Advanced Imaging Research Center, University of Texas Southwestern Medical Center , Dallas, Texas 75390, United States.
Department of Chemistry and Biochemistry, San Francisco State University , San Francisco, California 94132, United States.
J Am Chem Soc. 2017 May 17;139(19):6629-6634. doi: 10.1021/jacs.7b00708. Epub 2017 May 8.
Hyperpolarized C magnetic resonance spectroscopy (MRS) provides unprecedented opportunities to obtain clinical diagnostic information through in vivo monitoring of metabolic pathways. The continuing advancement of this field relies on the identification of molecular probes that can effectively interrogate pathways critical to disease. In this report, we describe the synthesis, development, and in vivo application of sodium [1-C]-glycerate ([C]-Glyc) as a novel probe for evaluating glycolysis using hyperpolarized C MRS. This agent was prepared by a concise synthetic route and formulated for dynamic nuclear polarization. [C]-Glyc displayed a high level of polarization and long spin-lattice relaxation time-both of which are necessary for future clinical investigations. In vivo spectroscopic studies with hyperpolarized [C]-Glyc in rat liver furnished metabolic products, [C]-labeled pyruvate and lactate, originating from glycolysis. The levels of production and relative intensities of these metabolites were directly correlated with the induced glycolytic state (fasted versus fed groups). This work establishes hyperpolarized [C]-Glyc as a novel agent for clinically relevant C MRS studies of energy metabolism and further provides opportunities for evaluating intracellular redox states in biochemical investigations.
高极化 C 磁共振波谱(MRS)通过对代谢途径的体内监测,为获得临床诊断信息提供了前所未有的机会。该领域的持续发展依赖于能够有效探测对疾病至关重要途径的分子探针的识别。在本报告中,我们描述了钠 [1-C]-甘油酸盐 ([C]-Glyc) 的合成、开发和体内应用,作为使用高极化 C MRS 评估糖酵解的新型探针。该试剂通过简洁的合成路线制备,并进行了动态核极化的配方设计。[C]-Glyc 显示出高水平的极化和长自旋晶格弛豫时间 - 这两者对于未来的临床研究都是必要的。用高极化 [C]-Glyc 在大鼠肝脏进行的体内光谱研究提供了源自糖酵解的代谢产物 [C]-标记的丙酮酸和乳酸。这些代谢物的产生水平和相对强度与诱导的糖酵解状态(禁食组与进食组)直接相关。这项工作确立了高极化 [C]-Glyc 作为能量代谢的临床相关 C MRS 研究的新型试剂,并进一步为评估生物化学研究中的细胞内氧化还原状态提供了机会。