Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR Spectroscopy

Protein-protein interactions (PPIs) regulate a plethora of cellular processes and NMR spectroscopy has been a leading technique for characterizing them at the atomic resolution. Technically, however, PPIs characterization has been challenging due to multiple samples required to characterize the hot...

Full description

Bibliographic Details
Main Authors: Erik K. Larsen, Cristina Olivieri, Caitlin Walker, Manu V.S., Jiali Gao, David A. Bernlohr, Marco Tonelli, John L. Markley, Gianluigi Veglia
Format: Article
Language:English
Published: MDPI AG 2018-08-01
Series:Molecules
Subjects:
Online Access:http://www.mdpi.com/1420-3049/23/8/1937
id doaj-9f27098cd6fd4467b12bbfd4bc44a176
record_format Article
spelling doaj-9f27098cd6fd4467b12bbfd4bc44a1762020-11-24T22:22:57ZengMDPI AGMolecules1420-30492018-08-01238193710.3390/molecules23081937molecules23081937Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR SpectroscopyErik K. Larsen0Cristina Olivieri1Caitlin Walker2Manu V.S.3Jiali Gao4David A. Bernlohr5Marco Tonelli6John L. Markley7Gianluigi Veglia8Department of Chemistry, University of Minnesota, Minneapolis, MN 55455, USADepartment of Biochemistry, Molecular Biology, and Biophysics, University of Minnesota, Minneapolis, MN 55455, USADepartment of Biochemistry, Molecular Biology, and Biophysics, University of Minnesota, Minneapolis, MN 55455, USADepartment of Biochemistry, Molecular Biology, and Biophysics, University of Minnesota, Minneapolis, MN 55455, USADepartment of Chemistry, University of Minnesota, Minneapolis, MN 55455, USADepartment of Biochemistry, Molecular Biology, and Biophysics, University of Minnesota, Minneapolis, MN 55455, USANational Magnetic Resonance Facility at Madison, Madison, WI 53706, USADepartment of Biochemistry, University of Wisconsin-Madison, Madison, WI 53706, USADepartment of Chemistry, University of Minnesota, Minneapolis, MN 55455, USAProtein-protein interactions (PPIs) regulate a plethora of cellular processes and NMR spectroscopy has been a leading technique for characterizing them at the atomic resolution. Technically, however, PPIs characterization has been challenging due to multiple samples required to characterize the hot spots at the protein interface. In this paper, we review our recently developed methods that greatly simplify PPI studies, which minimize the number of samples required to fully characterize residues involved in the protein-protein binding interface. This original strategy combines asymmetric labeling of two binding partners and the carbonyl-carbon label selective (CCLS) pulse sequence element implemented into the heteronuclear single quantum correlation (1H-15N HSQC) spectra. The CCLS scheme removes signals of the J-coupled 15N–13C resonances and records simultaneously two individual amide fingerprints for each binding partner. We show the application to the measurements of chemical shift correlations, residual dipolar couplings (RDCs), and paramagnetic relaxation enhancements (PRE). These experiments open an avenue for further modifications of existing experiments facilitating the NMR analysis of PPIs.http://www.mdpi.com/1420-3049/23/8/1937protein-protein interactions (PPI)nuclear magnetic resonance (NMR)Carbonyl Carbon Label Selective (CCLS)dual carbon label selective (DCLS)residual dipolar coupling (RDC)paramagnetic relaxation enhancement (PRE)
collection DOAJ
language English
format Article
sources DOAJ
author Erik K. Larsen
Cristina Olivieri
Caitlin Walker
Manu V.S.
Jiali Gao
David A. Bernlohr
Marco Tonelli
John L. Markley
Gianluigi Veglia
spellingShingle Erik K. Larsen
Cristina Olivieri
Caitlin Walker
Manu V.S.
Jiali Gao
David A. Bernlohr
Marco Tonelli
John L. Markley
Gianluigi Veglia
Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR Spectroscopy
Molecules
protein-protein interactions (PPI)
nuclear magnetic resonance (NMR)
Carbonyl Carbon Label Selective (CCLS)
dual carbon label selective (DCLS)
residual dipolar coupling (RDC)
paramagnetic relaxation enhancement (PRE)
author_facet Erik K. Larsen
Cristina Olivieri
Caitlin Walker
Manu V.S.
Jiali Gao
David A. Bernlohr
Marco Tonelli
John L. Markley
Gianluigi Veglia
author_sort Erik K. Larsen
title Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR Spectroscopy
title_short Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR Spectroscopy
title_full Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR Spectroscopy
title_fullStr Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR Spectroscopy
title_full_unstemmed Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR Spectroscopy
title_sort probing protein-protein interactions using asymmetric labeling and carbonyl-carbon selective heteronuclear nmr spectroscopy
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2018-08-01
description Protein-protein interactions (PPIs) regulate a plethora of cellular processes and NMR spectroscopy has been a leading technique for characterizing them at the atomic resolution. Technically, however, PPIs characterization has been challenging due to multiple samples required to characterize the hot spots at the protein interface. In this paper, we review our recently developed methods that greatly simplify PPI studies, which minimize the number of samples required to fully characterize residues involved in the protein-protein binding interface. This original strategy combines asymmetric labeling of two binding partners and the carbonyl-carbon label selective (CCLS) pulse sequence element implemented into the heteronuclear single quantum correlation (1H-15N HSQC) spectra. The CCLS scheme removes signals of the J-coupled 15N–13C resonances and records simultaneously two individual amide fingerprints for each binding partner. We show the application to the measurements of chemical shift correlations, residual dipolar couplings (RDCs), and paramagnetic relaxation enhancements (PRE). These experiments open an avenue for further modifications of existing experiments facilitating the NMR analysis of PPIs.
topic protein-protein interactions (PPI)
nuclear magnetic resonance (NMR)
Carbonyl Carbon Label Selective (CCLS)
dual carbon label selective (DCLS)
residual dipolar coupling (RDC)
paramagnetic relaxation enhancement (PRE)
url http://www.mdpi.com/1420-3049/23/8/1937
work_keys_str_mv AT erikklarsen probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
AT cristinaolivieri probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
AT caitlinwalker probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
AT manuvs probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
AT jialigao probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
AT davidabernlohr probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
AT marcotonelli probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
AT johnlmarkley probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
AT gianluigiveglia probingproteinproteininteractionsusingasymmetriclabelingandcarbonylcarbonselectiveheteronuclearnmrspectroscopy
_version_ 1725766711491166208