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基于全血基因表达的急性感染患者分层免疫功能评分。

An immune dysfunction score for stratification of patients with acute infection based on whole-blood gene expression.

机构信息

Wellcome Centre for Human Genetics, University of Oxford, Oxford OX3 7BN, UK.

Wellcome Sanger Institute, Wellcome Genome Campus, Cambridge CB10 1SA, UK.

出版信息

Sci Transl Med. 2022 Nov 2;14(669):eabq4433. doi: 10.1126/scitranslmed.abq4433.

Abstract

Dysregulated host responses to infection can lead to organ dysfunction and sepsis, causing millions of global deaths each year. To alleviate this burden, improved prognostication and biomarkers of response are urgently needed. We investigated the use of whole-blood transcriptomics for stratification of patients with severe infection by integrating data from 3149 samples from patients with sepsis due to community-acquired pneumonia or fecal peritonitis admitted to intensive care and healthy individuals into a gene expression reference map. We used this map to derive a quantitative sepsis response signature (SRSq) score reflective of immune dysfunction and predictive of clinical outcomes, which can be estimated using a 7- or 12-gene signature. Last, we built a machine learning framework, SepstratifieR, to deploy SRSq in adult and pediatric bacterial and viral sepsis, H1N1 influenza, and COVID-19, demonstrating clinically relevant stratification across diseases and revealing some of the physiological alterations linking immune dysregulation to mortality. Our method enables early identification of individuals with dysfunctional immune profiles, bringing us closer to precision medicine in infection.

摘要

宿主对感染的失调反应可导致器官功能障碍和败血症,每年导致数百万人死亡。为了减轻这一负担,迫切需要改善预后和反应的生物标志物。我们通过将来自因社区获得性肺炎或粪便性腹膜炎而入住重症监护病房的败血症患者的 3149 个样本的整合数据,以及健康个体的全血转录组学数据进行整合,研究了全血转录组学在严重感染患者分层中的应用。我们使用该图谱得出了一个定量的败血症反应特征 (SRSq) 评分,该评分反映了免疫功能障碍,并可预测临床结局,该评分可使用 7 或 12 个基因特征来估计。最后,我们构建了一个机器学习框架 SepstratifieR,将 SRSq 应用于成人和儿科细菌性和病毒性败血症、H1N1 流感和 COVID-19,在不同疾病中进行了具有临床相关性的分层,并揭示了一些将免疫失调与死亡率联系起来的生理变化。我们的方法能够早期识别出免疫功能失调的个体,使我们更接近感染的精准医学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/198b/7613832/55d3f7d621ab/EMS156835-f001.jpg

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