Chen S H, Gallo J M
Department of Chemistry, National Cheng Kung University, Tainan, Taiwan.
Electrophoresis. 1998 Nov;19(16-17):2861-9. doi: 10.1002/elps.1150191612.
As antisense drugs become mature for clinical trials, analytical techniques to analyze antisense DNA in biological media for characterization of their pharmacokinetics will be in demand. Due to the superior resolving power of capillary gel electrophoresis (CGE), CGE will likely be a preferred method in quantifying intact oligonucleotides as well as the putative metabolic products. Nonetheless, biological mediums can influence the stability of the gel column, making a CGE assay time-consuming. In one approach, high-performance liquid chromatography (HPLC) was used to quantify the total amount of antisense compounds to increase the sample throughput and CGE was used to determine the relative percentage of the intact and metabolic species on specific samples. Alternatively, extensive sample pretreatment procedures were performed and the samples were quantified and characterized directly by CGE alone with the use of an internal standard. Both methods have been used to characterize the pharmacokinetics of antisense compounds. This review focuses on the instrumental and technical aspects of analyzing antisense DNA in biological mediums using CGE either as a single or a combined method towards better understanding of the pharmacokinetics of antisense DNA. Moreover, the newer analytical technologies of capillary electrophoresis (CE), which hold great potential to be used for pharmacokinetic applications, such as the replenishable sieving matrix combined with an innovative coupling approach and microchip CE, will also be explored.
随着反义药物逐渐成熟进入临床试验阶段,用于分析生物介质中反义DNA以表征其药代动力学的分析技术将成为需求。由于毛细管凝胶电泳(CGE)具有卓越的分辨能力,CGE可能会成为定量完整寡核苷酸以及推定代谢产物的首选方法。尽管如此,生物介质会影响凝胶柱的稳定性,使得CGE分析耗时较长。在一种方法中,使用高效液相色谱(HPLC)来定量反义化合物的总量以提高样品通量,而CGE则用于确定特定样品中完整和代谢物种的相对百分比。或者,进行了广泛的样品预处理程序,并且仅使用内标通过CGE直接对样品进行定量和表征。这两种方法都已用于表征反义化合物的药代动力学。本综述重点关注使用CGE作为单一或组合方法分析生物介质中反义DNA的仪器和技术方面,以便更好地理解反义DNA的药代动力学。此外,还将探索具有用于药代动力学应用巨大潜力的毛细管电泳(CE)的更新分析技术,例如可补充筛分基质与创新耦合方法以及微芯片CE。