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Oxidation increases the strength of the methionine-aromatic interaction

Oxidation of methionine disrupts the structure and function of a range of proteins, but little is understood about the chemistry that underlies these perturbations. Using quantum mechanical calculations, we show that oxidation increases the strength of the methionine-aromatic interaction motif—a dri...

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Autores principales: Lewis, Andrew K., Dunleavy, Katie, Senkow, Tiffany L., Her, Cheng, Horn, Benjamin T., Jersett, Mark A., Mahling, Ryan, McCarthy, Megan R., Perell, Gabriella T., Valley, Christopher C., Karim, Christine B., Gao, Jiali, Pomerantz, William C. K., Thomas, David D., Cembran, Alessandro, Hinderliter, Anne, Sachs, Jonathan N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5060120/
https://www.ncbi.nlm.nih.gov/pubmed/27547920
http://dx.doi.org/10.1038/nchembio.2159
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author Lewis, Andrew K.
Dunleavy, Katie
Senkow, Tiffany L.
Her, Cheng
Horn, Benjamin T.
Jersett, Mark A.
Mahling, Ryan
McCarthy, Megan R.
Perell, Gabriella T.
Valley, Christopher C.
Karim, Christine B.
Gao, Jiali
Pomerantz, William C. K.
Thomas, David D.
Cembran, Alessandro
Hinderliter, Anne
Sachs, Jonathan N.
author_facet Lewis, Andrew K.
Dunleavy, Katie
Senkow, Tiffany L.
Her, Cheng
Horn, Benjamin T.
Jersett, Mark A.
Mahling, Ryan
McCarthy, Megan R.
Perell, Gabriella T.
Valley, Christopher C.
Karim, Christine B.
Gao, Jiali
Pomerantz, William C. K.
Thomas, David D.
Cembran, Alessandro
Hinderliter, Anne
Sachs, Jonathan N.
author_sort Lewis, Andrew K.
collection PubMed
description Oxidation of methionine disrupts the structure and function of a range of proteins, but little is understood about the chemistry that underlies these perturbations. Using quantum mechanical calculations, we show that oxidation increases the strength of the methionine-aromatic interaction motif—a driving force for protein folding and protein-protein interaction—by 0.5 – 1.4 kcal/mol. We find that non-hydrogen bonded interactions between dimethyl sulfoxide (a methionine analog) and aromatic groups are enriched in both the Protein Data Bank and Cambridge Structural Database. Thermal denaturation and NMR experiments on model peptides demonstrate that oxidation of methionine stabilizes the interaction by 0.5–0.6 kcal/mol. We confirm the biological relevance of these findings through a combination of cell biology, electron paramagnetic resonance spectroscopy and molecular dynamics simulations on 1) calmodulin structure and dynamics and 2) lymphotoxin-α/TNFR1 binding. Thus, the methionine-aromatic motif is a determinant of protein structural and functional sensitivity to oxidative stress.
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spelling pubmed-50601202017-02-22 Oxidation increases the strength of the methionine-aromatic interaction Lewis, Andrew K. Dunleavy, Katie Senkow, Tiffany L. Her, Cheng Horn, Benjamin T. Jersett, Mark A. Mahling, Ryan McCarthy, Megan R. Perell, Gabriella T. Valley, Christopher C. Karim, Christine B. Gao, Jiali Pomerantz, William C. K. Thomas, David D. Cembran, Alessandro Hinderliter, Anne Sachs, Jonathan N. Nat Chem Biol Article Oxidation of methionine disrupts the structure and function of a range of proteins, but little is understood about the chemistry that underlies these perturbations. Using quantum mechanical calculations, we show that oxidation increases the strength of the methionine-aromatic interaction motif—a driving force for protein folding and protein-protein interaction—by 0.5 – 1.4 kcal/mol. We find that non-hydrogen bonded interactions between dimethyl sulfoxide (a methionine analog) and aromatic groups are enriched in both the Protein Data Bank and Cambridge Structural Database. Thermal denaturation and NMR experiments on model peptides demonstrate that oxidation of methionine stabilizes the interaction by 0.5–0.6 kcal/mol. We confirm the biological relevance of these findings through a combination of cell biology, electron paramagnetic resonance spectroscopy and molecular dynamics simulations on 1) calmodulin structure and dynamics and 2) lymphotoxin-α/TNFR1 binding. Thus, the methionine-aromatic motif is a determinant of protein structural and functional sensitivity to oxidative stress. 2016-08-22 2016-10 /pmc/articles/PMC5060120/ /pubmed/27547920 http://dx.doi.org/10.1038/nchembio.2159 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Lewis, Andrew K.
Dunleavy, Katie
Senkow, Tiffany L.
Her, Cheng
Horn, Benjamin T.
Jersett, Mark A.
Mahling, Ryan
McCarthy, Megan R.
Perell, Gabriella T.
Valley, Christopher C.
Karim, Christine B.
Gao, Jiali
Pomerantz, William C. K.
Thomas, David D.
Cembran, Alessandro
Hinderliter, Anne
Sachs, Jonathan N.
Oxidation increases the strength of the methionine-aromatic interaction
title Oxidation increases the strength of the methionine-aromatic interaction
title_full Oxidation increases the strength of the methionine-aromatic interaction
title_fullStr Oxidation increases the strength of the methionine-aromatic interaction
title_full_unstemmed Oxidation increases the strength of the methionine-aromatic interaction
title_short Oxidation increases the strength of the methionine-aromatic interaction
title_sort oxidation increases the strength of the methionine-aromatic interaction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5060120/
https://www.ncbi.nlm.nih.gov/pubmed/27547920
http://dx.doi.org/10.1038/nchembio.2159
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