首页> 外文期刊>Analytical Biochemistry: An International Journal of Analytical and Preparative Methods >Modification of gel architecture and TBE/TAE buffer composition to minimize heating during agarose gel electrophoresis
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Modification of gel architecture and TBE/TAE buffer composition to minimize heating during agarose gel electrophoresis

机译:修改凝胶结构和TBE / TAE缓冲液组成,以最大程度减少琼脂糖凝胶电泳过程中的加热

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摘要

Agarose gel electrophoresis of DNA and RNA is routinely performed using buffers containing either Tris, acetate, and EDTA (TAE) or Tris, borate, and EDTA (TBE). Gels are run at a low, constant voltage (~10 V/cm) to minimize current and asymmetric heating effects, which can induce band artifacts and poor resolution. In this study, alterations of gel structure and conductive media composition were analyzed to identify factors causing higher electrical currents during horizontal slab gel electrophoresis. Current was reduced when thinner gels and smaller chamber buffer volumes were used, but was not influenced by agarose concentration or the presence of ethidium bromide. Current was strongly dependent on the amount and type of EDTA used and on the concentrations of the major acid-base components of each buffer. Interestingly, resolution and the mobilities of circular versus linear plasmid DNAs were also affected by the chemical form and amount of EDTA. With appropriate modifications to gel structure and buffer constituents, electrophoresis could be performed at high voltages (20-25 V/cm), reducing run times by up to 3-fold. The most striking improvements were observed with small DNAs and RNAs (10-100 bp): high voltages and short run times produced sharper bands and higher resolution.
机译:通常使用含有Tris,醋酸盐和EDTA(TAE)或Tris,硼酸盐和EDTA(TBE)的缓冲液对DNA和RNA进行琼脂糖凝胶电泳。凝胶在低恒定电压(〜10 V / cm)下运行,以最大程度地减小电流和不对称加热效应,这会引起条带失真和较差的分辨率。在这项研究中,分析了凝胶结构和导电介质组成的变化,以确定在水平平板凝胶电泳过程中引起较高电流的因素。当使用较薄的凝胶和较小的腔室缓冲液时,电流降低,但不受琼脂糖浓度或溴化乙锭的存在的影响。电流很大程度上取决于所使用的EDTA的数量和类型以及每种缓冲液中主要酸碱成分的浓度。有趣的是,环状和线性质粒DNA的分辨率和迁移率也受EDTA的化学形式和量的影响。通过对凝胶结构和缓冲液成分进行适当的修改,可以在高电压(20-25 V / cm)下执行电泳,从而将运行时间减少多达3倍。使用较小的DNA和RNA(10-100 bp)观察到最显着的改进:高电压和短运行时间产生了更清晰的条带和更高的分辨率。

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