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Application of long read sequencing to determine expressed antigen diversity in Trypanosoma brucei infections

机译:应用长读测序技术确定布鲁氏锥虫感染中表达的抗原多样性

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摘要

Antigenic variation is employed by many pathogens to evade the host immune response, and Trypanosoma brucei has evolved a complex system to achieve this phenotype, involving sequential use of variant surface glycoprotein (VSG) genes encoded from a large repertoire of ~2,000 genes. T. brucei express multiple, sometimes closely related, VSGs in a population at any one time, and the ability to resolve and analyse this diversity has been limited. We applied long read sequencing (PacBio) to VSG amplicons generated from blood extracted from batches of mice sacrificed at time points (days 3, 6, 10 and 12) post-infection with T. brucei TREU927. The data showed that long read sequencing is reliable for resolving variant differences between VSGs, and demonstrated that there is significant expressed diversity (449 VSGs detected across 20 mice) and across the timeframe of study there was a clear semi-reproducible pattern of expressed diversity (median of 27 VSGs per sample at day 3 post infection (p.i.), 82 VSGs at day 6 p.i., 187 VSGs at day 10 p.i. and 132 VSGs by day 12 p.i.). There was also consistent detection of one VSG dominating expression across replicates at days 3 and 6, and emergence of a second dominant VSG across replicates by day 12. The innovative application of ecological diversity analysis to VSG reads enabled characterisation of hierarchical VSG expression in the dataset, and resulted in a novel method for analysing such patterns of variation. Additionally, the long read approach allowed detection of mosaic VSG expression from very few reads–the earliest in infection that such events have been detected. Therefore, our results indicate that long read analysis is a reliable tool for resolving diverse gene expression profiles, and provides novel insights into the complexity and nature of VSG expression in trypanosomes, revealing significantly higher diversity than previously shown and the ability to identify mosaic gene formation early during the infection process.
机译:许多病原体都利用抗原变异来逃避宿主的免疫反应,而布鲁氏锥虫进化了一个复杂的系统来实现这种表型,涉及顺序使用由约2,000个基因组成的大量变异表面糖蛋白(VSG)基因。 T. brucei在任何时候都可以在人群中表达多种VSG,有时紧密相关,而解析和分析这种多样性的能力受到限制。我们对从布鲁氏菌TREU927感染后的时间点(第3、6、10和12天)处死的小鼠批次提取的血液中产生的VSG扩增子进行了长读测序(PacBio)。数据表明,长读测序对于解决VSG之间的变异差异是可靠的,并且表明存在显着的表达多样性(在20只小鼠中检测到449个VSG),并且在整个研究时间范围内,存在明显的半可再现的表达多样性模式(在感染后第3天(pi),每个样本的平均值为27个VSG,在感染后第6天为82个VSG,在感染后第10天为187个VSG,在第12天为132个VSG。还可以在第3天和第6天连续检测到一个跨重复的VSG主导表达,到第12天出现另一个跨重复的主要VSG。生态多样性分析在VSG上的创新应用使得能够表征数据集中的分层VSG表达,并得出了一种分析这种变化模式的新颖方法。此外,长读取方法允许从极少的读取中检测到镶嵌VSG表达,这是感染中最早发现此类事件的方法。因此,我们的结果表明,长期阅读分析是解决多种基因表达谱的可靠工具,并且为锥虫体内VSG表达的复杂性和性质提供了新颖的见解,显示出比以前显示的多样性明显更高的多样性以及鉴定镶嵌基因形成的能力在感染过程的早期。

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