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Towards High-throughput Immunomics for Infectious Diseases: Use of Next-generation Peptide Microarrays for Rapid Discovery and Mapping of Antigenic Determinants

机译:迈向传染病的高通量免疫组学:使用下一代肽微阵列快速发现和绘制抗原决定因子

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摘要

Complete characterization of antibody specificities associated to natural infections is expected to provide a rich source of serologic biomarkers with potential applications in molecular diagnosis, follow-up of chemotherapeutic treatments, and prioritization of targets for vaccine development. Here, we developed a highly-multiplexed platform based on next-generation high-density peptide microarrays to map these specificities in Chagas Disease, an exemplar of a human infectious disease caused by the protozoan. We designed a high-density peptide microarray containing more than 175,000 overlapping 15mer peptides derived from proteins. Peptides were synthesized on microarray slides, spanning the complete length of 457 parasite proteins with fully overlapped 15mers (1 residue shift). Screening of these slides with antibodies purified from infected patients and healthy donors demonstrated both a high technical reproducibility as well as epitope mapping consistency when compared with earlier low-throughput technologies. Using a conservative signal threshold to classify positive (reactive) peptides we identified 2,031 disease-specific peptides and 97 novel parasite antigens, effectively doubling the number of known antigens and providing a tenfold increase in the number of fine mapped antigenic determinants for this disease. Finally, further analysis of the chip data showed that optimizing the amount of sequence overlap of displayed peptides can increase the protein space covered in a single chip by at least ~3 fold without sacrificing sensitivity. In conclusion, we show the power of high-density peptide chips for the discovery of pathogen-specific linear B-cell epitopes from clinical samples, thus setting the stage for high-throughput biomarker discovery screenings and proteome-wide studies of immune responses against pathogens.
机译:与自然感染相关的抗体特异性的完整表征有望为血清生物标志物提供丰富的来源,并在分子诊断,化学疗法的后续治疗以及疫苗开发目标的优先排序方面具有潜在的应用前景。在这里,我们基于下一代高密度肽微阵列开发了高度复用的平台,以绘制Chagas病(由原生动物引起的人类传染病的典范)中的这些特异性图。我们设计了一个高密度肽微阵列,其中包含超过175,000个重叠的15mer来源于蛋白质的肽。在微阵列载玻片上合成了肽段,该肽段覆盖了457种寄生虫蛋白的完整长度,具有完全重叠的15mers(1个残基位移)。与较早的低通量技术相比,用从感染的患者和健康的供体中纯化的抗体筛选这些载玻片显示出很高的技术重现性以及表位作图的一致性。使用保守的信号阈值对阳性(反应性)肽进行分类,我们确定了2,031种疾病特异性肽和97种新型寄生虫抗原,有效地使已知抗原的数量增加了一倍,并为该疾病绘制了精确定位的抗原决定簇数量增加了十倍。最后,对芯片数据的进一步分析表明,优化展示肽的序列重叠量可以使单个芯片中覆盖的蛋白质空间增加至少〜3倍,而不会牺牲灵敏度。总之,我们展示了高密度肽芯片在临床样品中发现病原体特异性线性B细胞表位的能力,从而为高通量生物标志物发现筛选和针对病原体的免疫应答的蛋白质组学研究奠定了基础。

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