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高通量活性氧(ROS)检测:一种用于筛选药物光毒性潜力的赋能技术。

High-throughput reactive oxygen species (ROS) assay: an enabling technology for screening the phototoxic potential of pharmaceutical substances.

作者信息

Onoue Satomi, Igarashi Naoko, Yamada Shizuo, Tsuda Yoshiko

机构信息

Analytical Research and Development, Pfizer Global Research and Development, Nagoya Laboratories, Pfizer Japan Inc., 5-2 Taketoyo, Aichi 470-2393, Japan.

出版信息

J Pharm Biomed Anal. 2008 Jan 7;46(1):187-93. doi: 10.1016/j.jpba.2007.09.003. Epub 2007 Sep 8.

Abstract

Recently, attention has been drawn to drug-induced phototoxic skin responses, and avoidance of this undesired side effect is necessary for pharmaceutical development. We previously proposed that determination of reactive oxygen species (ROS) generated from photoirradiated compounds would be effective for the prediction of the phototoxic potential. In this investigation, a high-throughput ROS assay system was developed using a multiwell plate and quartz reaction container. The experimental conditions of irradiance uniformity, UV intensity, exposure time, temperature and solvent systems were found to affect the generation of ROS, and thus the conditions of the ROS assay were optimized. The intra- and inter-day R.S.D. values for the determination of ROS from quinine (200 microM) irradiated at 250 W/m(2) for 1h was found to be less than 3.3 and 4.5%, respectively. The results from the ROS assay of 39 compounds allowed us to estimate classification criteria to identify the ability of phototoxic/photochemical responses. The developed assay system will be an effective tool for predicting the phototoxic potential of pharmaceutical candidates in early stage of pharmaceutical development.

摘要

最近,药物诱导的光毒性皮肤反应已引起关注,对于药物研发而言,避免这种不良副作用很有必要。我们之前提出,测定光照射化合物产生的活性氧(ROS)对于预测光毒性潜力是有效的。在本研究中,使用多孔板和石英反应容器开发了一种高通量ROS检测系统。发现辐照度均匀性、紫外线强度、暴露时间、温度和溶剂系统等实验条件会影响ROS的产生,因此对ROS检测的条件进行了优化。对于在250 W/m²照射1小时的奎宁(200 microM),测定ROS的日内和日间相对标准偏差(R.S.D.)值分别小于3.3%和4.5%。对39种化合物的ROS检测结果使我们能够估计分类标准,以识别光毒性/光化学反应的能力。所开发的检测系统将成为在药物研发早期预测候选药物光毒性潜力的有效工具。

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