Preserving Proton Resolution Under Cryogenic Dynamic Nuclear Polarization for Biomolecular Solid‐State NMR

ABSTRACT The combination of proton detection with cryogenic dynamic nuclear polarization (DNP) promises to unite the intrinsic sensitivity and resolution of 1 H‐detected magic‐angle spinning (MAS) NMR with the large signal enhancements afforded by hyperpolarization, but has long been considered impractical because of cryogenic line broadening and the limited spinning frequencies available under DNP conditions. Here, we demonstrate that high‐resolution proton‐detected spectra of proteins can indeed be obtained under cryogenic DNP conditions. Using extensive deuteration, selective 13 CHD 2 methyl labeling, fast MAS and high magnetic fields, we show that site‐resolved proton detection is preserved in both microcrystalline proteins and amyloid fibrils. Quantitative linewidth analysis reveals that, despite broader resonances, proton coherence lifetimes remain remarkably long because high magnetic fields, fast MAS, and extensive proton dilution efficiently suppress the homogeneous contribution, leaving the observed linewidth dominated by refocusable inhomogeneous broadening. The resulting sensitivity enables structurally informative proton‐detected 1 H‐ 1 H correlation spectroscopy under DNP conditions. These results establish proton‐detected DNP as a practical methodology for biomolecular MAS NMR and extend structural studies to challenging protein assemblies limited by sensitivity, spectral crowding, or sample availability.

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Publication Details

Journal
Angewandte Chemie
Published
2026-08-26
DOI
https://doi.org/10.1002/ange.3761769
Primary Topic
Advanced NMR Techniques and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Preserving Proton Resolution Under Cryogenic Dynamic Nuclear Polarization for Biomolecular Solid‐State NMR

Tanguy Le Marchand, Ajit Kumar Bishoyi, Antoine Loquet, Anne Lesage et al.
Angewandte Chemie
Advanced NMR Techniques and Applications
article

Preserving Proton Resolution Under Cryogenic Dynamic Nuclear Polarization for Biomolecular Solid‐State NMR

Tanguy Le Marchand, Ajit Kumar Bishoyi, Antoine Loquet, Anne Lesage, Asen Daskalov, Kshama Sharma, Guido Pintacuda, James Tolchard, Birgit Habenstein, Olivier Ouari, Nadia El Mammeri, Dorothea Wisser, Kristaps Jaudzems, Jan Stanek, Mélanie Berbon, Zhiyu Sun, Sven J. Saupe
article en

Abstract

ABSTRACT The combination of proton detection with cryogenic dynamic nuclear polarization (DNP) promises to unite the intrinsic sensitivity and resolution of 1 H‐detected magic‐angle spinning (MAS) NMR with the large signal enhancements afforded by hyperpolarization, but has long been considered impractical because of cryogenic line broadening and the limited spinning frequencies available under DNP conditions. Here, we demonstrate that high‐resolution proton‐detected spectra of proteins can indeed be obtained under cryogenic DNP conditions. Using extensive deuteration, selective 13 CHD 2 methyl labeling, fast MAS and high magnetic fields, we show that site‐resolved proton detection is preserved in both microcrystalline proteins and amyloid fibrils. Quantitative linewidth analysis reveals that, despite broader resonances, proton coherence lifetimes remain remarkably long because high magnetic fields, fast MAS, and extensive proton dilution efficiently suppress the homogeneous contribution, leaving the observed linewidth dominated by refocusable inhomogeneous broadening. The resulting sensitivity enables structurally informative proton‐detected 1 H‐ 1 H correlation spectroscopy under DNP conditions. These results establish proton‐detected DNP as a practical methodology for biomolecular MAS NMR and extend structural studies to challenging protein assemblies limited by sensitivity, spectral crowding, or sample availability.

Angewandte Chemie
Université Claude Bernard Lyon 1 (FR), École Normale Supérieure de Lyon (FR), Centre National de la Recherche Scientifique (FR), Université de Bordeaux (FR), Friedrich-Alexander-Universität Erlangen-Nürnberg (DE), Innovation (Latvia) (LV), Institut de Chimie Radicalaire (FR), Institut de Biochimie et Génétique Cellulaires (FR), Institut Européen de Chimie et Biologie (FR), Institut Polytechnique de Bordeaux (FR), University of Warsaw (PL)
Agence Nationale de la Recherche, Centre National de la Recherche Scientifique, European Research Council
Openalex Percentile: Top 20%
Advanced NMR Techniques and Applications
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