Published July 1, 2024 | Version v1

Chemically induced deceleration of nuclear spin relaxation (CIDER) preserves hyperpolarization

Description

This data corresponds to the following paper:

Title: Chemically induced deceleration of nuclear spin relaxation (CIDER) preserves hyperpolarization
Journal: Science Advances

DOI: 10.1126/sciadv.adx2316
Authors: Josh P. Peters, Charbel Assaf, Arne Brahms, Kolja Them, Mirco Gerdsen, Rainer Herges, Jan-Bernd Hövener, Andrey N. Pravdivtsev

The data is organized with respect to the subfigures in figure 2 and figure 3 as a whole. Data not shown in figures is placed in Supplement.
An overview about the experiments is given in "Experiment overview.xlsx", while the extracted data for each figure is summarized in "Analyzed data.xlsx"
A description of acquisition parameters is provided in the "Acquisition parameters.xlsx" file for each dataset.

Abstract (English)

Gadolinium-based contrast agents revolutionized magnetic resonance imaging (MRI) by accelerating spin relaxation. In contrast, agents that decelerate relaxation were hitherto unknown. Such agents are highly desirable for metabolic imaging with hyperpolarized tracers such as 15N-pyridine, 1,4-13C2-succinate, and 1-15N-nicotinamide, where valuable polarization decays rapidly, especially at low fields during transfer between polarizer and scanner. Here, we report on a previously unrecognized effect in which the tracers’ longitudinal and transverse relaxation rates in aqueous solution are substantially reduced by adding nicotinamide, urea, glycerol, or dendrons. The impact on longitudinal relaxation is particularly pronounced at low magnetic fields and near the tracer’s pKa where T1 can be tripled. This mitigates polarization loss during transfer, so hitherto unsuitable, fast-relaxing molecules can be used now. This way, we achieved the 15N hyperpolarization of nearly 30% for 1-15N-nicotinamide. This chemically induced deceleration of nuclear spin relaxation (CIDER) was confirmed using magnetic field–cycling experiments and offers broad potential for hyperpolarized magnetic resonance and beyond.

Other (English)

We acknowledge funding from the German Federal Ministry of Education and Research (BMBF) Try-IBD (01ZX1915C) and hyperquant (03WIR6208A) and the DFG (555951950, 527469039, 469366436, HO-4602/2-2, HO-4602/3, GRK2154-2019, EXC2167, FOR5042, and TRR287). R.H. is grateful for support by the DFG via funding of project HE 1530/23-1. MOIN CC was founded by a grant from the European Regional Development Fund (ERDF) and the Zukunftsprogramm Wirtschaft of Schleswig-Holstein (project no. 122-09-053). We acknowledge the financial support of Kiel University through validation funds and the assistance from the fabrication center “FabLab” and their support in the design and construction of the MFC system. We acknowledge financial support by Land Schleswig-Holstein within the funding programme Open Access Publikationsfonds.

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Journal article: 10.1126/sciadv.adx2316 (DOI)