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用于生物分子仲氢诱导极化的微特斯拉场射频扫描

Radio-Frequency Sweeps at Microtesla Fields for Parahydrogen-Induced Polarization of Biomolecules.

作者信息

Marshall Alastair, Salhov Alon, Gierse Martin, Müller Christoph, Keim Michael, Lucas Sebastian, Parker Anna, Scheuer Jochen, Vassiliou Christophoros, Neumann Philipp, Jelezko Fedor, Retzker Alex, Blanchard John W, Schwartz Ilai, Knecht Stephan

机构信息

NVision Imaging Technologies GmbH, 89081 Ulm, Germany.

Institute for Quantum Optics (IQO) and Center for Integrated Quantum Science and Technology (IQST), Universität Ulm, Albert-Einstein-Allee 11, D-89081 Ulm, Germany.

出版信息

J Phys Chem Lett. 2023 Mar 2;14(8):2125-2132. doi: 10.1021/acs.jpclett.2c03785. Epub 2023 Feb 20.

Abstract

Magnetic resonance imaging of C-labeled metabolites enhanced by parahydrogen-induced polarization (PHIP) enables real-time monitoring of processes within the body. We introduce a robust, easily implementable technique for transferring parahydrogen-derived singlet order into C magnetization using adiabatic radio frequency sweeps at microtesla fields. We experimentally demonstrate the applicability of this technique to several molecules, including some molecules relevant for metabolic imaging, where we show significant improvements in the achievable polarization, in some cases reaching above 60% nuclear spin polarization. Furthermore, we introduce a site-selective deuteration scheme, where deuterium is included in the coupling network of a pyruvate ester to enhance the efficiency of the polarization transfer. These improvements are enabled by the fact that the transfer protocol avoids relaxation induced by strongly coupled quadrupolar nuclei.

摘要

通过仲氢诱导极化(PHIP)增强的碳标记代谢物的磁共振成像能够实时监测体内过程。我们介绍了一种强大且易于实施的技术,该技术利用微特斯拉场中的绝热射频扫描将源自仲氢的单重态序转移到碳磁化中。我们通过实验证明了该技术对几种分子的适用性,包括一些与代谢成像相关的分子,在这些分子中我们展示了可实现的极化的显著改善,在某些情况下达到了60%以上的核自旋极化。此外,我们引入了一种位点选择性氘化方案,其中氘包含在丙酮酸酯的耦合网络中以提高极化转移的效率。这些改进得益于转移协议避免了由强耦合四极核引起的弛豫这一事实。

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