Ichikawa Kazuhiro, Yamada Ken-Ichi, Yasukawa Keiji, Utsumi Hideo
Department of Bio-function Science, Faculty of Pharmaceutical Sciences, Kyushu University, Fukuoka, Japan.
Yakugaku Zasshi. 2009 Mar;129(3):273-8. doi: 10.1248/yakushi.129.273.
In vivo redox reaction is involved in processes of oxidative diseases. The redox imaging technique is important to diagnose redox-induced diseases and to assess cure effects of pharmaceutical drugs. A group of nitroxyl radicals is sensitive to redox reactions and we have investigated mechanisms of oxidative diseases, including diabetes, ischemia reperfusion injuries and gastric ulcer. ESR technique has been utilized in analysis of free radicals, which is generated through imbalance of in vivo redox status. We have been developing magnetic resonance approaches for imaging free radicals/redox status in living animals. Overhauser enhanced MRI (OMRI) is a new technique for imaging in vivo redox status in animals via Overhauser effect. We have developed nanometer-scale imaging and simultaneous assessment of redox processes by using OMRI with (14)N- and (15)N- labeled nitroxyl probes with different distribution properties. We also developed a home-built OMRI imager based on an electromagnet for L-band ESRI. This OMRI technique with dual probes may become a powerful tool to clarify mechanisms of disease and to monitor pharmaceutical therapy.
体内氧化还原反应参与氧化疾病的发生过程。氧化还原成像技术对于诊断氧化还原诱导的疾病以及评估药物治疗效果至关重要。一组硝酰自由基对氧化还原反应敏感,我们已经研究了包括糖尿病、缺血再灌注损伤和胃溃疡在内的氧化疾病的发病机制。电子自旋共振(ESR)技术已被用于分析体内氧化还原状态失衡产生的自由基。我们一直在开发用于在活体动物中对自由基/氧化还原状态进行成像的磁共振方法。奥弗豪泽增强磁共振成像(OMRI)是一种通过奥弗豪泽效应在动物体内对氧化还原状态进行成像的新技术。我们已经通过使用具有不同分布特性的(14)N和(15)N标记的硝酰探针,利用OMRI开发了纳米级成像和氧化还原过程的同步评估方法。我们还基于用于L波段电子自旋共振成像(ESRI)的电磁铁开发了一台自制的OMRI成像仪。这种具有双探针的OMRI技术可能成为阐明疾病机制和监测药物治疗的有力工具。