Skip to content
Open access · CC-BY via OpenAlex

Single-cell multi-omics analysis of the immune response in COVID-19

Emily Stephenson, Gary Reynolds, Rachel A. Botting, Fernando J. Calero‐Nieto, Michael D. Morgan, Zewen Kelvin Tuong, Karsten Bach, Waradon Sungnak, Kaylee B. Worlock, Masahiro Yoshida, Natsuhiko Kumasaka, Katarzyna Kania, Justin Engelbert, Bayanne Olabi, Jarmila Stremenova Spegarova

Nature Medicine · 2021 · ▲ 825 citations

Abstract

Abstract Analysis of human blood immune cells provides insights into the coordinated response to viral infections such as severe acute respiratory syndrome coronavirus 2, which causes coronavirus disease 2019 (COVID-19). We performed single-cell transcriptome, surface proteome and T and B lymphocyte antigen receptor analyses of over 780,000 peripheral blood mononuclear cells from a cross-sectional cohort of 130 patients with varying severities of COVID-19. We identified expansion of nonclassical monocytes expressing complement transcripts ( CD16 + C1QA/B/C + ) that sequester platelets and were predicted to replenish the alveolar macrophage pool in COVID-19. Early, uncommitted CD34 + hematopoietic stem/progenitor cells were primed toward megakaryopoiesis, accompanied by expanded megakaryocyte-committed progenitors and increased platelet activation. Clonally expanded CD8 + T cells and an increased ratio of CD8 + effector T cells to effector memory T cells characterized severe disease, while circulating follicular helper T cells accompanied mild disease. We observed a relative loss of IgA2 in symptomatic disease despite an overall expansion of plasmablasts and plasma cells. Our study highlights the coordinated immune response that contributes to COVID-19 pathogenesis and reveals discrete cellular components that can be targeted for therapy.

◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:

Read at source →

Provenance

Source
OpenAlex
DOI
10.1038/s41591-021-01329-2
Canonical
link ↗
Fetched
2026-06-11 MST

Cite this

APA
Stephenson, E., Reynolds, G., Botting, R.A., Calero‐Nieto, F.J., Morgan, M.D., Tuong, Z.K., Bach, K., Sungnak, W., Worlock, K.B., Yoshida, M., Kumasaka, N., Kania, K., Engelbert, J., Olabi, B., Spegarova, J.S., Wilson, N.K., Mende, N., Jardine, L., Gardner, L., &amp; Goh, I. (2021). Single-cell multi-omics analysis of the immune response in COVID-19. <em>Nature Medicine</em>. https://doi.org/10.1038/s41591-021-01329-2
Vancouver
Stephenson E, Reynolds G, Botting RA, Calero‐Nieto FJ, Morgan MD, Tuong ZK, et al. Single-cell multi-omics analysis of the immune response in COVID-19. Nature Medicine. 2021. doi:10.1038/s41591-021-01329-2.
BibTeX
@article{emily2021Single, title = {Single-cell multi-omics analysis of the immune response in COVID-19}, author = {Emily Stephenson and Gary Reynolds and Rachel A. Botting and Fernando J. Calero‐Nieto and Michael D. Morgan and Zewen Kelvin Tuong and Karsten Bach and Waradon Sungnak and Kaylee B. Worlock and Masahiro Yoshida and Natsuhiko Kumasaka and Katarzyna Kania and Justin Engelbert and Bayanne Olabi and Jarmila Stremenova Spegarova and Nicola K. Wilson and Nicole Mende and Laura Jardine and Louis Gardner and Issac Goh and Dave Horsfall and Jim McGrath and Simone Webb and Michael Mather and Rik G.H. Lindeboom}, journal = {Nature Medicine}, year = {2021}, doi = {10.1038/s41591-021-01329-2}, }

Research neighborhood

References, citing works, and semantically nearest findings. Click a node to open it.

Related findings