Paul C. Lauterbur Research Center for Biomedical Imaging, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, Guangdong, China.
Key Laboratory for Magnetic Resonance and Multimodality Imaging of Guangdong Province, Shenzhen, Guangdong, China.
NMR Biomed. 2023 Jul;36(7):e4890. doi: 10.1002/nbm.4890. Epub 2022 Dec 29.
Deuterium ( H) magnetic resonance imaging is an emerging approach for noninvasively studying glucose metabolism in vivo, which is important for understanding pathogenesis and monitoring the progression of many diseases such as tumors, diabetes, and neurodegenerative diseases. However, the synthesis of H-labeled glucose is costly because of the expensive raw substrates and the requirement for extreme reaction conditions, making the H-labeled glucose rather expensive and unaffordable for clinic use. In this study, we present a new deuterated compound, [2,3,4,6,6'- H ]-D-glucose, with an approximate 10-fold reduction in production costs. The synthesis route uses cheaper raw substrate methyl-α-D-glucopyranoside, relies on mild reaction conditions (80°C), and has higher deuterium labeling efficiency. Magnetic resonance spectroscopy (MRS) and mass spectroscopy experiments confirmed the successful deuterium labeling in the compound. Animal studies demonstrated that the substrate could describe the glycolytic metabolism in a glioma rat model by quantifying the downstream metabolites through H-MRS on an ultrahigh field system. Comparison of the glucose metabolism characteristics was carried out between [2,3,4,6,6'- H ]-D-glucose and commercial [6,6'- H ]-D-glucose in the animal studies. This cost-effective compound will help facilitate the clinical translation of deuterium magnetic resonance imaging, and enable this powerful metabolic imaging modality to be widely used in both preclinical and clinical research and applications.
氘(H)磁共振成像是一种新兴的非侵入性方法,可用于研究体内葡萄糖代谢,这对于了解许多疾病(如肿瘤、糖尿病和神经退行性疾病)的发病机制和监测其进展非常重要。然而,由于昂贵的原料和极端的反应条件,H 标记葡萄糖的合成成本很高,使得 H 标记葡萄糖在临床上既昂贵又难以承受。在本研究中,我们提出了一种新的氘代化合物 [2,3,4,6,6'-H]-D-葡萄糖,其生产成本降低了约 10 倍。该合成路线使用更便宜的原料甲基-α-D-吡喃葡萄糖苷,依赖于温和的反应条件(80°C),并且具有更高的氘标记效率。磁共振波谱(MRS)和质谱实验证实了该化合物的成功氘标记。动物研究表明,该底物可通过在超高场系统上进行 H-MRS 来定量下游代谢物,从而描述胶质瘤大鼠模型中的糖酵解代谢。在动物研究中,对[2,3,4,6,6'-H]-D-葡萄糖和商业[6,6'-H]-D-葡萄糖的葡萄糖代谢特征进行了比较。这种具有成本效益的化合物将有助于促进氘磁共振成像的临床转化,并使这种强大的代谢成像方式在临床前和临床研究和应用中得到广泛应用。