Reversible Parahydrogen Induced Hyperpolarization of 15N in Unmodified Amino Acids Unraveled at High Magnetic Field

Author:

Vaneeckhaute Ewoud123ORCID,Tyburn Jean‐Max4,Kempf James G.5ORCID,Martens Johan A.126ORCID,Breynaert Eric12ORCID

Affiliation:

1. COK‐kat Centre for Surface Chemistry and Catalysis—Characterization and Application Team KU Leuven Celestijnenlaan 200F, box 2461 Leuven B‐3001 Belgium

2. NMRCoRe NMR/X‐Ray Platform for Convergence Research KU Leuven Celestijnenlaan 200F, box 2461 Leuven B‐3001 Belgium

3. Univ Lyon CNRS, ENS Lyon UCBL Université de Lyon CRMN UMR 5280 Villeurbanne 69100 France

4. Bruker Biospin 34 Rue de l'Industrie BP 10002 Wissembourg Cedex 67166 France

5. Bruker Biospin 15 Fortune Dr. Billerica MA 01821 USA

6. Deutsches Elektronen‐Synchrotron DESY – Centre for Molecular Water Science (CMWS) Notkestraße 85 22607 Hamburg Germany

Abstract

AbstractAmino acids (AAs) and ammonia are metabolic markers essential for nitrogen metabolism and cell regulation in both plants and humans. NMR provides interesting opportunities to investigate these metabolic pathways, yet lacks sensitivity, especially in case of 15N. In this study, spin order embedded in p‐H2 is used to produce on‐demand reversible hyperpolarization in 15N of pristine alanine and ammonia under ambient protic conditions directly in the NMR spectrometer. This is made possible by designing a mixed‐ligand Ir‐catalyst, selectively ligating the amino group of AA by exploiting ammonia as a strongly competitive co‐ligand and preventing deactivation of Ir by bidentate ligation of AA. The stereoisomerism of the catalyst complexes is determined by hydride fingerprinting using 1H/D scrambling of the associated N‐functional groups on the catalyst (i.e., isotopological fingerprinting), and unravelled by 2D‐ZQ‐NMR. Monitoring the transfer of spin order from p‐H2 to 15N nuclei of ligated and free alanine and ammonia targets using SABRE‐INEPT with variable exchange delays pinpoints the monodentate elucidated catalyst complexes to be most SABRE active. Also RF‐spin locking (SABRE‐SLIC) enables transfer of hyperpolarization to 15N. The presented high‐field approach can be a valuable alternative to SABRE‐SHEATH techniques since the obtained catalytic insights (stereochemistry and kinetics) will remain valid at ultra‐low magnetic fields.

Funder

European Research Council

Hercules Foundation

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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