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CRISPR-Cas9 系统在基因定点外源药物分析中的新应用。

New application of the CRISPR-Cas9 system for site-specific exogenous gene doping analysis.

机构信息

Doping Control Center, Korea Institute of Science and Technology, Seoul, Republic of Korea.

Interdisciplinary Program of Bioengineering, Seoul National University, Seoul, Republic of Korea.

出版信息

Drug Test Anal. 2021 Apr;13(4):871-875. doi: 10.1002/dta.2980. Epub 2021 Jan 24.

Abstract

The increased potential for gene doping since the introduction of gene therapy presents the need to develop antidoping assays. We therefore aimed to develop a quick and simple method for the detection of specifically targeted exogenous doping genes utilizing an in vitro clustered regularly interspaced short palindromic repeats-CRISPR associated protein 9 (CRISPR-Cas9) system. A human erythropoietin (hEPO) is a drug frequently used for doping in athletes, and gene doping using gene transfer techniques may be attempted. Therefore, we selected hEPO gene as a model of exogenous doping gene, and complemental single guide RNA (sgRNA) was designed to specifically bind to the four exon-exon junctions in the hEPO cDNA. For the rapid reaction of CRISPR-Cas9, further optimization was performed using an open-source program (CRISPOR) that avoids TT and GCC motifs before the protospacer adjacent motif (PAM) domain and predicts the efficiency of the sgRNA. We optimized the in vitro Cas9 assay and dual use of sgRNA for double cleavage and identified the limit of detection (LOD) of the 1.25 nM of the double cleavage method. We expect that the improved CRISPR-Cas9 method can be used for antidoping analysis of gene doping.

摘要

自基因治疗引入以来,基因兴奋剂的潜在可能性增加,这就需要开发反兴奋剂检测方法。因此,我们旨在开发一种快速简便的方法,利用体外成簇规律间隔短回文重复序列 - 相关蛋白 9 (CRISPR-Cas9) 系统检测特定靶向外源兴奋剂基因。人促红细胞生成素 (hEPO) 是运动员经常使用的兴奋剂药物,并且可能尝试使用基因转移技术进行基因兴奋剂。因此,我们选择 hEPO 基因作为外源兴奋剂基因的模型,并设计了互补的单指导 RNA (sgRNA) 以特异性结合 hEPO cDNA 的四个外显子 - 外显子连接处。为了实现 CRISPR-Cas9 的快速反应,我们使用开源程序 (CRISPOR) 进一步优化,该程序在原间隔基序 (PAM) 域之前避免 TT 和 GCC 基序,并预测 sgRNA 的效率。我们优化了体外 Cas9 测定,并双用途 sgRNA 进行双重切割,并确定了双重切割方法的检测限 (LOD) 为 1.25 nM。我们预计改进的 CRISPR-Cas9 方法可用于基因兴奋剂的反兴奋剂分析。

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