Longitudinal transcriptome analyses show robust T cell immunity during recovery from COVID-19.
Hong-Yi ZhengMin XuCui-Xian YangRen-Rong TianMi ZhangJian-Jian LiXi-Cheng WangZhao-Li DingGui-Mei LiXiao-Lu LiYu-Qi HeXing-Qi DongYong-Gang YaoYong-Tang ZhengPublished in: Signal transduction and targeted therapy (2020)
Understanding the processes of immune regulation in patients infected with the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is crucial for improving treatment. Here, we performed longitudinal whole-transcriptome RNA sequencing on peripheral blood mononuclear cell (PBMC) samples from 18 patients with coronavirus disease 2019 (COVID-19) during their treatment, convalescence, and rehabilitation. After analyzing the regulatory networks of differentially expressed messenger RNAs (mRNAs), microRNAs (miRNAs) and long non-coding RNAs (lncRNAs) between the different clinical stages, we found that humoral immunity and type I interferon response were significantly downregulated, while robust T-cell activation and differentiation at the whole transcriptome level constituted the main events that occurred during recovery from COVID-19. The formation of this T cell immune response might be driven by the activation of activating protein-1 (AP-1) related signaling pathway and was weakly affected by other clinical features. These findings uncovered the dynamic pattern of immune responses and indicated the key role of T cell immunity in the creation of immune protection against this disease.
Keyphrases
- coronavirus disease
- sars cov
- respiratory syndrome coronavirus
- immune response
- single cell
- peripheral blood
- rna seq
- signaling pathway
- long non coding rna
- end stage renal disease
- gene expression
- dendritic cells
- chronic kidney disease
- transcription factor
- genome wide
- ejection fraction
- peritoneal dialysis
- toll like receptor
- prognostic factors
- stem cells
- epithelial mesenchymal transition
- dna methylation
- bone marrow
- patient reported outcomes
- drug induced
- amino acid
- cross sectional
- cell proliferation