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首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >The development of mini pentameric STR loci for rapid analysis of forensic DNA samples on a microfluidic system.
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The development of mini pentameric STR loci for rapid analysis of forensic DNA samples on a microfluidic system.

机译:微型五聚体STR基因座的开发,用于在微流体系统上快速分析法医DNA样品。

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There is increasing interest in developing methods for portable DNA analysis in mass disasters and criminal identification. Currently most forensic STR DNA analysis is performed by CE; however, these instruments are not portable and require long sample run times. One potential solution is the development of microfluidic systems for DNA typing. Unfortunately, fairly long (ca. 20 cm) separation channels are usually required for the proper resolution of multiplexed STR loci used in human identification. Commercially available systems like the Agilent 2100 Bioanalyzer have a small footprint and utilize chips with shorter channels and reduced resolution. Such portable systems might be valuable for evidence screening in remote locations. However, due to their lower resolution, most standard 4 base STR loci and their inherent 2 base variants will not resolve on such systems. In this paper, we discuss the development of reduced length pentameric (5 base) STR amplicons. Pentameric STRs have fewer variant alleles and are easier to separate due to the wider spacing between alleles. By incorporating novel denaturing sieving polymers in a short microfluidic channel, we demonstrate efficient separations on these chips. Such an approach can serve as a useful tool for rapid microfluidic DNA typing.
机译:人们对开发用于大规模灾难和犯罪鉴定的便携式DNA分析方法的兴趣日益浓厚。目前,大多数法医STR DNA分析是由CE执行的;然而,这些仪器不是便携式的并且需要较长的样品运行时间。一种潜在的解决方案是开发用于DNA分型的微流体系统。不幸的是,通常需要相当长(约20厘米)的分离通道,才能正确分辨人类鉴定中使用的STR基因座。诸如安捷伦2100生物分析仪之类的市售系统占地面积小,并使用通道更短,分辨率降低的芯片。这种便携式系统对于在偏远地区进行证据筛查可能是有价值的。但是,由于分辨率较低,大多数标准的4个碱基的STR基因座及其固有的2个碱基的变异体在此类系统上无法解析。在本文中,我们讨论了减少长度的五聚体(5个碱基)STR扩增子的开发。五聚体STR具有较少的变异等位基因,并且由于等位基因之间较宽的间隔而更易于分离。通过在短的微流体通道中引入新型变性筛分聚合物,我们证明了这些芯片上的有效分离。这种方法可以用作快速进行微流体DNA分型的有用工具。

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