-antitrypsin polymerogenicity. We show the ability of IM-MS to track such disease-relevant conformational behavior in detail by studying the effects of peptide binding on α(1)-antitrypsin conformation and dynamics. IM-MS is, therefore, an ideal platform for the screening of compounds that result in therapeutically beneficial kinetic stabilization of native α(1)-antitrypsin. Our findings are confirmed with high-resolution X-ray crystallographic and nuclear magnetic resonance spectroscopic studies of the same event, which together dissect structural changes from dynamic effects caused by peptide binding at a residue-specific level. IM-MS methods, therefore, have great potential for further study of biologically relevant thermodynamic and kinetic instability of proteins and provide rapid and multidimensional characterization of ligand interactions of therapeutic interest. PDB Code(s): 4PYW
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spelling pubmed-45341812015-08-20 An integrative approach combining ion mobility mass spectrometry, X-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding Nyon, Mun Peak Prentice, Tanya Day, Jemma Kirkpatrick, John Sivalingam, Ganesh N Levy, Geraldine Haq, Imran Irving, James A Lomas, David A Christodoulou, John Gooptu, Bibek Thalassinos, Konstantinos Protein Sci Articles Native mass spectrometry (MS) methods permit the study of multiple protein species within solution equilibria, whereas ion mobility (IM)-MS can report on conformational behavior of specific states. We used IM-MS to study a conformationally labile protein (α(1)-antitrypsin) that undergoes pathological polymerization in the context of point mutations. The folded, native state of the Z-variant remains highly polymerogenic in physiological conditions despite only minor thermodynamic destabilization relative to the wild-type variant. Various data implicate kinetic instability (conformational lability within a native state ensemble) as the basis of Z α(1)-antitrypsin polymerogenicity. We show the ability of IM-MS to track such disease-relevant conformational behavior in detail by studying the effects of peptide binding on α(1)-antitrypsin conformation and dynamics. IM-MS is, therefore, an ideal platform for the screening of compounds that result in therapeutically beneficial kinetic stabilization of native α(1)-antitrypsin. Our findings are confirmed with high-resolution X-ray crystallographic and nuclear magnetic resonance spectroscopic studies of the same event, which together dissect structural changes from dynamic effects caused by peptide binding at a residue-specific level. IM-MS methods, therefore, have great potential for further study of biologically relevant thermodynamic and kinetic instability of proteins and provide rapid and multidimensional characterization of ligand interactions of therapeutic interest. PDB Code(s): 4PYW John Wiley & Sons, Ltd 2015-08 2015-07-14 /pmc/articles/PMC4534181/ /pubmed/26011795 http://dx.doi.org/10.1002/pro.2706 Text en © 2015 The Protein Society http://creativecommons.org/licenses/by/4.0/ 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.
spellingShingle Articles
Nyon, Mun Peak
Prentice, Tanya
Day, Jemma
Kirkpatrick, John
Sivalingam, Ganesh N
Levy, Geraldine
Haq, Imran
Irving, James A
Lomas, David A
Christodoulou, John
Gooptu, Bibek
Thalassinos, Konstantinos
An integrative approach combining ion mobility mass spectrometry, X-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding
title An integrative approach combining ion mobility mass spectrometry, X-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding
title_full An integrative approach combining ion mobility mass spectrometry, X-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding
title_fullStr An integrative approach combining ion mobility mass spectrometry, X-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding
title_full_unstemmed An integrative approach combining ion mobility mass spectrometry, X-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding
title_short An integrative approach combining ion mobility mass spectrometry, X-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding
title_sort integrative approach combining ion mobility mass spectrometry, x-ray crystallography, and nuclear magnetic resonance spectroscopy to study the conformational dynamics of α(1)-antitrypsin upon ligand binding
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4534181/
https://www.ncbi.nlm.nih.gov/pubmed/26011795
http://dx.doi.org/10.1002/pro.2706
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