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对包含多达五个未知贡献者的DNA混合物进行TrueAllele(®) 基因型鉴定。

TrueAllele(®) Genotype Identification on DNA Mixtures Containing up to Five Unknown Contributors.

作者信息

Perlin Mark W, Hornyak Jennifer M, Sugimoto Garett, Miller Kevin W P

机构信息

Cybergenetics, 160 North Craig Street, Suite 210, Pittsburgh, PA, 15213.

Kern Regional Crime Laboratory, 1215 Truxton Avenue, Bakersfield, CA, 93301.

出版信息

J Forensic Sci. 2015 Jul;60(4):857-68. doi: 10.1111/1556-4029.12788. Epub 2015 Jul 17.

Abstract

Computer methods have been developed for mathematically interpreting mixed and low-template DNA. The genotype modeling approach computationally separates out the contributors to a mixture, with uncertainty represented through probability. Comparison of inferred genotypes calculates a likelihood ratio (LR), which measures identification information. This study statistically examined the genotype modeling performance of Cybergenetics TrueAllele(®) computer system. High- and low-template DNA mixtures of known randomized composition containing 2, 3, 4, and 5 contributors were tested. Sensitivity, specificity, and reproducibility were established through LR quantification in each of these eight groups. Covariance analysis found LR behavior to be relatively invariant to DNA amount or contributor number. Analysis of variance found that consistent solutions were produced, once a sufficient number of contributors were considered. This study demonstrates the reliability of TrueAllele interpretation on complex DNA mixtures of representative casework composition. The results can help predict an information outcome for a DNA mixture analysis.

摘要

已经开发出用于对混合和低模板DNA进行数学解释的计算机方法。基因型建模方法通过计算分离出混合物的贡献者,并通过概率表示不确定性。推断基因型的比较计算出似然比(LR),它衡量识别信息。本研究对Cybergenetics TrueAllele(®)计算机系统的基因型建模性能进行了统计学检验。对已知随机组成的含有2、3、4和5个贡献者的高模板和低模板DNA混合物进行了测试。通过对这八组中的每组进行LR定量来确定敏感性、特异性和可重复性。协方差分析发现LR行为对DNA量或贡献者数量相对不变。方差分析发现,一旦考虑了足够数量的贡献者,就会产生一致的结果。本研究证明了TrueAllele对具有代表性案例组成的复杂DNA混合物解释的可靠性。结果有助于预测DNA混合物分析的信息结果。

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