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Cost-effective and fast KIR gene-content genotyping by multiplex melting curve analysis

机译:通过多重解链曲线分析进行具有成本效益的快速KIR基因含量基因分型

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摘要

Killer cell immunoglobulin-like receptor (KIR) genes encode cell surface molecules that recognize human leukocyte antigen (HLA) molecules and modulate the activity of natural killer (NK) cells. KIR genes exhibit presence and absence polymorphism, which generates a variety of gene-content haplotypes in worldwide populations. KIR gene-content variation is implicated in many diseases and is also important for placentation and transplantation. Due the complexity of KIR polymorphism, variation in this family is still mostly studied at the gene-content level, even with the advent of next generation sequencing methods. Gene-content determination is generally expensive and/or time-consuming. To overcome these difficulties, we developed a method based on multiplex polymerase chain reaction with specific sequence primers (PCR-SSP) followed by melting curve analysis that allows cost-effective, precise and fast generation of results. Our method was 100% concordant with a gel-based method and 99.9% concordant with presence and absence determination by next generation sequencing. The limit of detection for accurate typing was 30 ng of DNA (0.42 μM) with 260/230 and 260/280 ratios as low as 0.19 and of 0.44. In addition, we developed a user-friendly Java-based computational application called killerPeak that interprets the raw data generated by Viia7 or QuantStudio 7 quantitative PCR machines and reliably exports the final genotyping results in spreadsheet file format. The combination of a reliable method that requires low amount of DNA with an automated interpretation of results allows scaling the KIR genotyping in large cohorts with reduced turnaround time.
机译:杀伤细胞免疫球蛋白样受体(KIR)基因编码识别人白细胞抗原(HLA)分子并调节自然杀伤(NK)细胞活性的细胞表面分子。 KIR基因表现出存在和不存在的多态性,这会在全球人群中产生多种基因含量的单倍型。 KIR基因含量变异涉及许多疾病,并且对于胎盘植入和移植也很重要。由于KIR多态性的复杂性,即使下一代测序方法的出现,该家族的变异仍主要在基因含量水平上进行研究。基因含量的测定通常是昂贵和/或费时的。为了克服这些困难,我们开发了一种基于多重聚合酶链式反应的方法,该方法采用特定序列引物(PCR-SSP),然后进行熔解曲线分析,从而可以经济高效,精确且快速地生成结果。我们的方法与基于凝胶的方法100%一致,而通过下一代测序确定是否存在与99.9%一致。准确分型的检测极限是30 ng DNA(0.42μM),其260/230和260/280比率低至0.19和0.44。此外,我们开发了一个名为killerPeak的用户友好型基于Java的计算应用程序,该应用程序解释了Viia7或QuantStudio 7定量PCR机生成的原始数据,并以电子表格文件格式可靠地输出了最终的基因分型结果。将需要少量DNA的可靠方法与结果的自动解释相结合,可以在减少大量周转时间的情况下,在大型队列中扩展KIR基因分型。

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