Cancer Research UK Cambridge Institute, Li Ka Shing Centre, Robinson Way, Cambridge CB2 0RE, United Kingdom.
Cancer Research UK Cambridge Institute, Li Ka Shing Centre, Robinson Way, Cambridge CB2 0RE, United Kingdom; Department of Biochemistry, University of Cambridge, Tennis Court Road, Cambridge CB2 1GA, United Kingdom.
Curr Opin Chem Biol. 2018 Aug;45:187-194. doi: 10.1016/j.cbpa.2018.03.004. Epub 2018 Jul 13.
Hyperpolarization of C-labeled substrates can increase their C NMR signal by more than 10000-fold, which has allowed magnetic resonance imaging (MRI) of metabolic reactions in vivo. This has already provided a unique insight into the dysregulated metabolic pathways and microenvironment of tumors. Perhaps the best known of the cancer-associated metabolic aberrations is the Warburg effect, which has been imaged in patients using hyperpolarized [1-C]pyruvate. In clinical oncology there is a requirement to diagnose tumors earlier, better determine their aggressiveness and prognosis, identify novel treatment targets and detect response to treatment earlier. Here we consider some of the hyperpolarized substrates that have been developed and have the potential to meet these requirements and become the precision imaging tools of the future.
C 标记底物的极化可以将其 C NMR 信号提高 10000 倍以上,这使得在体代谢反应的磁共振成像(MRI)成为可能。这已经为肿瘤失调的代谢途径和微环境提供了独特的见解。也许与癌症相关的代谢异常中最著名的是沃伯格效应,已经使用极化 [1-C]丙酮酸在患者中进行了成像。在临床肿瘤学中,需要更早地诊断肿瘤,更好地确定其侵袭性和预后,识别新的治疗靶点,并更早地检测对治疗的反应。在这里,我们考虑了一些已经开发的极化底物,它们有可能满足这些要求,并成为未来的精准成像工具。