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Anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains

Hydrogen bonding between an amide group and the p- [Formula: see text] cloud of an aromatic ring was first identified in a protein in the 1980s. Subsequent surveys of high-resolution X-ray crystal structures found multiple instances, but their preponderance was determined to be infrequent. Hydrogen...

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Autores principales: Baskaran, Kumaran, Wilburn, Colin W., Wedell, Jonathan R., Koharudin, Leonardus M. I., Ulrich, Eldon L., Schuyler, Adam D., Eghbalnia, Hamid R., Gronenborn, Angela M., Hoch, Jeffrey C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Copernicus GmbH 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10539802/
https://www.ncbi.nlm.nih.gov/pubmed/37905229
http://dx.doi.org/10.5194/mr-2-765-2021
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author Baskaran, Kumaran
Wilburn, Colin W.
Wedell, Jonathan R.
Koharudin, Leonardus M. I.
Ulrich, Eldon L.
Schuyler, Adam D.
Eghbalnia, Hamid R.
Gronenborn, Angela M.
Hoch, Jeffrey C.
author_facet Baskaran, Kumaran
Wilburn, Colin W.
Wedell, Jonathan R.
Koharudin, Leonardus M. I.
Ulrich, Eldon L.
Schuyler, Adam D.
Eghbalnia, Hamid R.
Gronenborn, Angela M.
Hoch, Jeffrey C.
author_sort Baskaran, Kumaran
collection PubMed
description Hydrogen bonding between an amide group and the p- [Formula: see text] cloud of an aromatic ring was first identified in a protein in the 1980s. Subsequent surveys of high-resolution X-ray crystal structures found multiple instances, but their preponderance was determined to be infrequent. Hydrogen atoms participating in a hydrogen bond to the p- [Formula: see text] cloud of an aromatic ring are expected to experience an upfield chemical shift arising from a shielding ring current shift. We surveyed the Biological Magnetic Resonance Data Bank for amide hydrogens exhibiting unusual shifts as well as corroborating nuclear Overhauser effects between the amide protons and ring protons. We found evidence that Trp residues are more likely to be involved in p- [Formula: see text] hydrogen bonds than other aromatic amino acids, whereas His residues are more likely to be involved in in-plane hydrogen bonds, with a ring nitrogen acting as the hydrogen acceptor. The p- [Formula: see text] hydrogen bonds may be more abundant than previously believed. The inclusion in NMR structure refinement protocols of shift effects in amide protons from aromatic sidechains, or explicit hydrogen bond restraints between amides and aromatic rings, could improve the local accuracy of sidechain orientations in solution NMR protein structures, but their impact on global accuracy is likely be limited.
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spelling pubmed-105398022023-10-30 Anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains Baskaran, Kumaran Wilburn, Colin W. Wedell, Jonathan R. Koharudin, Leonardus M. I. Ulrich, Eldon L. Schuyler, Adam D. Eghbalnia, Hamid R. Gronenborn, Angela M. Hoch, Jeffrey C. Magn Reson (Gott) Research Article Hydrogen bonding between an amide group and the p- [Formula: see text] cloud of an aromatic ring was first identified in a protein in the 1980s. Subsequent surveys of high-resolution X-ray crystal structures found multiple instances, but their preponderance was determined to be infrequent. Hydrogen atoms participating in a hydrogen bond to the p- [Formula: see text] cloud of an aromatic ring are expected to experience an upfield chemical shift arising from a shielding ring current shift. We surveyed the Biological Magnetic Resonance Data Bank for amide hydrogens exhibiting unusual shifts as well as corroborating nuclear Overhauser effects between the amide protons and ring protons. We found evidence that Trp residues are more likely to be involved in p- [Formula: see text] hydrogen bonds than other aromatic amino acids, whereas His residues are more likely to be involved in in-plane hydrogen bonds, with a ring nitrogen acting as the hydrogen acceptor. The p- [Formula: see text] hydrogen bonds may be more abundant than previously believed. The inclusion in NMR structure refinement protocols of shift effects in amide protons from aromatic sidechains, or explicit hydrogen bond restraints between amides and aromatic rings, could improve the local accuracy of sidechain orientations in solution NMR protein structures, but their impact on global accuracy is likely be limited. Copernicus GmbH 2021-10-25 /pmc/articles/PMC10539802/ /pubmed/37905229 http://dx.doi.org/10.5194/mr-2-765-2021 Text en Copyright: © 2021 Kumaran Baskaran et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this licence, visit https://creativecommons.org/licenses/by/4.0/
spellingShingle Research Article
Baskaran, Kumaran
Wilburn, Colin W.
Wedell, Jonathan R.
Koharudin, Leonardus M. I.
Ulrich, Eldon L.
Schuyler, Adam D.
Eghbalnia, Hamid R.
Gronenborn, Angela M.
Hoch, Jeffrey C.
Anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains
title Anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains
title_full Anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains
title_fullStr Anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains
title_full_unstemmed Anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains
title_short Anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains
title_sort anomalous amide proton chemical shifts as signatures of hydrogen bonding to aromatic sidechains
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10539802/
https://www.ncbi.nlm.nih.gov/pubmed/37905229
http://dx.doi.org/10.5194/mr-2-765-2021
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