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Systems Immunology: Learning the Rules of the Immune System

机译:系统免疫学:学习免疫系统的规则

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摘要

Given the many cell types and molecular components of the human immune system, along with vast variations across individuals, how should we go about developing causal and predictive explanations of immunity? A central strategy in human studies is to leverage natural variation to find relationships among variables, including DNA variants, epigenetic states, immune phenotypes, clinical descriptors, and others. Here, we focus on how natural variation is used to find patterns, infer principles, and develop predictive models for two areas: (a) immune cell activation—how single-cell profiling boosts our ability to discover immune cell types and states—and (b) antigen presentation and recognition—how models can be generated to predict presentation of antigens on MHC molecules and their detection by T cell receptors. These are two examples of a shift in how we find the drivers and targets of immunity, especially in the human system in the context of health and disease.
机译:考虑到人类免疫系统的许多细胞类型和分子成分,以及个体之间的巨大差异,我们应该如何发展对免疫的因果关系和预测性解释?人类研究的中心策略是利用自然变异来发现变量之间的关系,这些变量包括DNA变异体,表观遗传状态,免疫表型,临床描述符等。在这里,我们重点介绍如何使用自然变异来发现两个领域的模式,推断原理并开发预测模型:(a)免疫细胞激活-单细胞分析如何增强我们发现免疫细胞类型和状态的能力-和( b)抗原呈递和识别-如何生成模型以预测MHC分子上抗原的呈递以及T细胞受体对其的检测。这是我们寻找免疫驱动力和目标的方式发生转变的两个例子,尤其是在健康和疾病背景下的人类系统中。

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