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通过基于纳米孔的多位点测序对弓形虫分离株进行快速基因分型。

Rapid genotyping of Toxoplasma gondii isolates via Nanopore-based multi-locus sequencing.

作者信息

Koutsogiannis Zisis, Denny Paul W

机构信息

Department of Biosciences, Durham University, Durham, DH1 3LE, UK.

出版信息

AMB Express. 2024 Jun 6;14(1):68. doi: 10.1186/s13568-024-01728-x.

Abstract

Toxoplasma gondii is an obligate intracellular parasite associated with severe disease, especially in the immunosuppressed. It is also a cause of congenital malformation and abortion in both animals and humans and is considered one of the most important foodborne pathogens worldwide with different strains showing variable distribution and differing pathogenicity. Thus, strain-level differentiation of T. gondii isolates is an essential asset in the understanding of parasite's diversity, geographical distribution, epidemiology and health risk. Here, we designed and implemented an Oxford Nanopore MinION protocol to analyse genomic sequence variation including single nucleotide polymorphisms (SNPs) and insertion/deletion polymorphisms (InDel's) of four different genomic loci, part of protein coding genes SAG2, SAG3, ROP17 and ROP21. This method provided results with the sequencing depth necessary for accurate differentiation of T. gondii strains and represents a rapid approach compared to conventional techniques which we further validated against environmental samples isolated from wild wood mice. In summary, multi-locus sequence typing (MLST) of both highly conserved and more polymorphic areas of the genome, provided robust data for strain classification in a platform ready for further adaption for other strains and pathogens.

摘要

刚地弓形虫是一种专性细胞内寄生虫,与严重疾病相关,尤其是在免疫抑制人群中。它也是动物和人类先天性畸形和流产的原因,被认为是全球最重要的食源性病原体之一,不同菌株表现出不同的分布和致病性。因此,对刚地弓形虫分离株进行菌株水平的区分是了解寄生虫多样性、地理分布、流行病学和健康风险的重要环节。在此,我们设计并实施了一种牛津纳米孔MinION方案,以分析四个不同基因组位点的基因组序列变异,包括单核苷酸多态性(SNP)和插入/缺失多态性(InDel),这些位点是蛋白质编码基因SAG2、SAG3、ROP17和ROP21的一部分。该方法提供的结果具有区分刚地弓形虫菌株所需的测序深度,与传统技术相比是一种快速方法,我们进一步针对从野生林鼠分离的环境样本进行了验证。总之,对基因组高度保守和多态性更高区域进行多位点序列分型(MLST),为菌株分类提供了可靠数据,该平台可进一步适用于其他菌株和病原体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f8b3/11156620/d4fb596e7913/13568_2024_1728_Fig1_HTML.jpg

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