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利用等位基因特异性方法快速准确地检测小鼠中转基因的杂合性。

Rapid and precise genotyping of transgene zygosity in mice using an allele-specific method.

机构信息

Departments of Neuroscience and Pharmacology, The University of Iowa, Iowa City, IA, USA.

Laboratory of Genome Integrity, National Institutes of Health, Centre for Cancer Research, Bethesda, MD, USA.

出版信息

Life Sci Alliance. 2023 Apr 10;6(6). doi: 10.26508/lsa.202201729. Print 2023 Jun.

Abstract

Precise determination of transgene zygosity is essential for use of transgenic mice in research. Because integration loci of transgenes are usually unknown due to their random insertion, assessment of transgene zygosity remains a challenge. Current zygosity genotyping methods (progeny testing, qPCR, and NGS-computational biology analysis) are time consuming, prone to error or technically challenging. Here, we developed a novel method to determine transgene zygosity requiring no knowledge of transgene insertion loci. This method applies allele-specific restriction enzyme digestion of PCR products (RE/PCR) to rapidly and reliably quantify transgene zygosity. We demonstrate the applicability of this method to three transgenic strains of mice ( Tg, , and ) harboring a unique restriction enzyme site on either the transgene or its homologous sequence in the mouse genome. This method is as accurate as the gold standard of progeny testing but requires 2 d instead of a month or more. It is also exceedingly more accurate than the most commonly used approach of qPCR quantification. Our novel method represents a significant technical advance in determining transgene zygosities in mice.

摘要

准确确定转基因的杂合性对于利用转基因小鼠进行研究至关重要。由于转基因的整合位点通常是随机插入的,因此其位置未知,这使得评估转基因的杂合性仍然具有挑战性。目前的杂合性基因分型方法(后代测试、qPCR 和 NGS-计算生物学分析)既耗时又容易出错或具有技术挑战性。在这里,我们开发了一种无需了解转基因插入位点即可确定转基因杂合性的新方法。该方法应用 PCR 产物的等位基因特异性限制性内切酶消化(RE/PCR)来快速可靠地定量转基因的杂合性。我们证明了该方法适用于三种携带独特限制性内切酶位点的转基因小鼠品系(Tg、和),该位点位于转基因或其在小鼠基因组中的同源序列上。该方法与后代测试的金标准一样准确,但需要 2 天,而不是一个月或更长时间。与最常用的 qPCR 定量方法相比,该方法的准确性也高得多。我们的新方法代表了在确定小鼠中转基因杂合性方面的重大技术进步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a5a/10087101/7362187bdbb6/LSA-2022-01729_Fig1.jpg

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