Konrad K D, Pentoney S L
Advanced Development Unit, Beckman Instruments, Inc., Fullerton, CA 92634.
Electrophoresis. 1993 May-Jun;14(5-6):502-8. doi: 10.1002/elps.1150140177.
Intramolecular base pairing at the 3' end of single-stranded DNA molecules can cause increased electrophoretic mobility. In DNA sequencing separations this can result in compressions, where multiple oligomers differing in length by one base comigrate, which complicate sequence analysis. Using a novel approach to the application of capillary electrophoresis to DNA sequencing, incorporation of formamide into capillary gels, different separation field strengths, and external heating of the capillary are examined for their ability to resolve compressions. The identity of the 3' terminal nucleotide has also been observed to influence oligomer mobility in cross-linked acrylamide slab gels. We utilize automated data collection from DNA sequencing separations to show that a similar effect is also present in linear acrylamide capillary gels run at high field strengths. We also demonstrate the ability of capillary electrophoresis to separate synthetic oligos of the same length but differing in composition by one base, or of the same base composition but different sequence.
单链DNA分子3'端的分子内碱基配对会导致电泳迁移率增加。在DNA测序分离中,这可能会导致压缩现象,即长度相差一个碱基的多个寡聚物一起迁移,这会使序列分析变得复杂。采用一种将毛细管电泳应用于DNA测序的新方法,研究了将甲酰胺加入毛细管凝胶、不同的分离场强以及毛细管外部加热对解决压缩现象的能力。还观察到3'末端核苷酸的身份会影响交联丙烯酰胺平板凝胶中寡聚物的迁移率。我们利用DNA测序分离的自动数据收集来表明,在高场强下运行的线性丙烯酰胺毛细管凝胶中也存在类似的效应。我们还证明了毛细管电泳能够分离长度相同但组成相差一个碱基,或碱基组成相同但序列不同的合成寡核苷酸。