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用于毛细管中短串联重复序列(STR)快速、可重复电泳分析的筛分聚合物评估。

Evaluation of sieving polymers for fast, reproducible electrophoretic analysis of short tandem repeats (STR) in capillaries.

作者信息

Bienvenue Joan M, Wilson Kate L, Landers James P, Ferrance Jerome P

机构信息

Department of Chemistry, McCormick Road, University of Virginia, Charlottesville, VA 22904, USA.

出版信息

J Forensic Sci. 2005 Jul;50(4):842-8.

Abstract

Efficient capillary electrophoretic STR analysis requires rapid, reproducible and robust separation of DNA fragments with reasonable capillary longevity--this is currently accomplished using proprietary commercial polymeric sieving matrices specifically developed for this separation. These matrices, while effective, are costly and do not provide adequate resolution of STR DNA fragments in capillaries with shorter effective separation lengths, increasing the time required to accomplish the separation and minimizing the potential extrapolation to other miniaturized platforms. As the forensic community looks toward next generation microchip technology as a means of processing casework more rapidly, new sieving polymers need to be evaluated for utilization in this platform. The research presented here describes the assessment of commercially-available polymeric sieving matrices for STR analysis, with consideration given to feasibility of incorporation into a microdevice. Polymer composition, molecular weight, and concentration were evaluated, along with an assessment of the effects of buffer composition, separation temperature, and capillary length. These variables were evaluated individually or collectively on the ability to resolve STR DNA fragments and the reproducibility of the separations and the results compared to a proprietary commercial product. A 600,000 Da MW poly(ethylene oxide) (PEO) solution at a 3% (w/v) concentration was determined to be the most suitable matrix for these separations. This polymer, in coated capillaries, provided highly robust and reproducible separations, with near baseline resolution of fragments having single base differences. Reductions in the temperature of the separation, from 60 degrees C to 40 degrees C, and the urea concentration of the buffer, from 7 M to 3.5 M, provided increased longevity of the PEO polymer for repeated separations. Comparison of this polymer with currently specified commercial products used for STR analysis showed that the optimized PEO matrix provided superior separations under all conditions tested. In addition, PEO could be utilized in shorter capillary systems, with a concurrent decrease in analysis time, highlighting its potential for use in shortened capillary or microdevice systems.

摘要

高效的毛细管电泳短串联重复序列(STR)分析需要快速、可重复且稳定地分离DNA片段,同时毛细管要有合理的使用寿命——目前这是通过专门为此分离开发的专利商用聚合物筛分基质来实现的。这些基质虽然有效,但成本高昂,并且在有效分离长度较短的毛细管中不能提供足够的STR DNA片段分辨率,从而增加了完成分离所需的时间,并限制了向其他小型化平台的潜在拓展。随着法医界将目光投向新一代微芯片技术,以期更快地处理案件,需要评估新的筛分聚合物在该平台上的适用性。本文介绍的研究描述了对用于STR分析的商用聚合物筛分基质的评估,并考虑了将其纳入微器件的可行性。评估了聚合物组成、分子量和浓度,以及缓冲液组成、分离温度和毛细管长度的影响。分别或综合评估了这些变量对STR DNA片段分辨率的影响、分离的可重复性,并将结果与专利商用产品进行了比较。确定浓度为3%(w/v)的600,000 Da分子量的聚环氧乙烷(PEO)溶液是最适合这些分离的基质。这种聚合物在涂覆的毛细管中提供了高度稳定且可重复的分离,单碱基差异的片段具有近乎基线分辨率。将分离温度从60℃降至40℃,缓冲液中尿素浓度从7 M降至3.5 M,可提高PEO聚合物重复分离的使用寿命。将这种聚合物与目前用于STR分析的指定商用产品进行比较表明,优化后的PEO基质在所有测试条件下都提供了更好的分离效果。此外,PEO可用于较短的毛细管系统,同时分析时间减少,突出了其在缩短毛细管或微器件系统中的应用潜力。

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