Hyperpolarized Multi-organ Spectroscopy of Liver and Brain Using 1-13C-Pyruvate Enhanced via Parahydrogen

IF 1.1 4区 物理与天体物理 Q4 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL Applied Magnetic Resonance Pub Date : 2023-08-09 DOI:10.1007/s00723-023-01578-z
Theresa L. K. Hune, Salvatore Mamone, Andreas B. Schmidt, Inês Mahú, Natascha D’Apolito, Dirk Wiedermann, Jens Brüning, Stefan Glöggler
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引用次数: 1

Abstract

Hyperpolarization in nuclear magnetic resonance boosts the signals by several orders of magnitude. Using the singlet spin order of parahydrogen to create large non-equilibrium spin polarization is a fast approach to obtain hyperpolarized metabolites in seconds. In recent years, it has attracted particular interest in the field of biomedicine because signal-enhanced and 13C-enriched metabolites allow for real-time metabolic investigations in combination with imaging in vivo. With this, metabolism can be traced and characterized with spatial selectivity in the body. Here, we introduce a method to use signal-enhanced metabolites to study multiple organs in separate injections to obtain real-time kinetics in vivo of these organs. Using hyperpolarized 1-13C-pyruvate, we measured the kinetics of the conversion from pyruvate to lactate in the brain and the liver of mice. This we did by injecting the hyperpolarized pyruvate two times within half an hour and using each injection to measure the spectra of one region of interest. Organ cross-talk and especially how different organs affect each other in diseases is of major interest and poorly understood, because of the high complexity of biological systems. With the proof-of-principle study provided here, we are introducing a new tool to study organ-related interaction in vivo. It allows the characterization of different organs of the same animal within half an hour, which is enabled by the fast signal enhancement achieved with parahydrogen.

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利用1- 13c -丙酮酸通过对氢增强的肝脏和大脑的超极化多器官光谱
核磁共振中的超极化将信号增强了几个数量级。利用对氢的单重态自旋序产生大的非平衡自旋极化是一种在数秒内获得超极化代谢物的快速方法。近年来,它在生物医学领域引起了特别的兴趣,因为信号增强和富含13c的代谢物可以结合体内成像进行实时代谢研究。有了这个,代谢可以被追踪和表征与空间选择性在体内。在这里,我们介绍了一种方法,利用信号增强代谢物在单独注射中研究多个器官,以获得这些器官在体内的实时动力学。利用超极化1- 13c -丙酮酸,我们测量了丙酮酸在小鼠大脑和肝脏中转化为乳酸的动力学。我们在半小时内两次注射超极化丙酮酸,每次注射测量一个感兴趣区域的光谱。由于生物系统的高度复杂性,器官串扰,特别是不同器官在疾病中如何相互影响是人们感兴趣的主要问题,但人们对这一问题知之甚少。通过这里提供的原理证明研究,我们正在引入一种新的工具来研究体内器官相关的相互作用。它允许在半小时内对同一动物的不同器官进行表征,这是通过对氢实现的快速信号增强实现的。
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来源期刊
Applied Magnetic Resonance
Applied Magnetic Resonance 物理-光谱学
CiteScore
1.90
自引率
10.00%
发文量
59
审稿时长
2.3 months
期刊介绍: Applied Magnetic Resonance provides an international forum for the application of magnetic resonance in physics, chemistry, biology, medicine, geochemistry, ecology, engineering, and related fields. The contents include articles with a strong emphasis on new applications, and on new experimental methods. Additional features include book reviews and Letters to the Editor.
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