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整合转录组学确定巨噬细胞极化特征并在临床健康与疾病方面具有潜在应用。

Integrated Transcriptomics Establish Macrophage Polarization Signatures and have Potential Applications for Clinical Health and Disease.

作者信息

Becker Matheus, De Bastiani Marco A, Parisi Mariana M, Guma Fátima T C R, Markoski Melissa M, Castro Mauro A A, Kaplan Mark H, Barbé-Tuana Florencia M, Klamt Fábio

机构信息

Laboratory of Cellular Biochemistry, Department of Biochemistry, ICBS/UFRGS, 90035-003 Porto Alegre (RS), Brazil.

National Institutes of Science &Technology-Translational Medicine (INCT-TM), 90035-903 Porto Alegre (RS), Brazil.

出版信息

Sci Rep. 2015 Aug 25;5:13351. doi: 10.1038/srep13351.

Abstract

Growing evidence defines macrophages (Mφ) as plastic cells with wide-ranging states of activation and expression of different markers that are time and location dependent. Distinct from the simple M1/M2 dichotomy initially proposed, extensive diversity of macrophage phenotypes have been extensively demonstrated as characteristic features of monocyte-macrophage differentiation, highlighting the difficulty of defining complex profiles by a limited number of genes. Since the description of macrophage activation is currently contentious and confusing, the generation of a simple and reliable framework to categorize major Mφ phenotypes in the context of complex clinical conditions would be extremely relevant to unravel different roles played by these cells in pathophysiological scenarios. In the current study, we integrated transcriptome data using bioinformatics tools to generate two macrophage molecular signatures. We validated our signatures in in vitro experiments and in clinical samples. More importantly, we were able to attribute prognostic and predictive values to components of our signatures. Our study provides a framework to guide the interrogation of macrophage phenotypes in the context of health and disease. The approach described here could be used to propose new biomarkers for diagnosis in diverse clinical settings including dengue infections, asthma and sepsis resolution.

摘要

越来越多的证据表明,巨噬细胞(Mφ)是具有广泛激活状态和不同标志物表达的可塑性细胞,这些标志物的表达取决于时间和位置。与最初提出的简单M1/M2二分法不同,巨噬细胞表型的广泛多样性已被广泛证明是单核细胞-巨噬细胞分化的特征,这凸显了用有限数量的基因来定义复杂图谱的难度。由于目前对巨噬细胞激活的描述存在争议且令人困惑,因此在复杂的临床情况下生成一个简单可靠的框架来对主要Mφ表型进行分类,对于阐明这些细胞在病理生理场景中所起的不同作用极为重要。在本研究中,我们使用生物信息学工具整合转录组数据,生成了两种巨噬细胞分子特征。我们在体外实验和临床样本中验证了我们的特征。更重要的是,我们能够为我们特征的组成部分赋予预后和预测价值。我们的研究提供了一个框架,以指导在健康和疾病背景下对巨噬细胞表型的研究。这里描述的方法可用于提出新的生物标志物,用于包括登革热感染、哮喘和脓毒症消退在内的各种临床环境中的诊断。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c991/4548187/2362ee834645/srep13351-f1.jpg

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