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Large-scale network analysis reveals the sequence space architecture of antibody repertoires

机译:大规模网络分析揭示了抗体库的序列空间结构

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摘要

The architecture of mouse and human antibody repertoires is defined by the sequence similarity networks of the clones that compose them. The major principles that define the architecture of antibody repertoires have remained largely unknown. Here, we establish a high-performance computing platform to construct large-scale networks from comprehensive human and murine antibody repertoire sequencing datasets (>100,000 unique sequences). Leveraging a network-based statistical framework, we identify three fundamental principles of antibody repertoire architecture: reproducibility, robustness and redundancy. Antibody repertoire networks are highly reproducible across individuals despite high antibody sequence dissimilarity. The architecture of antibody repertoires is robust to the removal of up to 50–90% of randomly selected clones, but fragile to the removal of public clones shared among individuals. Finally, repertoire architecture is intrinsically redundant. Our analysis provides guidelines for the large-scale network analysis of immune repertoires and may be used in the future to define disease-associated and synthetic repertoires.
机译:小鼠和人类抗体库的结构由组成它们的克隆的序列相似性网络定义。定义抗体库结构的主要原理在很大程度上仍然未知。在这里,我们建立了一个高性能的计算平台,可以从完整的人和鼠抗体库全谱数据集(> 100,000个唯一序列)构建大规模网络。利用基于网络的统计框架,我们确定了抗体库结构的三个基本原理:可再现性,鲁棒性和冗余性。尽管抗体序列差异很大,但抗体库网络可在各个个体之间高度重现。抗体库的体系结构对于删除多达50–90%的随机选择的克隆是可靠的,但是对于删除个体之间共享的公共克隆却很脆弱。最后,曲目库本质上是冗余的。我们的分析为免疫库的大规模网络分析提供了指南,并且可能在将来用于定义与疾病相关的库和合成库。

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