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迈向通过与超极化129Xe热混合产生的13C超极化生物标志物。

Toward 13C hyperpolarized biomarkers produced by thermal mixing with hyperpolarized 129Xe.

作者信息

Lisitza Natalia, Muradian Iga, Frederick Eric, Patz Samuel, Hatabu Hiroto, Chekmenev Eduard Y

机构信息

Enhanced Magnetic Resonance Laboratory, Huntington Medical Research Institutes, Pasadena, California 91105, USA.

出版信息

J Chem Phys. 2009 Jul 28;131(4):044508. doi: 10.1063/1.3181062.

Abstract

The (13)C NMR signal of acetic acid 1-(13)C-AcH is enhanced by polarization transfer from hyperpolarized (129)Xe using a thermal mixing procedure. 1-(13)C-AcH acid and hyperpolarized (129)Xe are mixed as gases to disperse (129)Xe in the acetic acid. The mixture is frozen with liquid N(2) at 0.5 T. The magnetic field is then momentarily dropped to allow for exchange of spin polarization between (13)C and (129)Xe. After polarization exchange the magnetic field is raised to its original value and the mixture is thawed, resulting in a solution of polarization enhanced 1-(13)C-AcH. A (13)C nuclear spin polarization enhancement of 10 is observed compared to its thermal polarization at 4.7 T. This polarization enhancement is approximately three orders of magnitude lower than that predicted by theory. The discrepancy is attributed to the formation of either an inhomogeneous solid matrix and/or spin dynamics during polarization transfer. Despite the low polarization enhancement, this is the first report of polarization transfer from (129)Xe to (13)C nuclear spins achieved by thermal mixing for a proton-containing molecule of biomedical importance. If future work can increase the enhancement, this method will be useful in hyperpolarizing a wide range of (13)C enriched compounds important in biomedical and biophysical research.

摘要

使用热混合程序,通过超极化的(129)Xe的极化转移增强了乙酸1-(13)C-AcH的(13)C NMR信号。将1-(13)C-AcH酸和超极化的(129)Xe作为气体混合,以使(129)Xe分散在乙酸中。混合物在0.5 T下用液氮冷冻。然后瞬间降低磁场,以允许(13)C和(129)Xe之间的自旋极化交换。极化交换后,将磁场升高到其原始值并解冻混合物,得到极化增强的1-(13)C-AcH溶液。在4.7 T下,观察到1-(13)C的核自旋极化增强比其热极化增强了10倍。这种极化增强比理论预测值低约三个数量级。差异归因于极化转移过程中不均匀固体基质的形成和/或自旋动力学。尽管极化增强较低,但这是首次通过热混合实现从(129)Xe到具有生物医学重要性的含质子分子的(13)C核自旋的极化转移的报道。如果未来的工作能够提高增强效果,这种方法将有助于对生物医学和生物物理研究中重要的多种(13)C富集化合物进行超极化。

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