Correction of field instabilities in biomolecular solid-state NMR by simultaneous acquisition of a frequency reference
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Published:2022-02-09
Issue:1
Volume:3
Page:15-26
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ISSN:2699-0016
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Container-title:Magnetic Resonance
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language:en
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Short-container-title:Magn. Reson.
Author:
Římal Václav, Callon Morgane, Malär Alexander A., Cadalbert Riccardo, Torosyan Anahit, Wiegand Thomas, Ernst MatthiasORCID, Böckmann AnjaORCID, Meier Beat H.ORCID
Abstract
Abstract. With the advent of faster magic-angle spinning (MAS) and
higher magnetic fields, the resolution of biomolecular solid-state nuclear
magnetic resonance (NMR) spectra has been continuously increasing. As a
direct consequence, the always narrower spectral lines, especially in
proton-detected spectroscopy, are also becoming more sensitive to temporal
instabilities of the magnetic field in the sample volume. Field drifts in
the order of tenths of parts per million occur after probe insertion or temperature
change, during cryogen refill, or are intrinsic to the superconducting
high-field magnets, particularly in the months after charging. As an alternative to a field–frequency lock based on deuterium solvent
resonance rarely available for solid-state NMR, we present a strategy to
compensate non-linear field drifts using simultaneous acquisition of a
frequency reference (SAFR). It is based on the acquisition of an auxiliary
1D spectrum in each scan of the experiment. Typically, a small-flip-angle
pulse is added at the beginning of the pulse sequence. Based on the
frequency of the maximum of the solvent signal, the field evolution in time
is reconstructed and used to correct the raw data after acquisition, thereby
acting in its principle as a digital lock system. The general applicability
of our approach is demonstrated on 2D and 3D protein spectra during various
situations with a non-linear field drift. SAFR with small-flip-angle pulses
causes no significant loss in sensitivity or increase in experimental time
in protein spectroscopy. The correction leads to the possibility of
recording high-quality spectra in a typical biomolecular experiment even
during non-linear field changes in the order of 0.1 ppm h−1 without the
need for hardware solutions, such as stabilizing the temperature of the
magnet bore. The improvement of linewidths and peak shapes turns out to be
especially important for 1H-detected spectra under fast MAS, but the
method is suitable for the detection of carbon or other nuclei as well.
Funder
H2020 European Research Council Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung Eidgenössische Technische Hochschule Zürich Agence Nationale de Recherches sur le Sida et les Hépatites Virales Centre National de la Recherche Scientifique Agence Nationale de la Recherche
Publisher
Copernicus GmbH
Reference38 articles.
1. Böckmann, A., Gardiennet, C., Verel, R., Hunkeler, A., Loquet, A.,
Pintacuda, G., Emsley, L., Meier, B. H., and Lesage, A.: Characterization of
different water pools in solid-state NMR protein samples, J. Biomol. NMR,
45, 319–327, https://doi.org/10.1007/s10858-009-9374-3, 2009. 2. Bodenhausen, G., Kogler, H., and Ernst, R. R.: Selection of
coherence-transfer pathways in NMR pulse experiments, J. Magn. Reson.,
58, 370–388, https://doi.org/10.1016/0022-2364(84)90142-2, 1984. 3. Callon, M., Malär, A. A., Pfister, S., Římal, V., Weber, M. E.,
Wiegand, T., Zehnder, J., Chávez, M., Cadalbert, R., Deb, R., Däpp,
A., Fogeron, M.-L., Hunkeler, A., Lecoq, L., Torosyan, A., Zyla, D.,
Glockshuber, R., Jonas, S., Nassal, M., Ernst, M., Böckmann, A., and
Meier, B. H.: Biomolecular solid-state NMR spectroscopy at 1200 MHz: the
gain in resolution, J. Biomol. NMR, 75, 255–272,
https://doi.org/10.1007/s10858-021-00373-x, 2021. 4. Gallo, A., Franks, W. T., and Lewandowski, J. R.: A suite of solid-state NMR
experiments to utilize orphaned magnetization for assignment of proteins
using parallel high and low gamma detection, J. Magn. Reson., 305, 219–231,
https://doi.org/10.1016/j.jmr.2019.07.006, 2019. 5. Gopinath, T. and Veglia, G.: Proton-detected polarization optimized
experiments (POE) using ultrafast magic angle spinning solid-state NMR:
Multi-acquisition of membrane protein spectra, J. Magn. Reson., 310, 106664,
https://doi.org/10.1016/j.jmr.2019.106664, 2020.
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