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1
A distinct innate immune signature marks progression from mild to severe COVID-19.一个独特的先天免疫特征标志着 COVID-19 从轻症向重症的进展。
Cell Rep Med. 2020 Dec 26;2(1):100166. doi: 10.1016/j.xcrm.2020.100166. eCollection 2021 Jan 19.
2
Early Phases of COVID-19 Are Characterized by a Reduction in Lymphocyte Populations and the Presence of Atypical Monocytes.COVID-19 的早期阶段表现为淋巴细胞群减少和存在非典型单核细胞。
Front Immunol. 2020 Dec 9;11:560330. doi: 10.3389/fimmu.2020.560330. eCollection 2020.
3
Monocyte HLA-DR Measurement by Flow Cytometry in COVID-19 Patients: An Interim Review.流式细胞术检测 COVID-19 患者单核细胞 HLA-DR:一项中期综述。
Cytometry A. 2020 Dec;97(12):1217-1221. doi: 10.1002/cyto.a.24249. Epub 2020 Nov 4.
4
Whole blood immunophenotyping uncovers immature neutrophil-to-VD2 T-cell ratio as an early marker for severe COVID-19.全血免疫表型分析揭示幼稚中性粒细胞与 VD2 T 细胞比值是重症 COVID-19 的早期标志物。
Nat Commun. 2020 Oct 16;11(1):5243. doi: 10.1038/s41467-020-19080-6.
5
Excessive Neutrophils and Neutrophil Extracellular Traps in COVID-19.COVID-19 中的过度中性粒细胞和中性粒细胞细胞外陷阱。
Front Immunol. 2020 Aug 18;11:2063. doi: 10.3389/fimmu.2020.02063. eCollection 2020.
6
Mapping Systemic Inflammation and Antibody Responses in Multisystem Inflammatory Syndrome in Children (MIS-C).绘制儿童多系统炎症综合征(MIS-C)中的系统性炎症和抗体反应图谱。
Cell. 2020 Nov 12;183(4):982-995.e14. doi: 10.1016/j.cell.2020.09.034. Epub 2020 Sep 14.
7
Elevated Calprotectin and Abnormal Myeloid Cell Subsets Discriminate Severe from Mild COVID-19.血清钙卫蛋白和异常髓系细胞亚群可区分 COVID-19 重症与轻症。
Cell. 2020 Sep 17;182(6):1401-1418.e18. doi: 10.1016/j.cell.2020.08.002. Epub 2020 Aug 5.
8
Dream: powerful differential expression analysis for repeated measures designs.梦境:重复测量设计的强大差异表达分析。
Bioinformatics. 2021 Apr 19;37(2):192-201. doi: 10.1093/bioinformatics/btaa687.
9
Sampling the host response to SARS-CoV-2 in hospitals under siege.在被围困的医院中对宿主对新冠病毒的反应进行采样。
Nat Med. 2020 Aug;26(8):1157-1158. doi: 10.1038/s41591-020-1004-3.
10
Deep immune profiling of COVID-19 patients reveals distinct immunotypes with therapeutic implications.深度免疫剖析 COVID-19 患者,揭示具有治疗意义的不同免疫类型。
Science. 2020 Sep 4;369(6508). doi: 10.1126/science.abc8511. Epub 2020 Jul 15.

一种简化的全血 CyTOF 工作流程定义了 COVID-19 的循环免疫细胞特征。

A streamlined whole blood CyTOF workflow defines a circulating immune cell signature of COVID-19.

机构信息

Human Immune Monitoring Center, Icahn School of Medicine at Mount Sinai, New York, New York, USA.

Department of Genetics and Genomic Sciences, Icahn School of Medicine at Mount Sinai, New York, New York, USA.

出版信息

Cytometry A. 2021 May;99(5):446-461. doi: 10.1002/cyto.a.24317. Epub 2021 Feb 16.

DOI:10.1002/cyto.a.24317
PMID:33496367
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8013522/
Abstract

Mass cytometry (CyTOF) represents one of the most powerful tools in immune phenotyping, allowing high throughput quantification of over 40 parameters at single-cell resolution. However, wide deployment of CyTOF-based immune phenotyping studies are limited by complex experimental workflows and the need for specialized CyTOF equipment and technical expertise. Furthermore, differences in cell isolation and enrichment protocols, antibody reagent preparation, sample staining, and data acquisition protocols can all introduce technical variation that can confound integrative analyses of large data-sets of samples processed across multiple labs. Here, we present a streamlined whole blood CyTOF workflow which addresses many of these sources of experimental variation and facilitates wider adoption of CyTOF immune monitoring across sites with limited technical expertise or sample-processing resources or equipment. Our workflow utilizes commercially available reagents including the Fluidigm MaxPar Direct Immune Profiling Assay (MDIPA), a dry tube 30-marker immunophenotyping panel, and SmartTube Proteomic Stabilizer, which allows for simple and reliable fixation and cryopreservation of whole blood samples. We validate a workflow that allows for streamlined staining of whole blood samples with minimal processing requirements or expertise at the site of sample collection, followed by shipment to a central CyTOF core facility for batched downstream processing and data acquisition. We apply this workflow to characterize 184 whole blood samples collected longitudinally from a cohort of 72 hospitalized COVID-19 patients and healthy controls, highlighting dynamic disease-associated changes in circulating immune cell frequency and phenotype.

摘要

质谱流式细胞术(CyTOF)代表了免疫表型分析中最强大的工具之一,能够以单细胞分辨率高通量定量超过 40 个参数。然而,CyTOF 为基础的免疫表型研究的广泛应用受到复杂的实验工作流程以及对专用 CyTOF 设备和技术专长的需求的限制。此外,细胞分离和富集方案、抗体试剂制备、样本染色和数据采集方案的差异都可能引入技术变异,从而混淆对来自多个实验室处理的大量样本进行的综合分析。在这里,我们提出了一种简化的全血 CyTOF 工作流程,该流程解决了许多这些实验变异源,并促进了具有有限技术专长或样本处理资源或设备的站点更广泛地采用 CyTOF 免疫监测。我们的工作流程利用了商业上可获得的试剂,包括 Fluidigm MaxPar Direct Immune Profiling Assay(MDIPA),一种干管 30 标志物免疫表型分析试剂盒,以及 SmartTube Proteomic Stabilizer,它允许对全血样本进行简单可靠的固定和冷冻保存。我们验证了一种工作流程,该流程允许在样本采集现场进行最少的处理要求或专业知识,对全血样本进行简化染色,然后运送到中央 CyTOF 核心设施进行批量下游处理和数据采集。我们应用此工作流程来描述从 72 名住院 COVID-19 患者和健康对照者的队列中纵向采集的 184 个全血样本,突出了循环免疫细胞频率和表型与疾病相关的动态变化。