Literature DB >> 32742242

Single-Cell Transcriptomic Analysis of SARS-CoV-2 Reactive CD4 + T Cells.

Benjamin J Meckiff1,2, Ciro Ramírez-Suástegui1,2, Vicente Fajardo1,2, Serena J Chee3,2, Anthony Kusnadi1, Hayley Simon1, Alba Grifoni1, Emanuela Pelosi4, Daniela Weiskopf1, Alessandro Sette1,5, Ferhat Ay1, Grégory Seumois1, Christian H Ottensmeier1,3,6,7, Pandurangan Vijayanand1,3,5,7.   

Abstract

The contribution of CD4+ T cells to protective or pathogenic immune responses to SARS-CoV-2 infection remains unknown. Here, we present large-scale single-cell transcriptomic analysis of viral antigen-reactive CD4+ T cells from 32 COVID-19 patients. In patients with severe disease compared to mild disease, we found increased proportions of cytotoxic follicular helper (TFH) cells and cytotoxic T helper cells (CD4-CTLs) responding to SARS-CoV-2, and reduced proportion of SARS-CoV-2 reactive regulatory T cells. Importantly, the CD4-CTLs were highly enriched for the expression of transcripts encoding chemokines that are involved in the recruitment of myeloid cells and dendritic cells to the sites of viral infection. Polyfunctional T helper (TH)1 cells and TH17 cell subsets were underrepresented in the repertoire of SARS-CoV-2-reactive CD4+ T cells compared to influenza-reactive CD4+ T cells. Together, our analyses provide so far unprecedented insights into the gene expression patterns of SARS-CoV-2 reactive CD4+ T cells in distinct disease severities. Funding: This work was funded by NIH grants U19AI142742 (P.V., A.S., C.H.O), U19AI118626 (P.V., A.S., G.S.), R01HL114093 (P.V., F.A., G.S.,), R35-GM128938 (F.A), S10RR027366 (BD FACSAria-II), S10OD025052 (Illumina Novaseq6000), the William K. Bowes Jr Foundation (P.V.), and Whittaker foundation (P.V., C.H.O.). Supported by the Wessex Clinical Research Network and National Institute of Health Research UK. Conflict of Interest: The authors declare no competing financial interests. Ethical Approval: Ethical approval for this study from the Berkshire Research Ethics Committee 20/SC/0155 and the Ethics Committee of La Jolla Institute for Immunology (LJI) was in place. Written consent was obtained from all subjects.

Entities:  

Year:  2020        PMID: 32742242      PMCID: PMC7385998          DOI: 10.2139/ssrn.3641939

Source DB:  PubMed          Journal:  SSRN        ISSN: 1556-5068


  43 in total

1.  Persistence of effector memory Th1 cells is regulated by Hopx.

Authors:  Inka Albrecht; Uwe Niesner; Marko Janke; Astrid Menning; Christoph Loddenkemper; Anja A Kühl; Inga Lepenies; Maria H Lexberg; Kerstin Westendorf; Kristyna Hradilkova; Joachim Grün; Alf Hamann; Jonathan A Epstein; Hyun-Dong Chang; Koji Tokoyoda; Andreas Radbruch
Journal:  Eur J Immunol       Date:  2010-10-27       Impact factor: 5.532

Review 2.  T-cell quality in memory and protection: implications for vaccine design.

Authors:  Robert A Seder; Patricia A Darrah; Mario Roederer
Journal:  Nat Rev Immunol       Date:  2008-03-07       Impact factor: 53.106

3.  Antigen-reactive T cell enrichment for direct, high-resolution analysis of the human naive and memory Th cell repertoire.

Authors:  Petra Bacher; Christian Schink; Janka Teutschbein; Olaf Kniemeyer; Mario Assenmacher; Axel A Brakhage; Alexander Scheffold
Journal:  J Immunol       Date:  2013-03-11       Impact factor: 5.422

4.  A critical role of IL-17 in modulating the B-cell response during H5N1 influenza virus infection.

Authors:  Xiaohui Wang; Chris C S Chan; Min Yang; Jun Deng; Vincent K M Poon; Virtual H C Leung; King-Hung Ko; Jie Zhou; Kwok Yung Yuen; Bo-Jian Zheng; Liwei Lu
Journal:  Cell Mol Immunol       Date:  2011-09-26       Impact factor: 11.530

5.  Interleukin-17A Promotes CD8+ T Cell Cytotoxicity To Facilitate West Nile Virus Clearance.

Authors:  Dhiraj Acharya; Penghua Wang; Amber M Paul; Jianfeng Dai; David Gate; Jordan E Lowery; Dobrivoje S Stokic; A Arturo Leis; Richard A Flavell; Terrence Town; Erol Fikrig; Fengwei Bai
Journal:  J Virol       Date:  2016-12-16       Impact factor: 5.103

6.  Circulating TFH cells, serological memory, and tissue compartmentalization shape human influenza-specific B cell immunity.

Authors:  Marios Koutsakos; Adam K Wheatley; Liyen Loh; E Bridie Clemens; Sneha Sant; Simone Nüssing; Annette Fox; Amy W Chung; Karen L Laurie; Aeron C Hurt; Steve Rockman; Martha Lappas; Thomas Loudovaris; Stuart I Mannering; Glen P Westall; Michael Elliot; Stuart G Tangye; Linda M Wakim; Stephen J Kent; Thi H O Nguyen; Katherine Kedzierska
Journal:  Sci Transl Med       Date:  2018-02-14       Impact factor: 17.956

Review 7.  T Cell Dysfunction in Cancer.

Authors:  Daniela S Thommen; Ton N Schumacher
Journal:  Cancer Cell       Date:  2018-04-09       Impact factor: 31.743

Review 8.  The protective and pathogenic roles of IL-17 in viral infections: friend or foe?

Authors:  Wen-Tao Ma; Xiao-Ting Yao; Qun Peng; De-Kun Chen
Journal:  Open Biol       Date:  2019-07-24       Impact factor: 6.411

9.  MAST: a flexible statistical framework for assessing transcriptional changes and characterizing heterogeneity in single-cell RNA sequencing data.

Authors:  Greg Finak; Andrew McDavid; Masanao Yajima; Jingyuan Deng; Vivian Gersuk; Alex K Shalek; Chloe K Slichter; Hannah W Miller; M Juliana McElrath; Martin Prlic; Peter S Linsley; Raphael Gottardo
Journal:  Genome Biol       Date:  2015-12-10       Impact factor: 13.583

10.  Breadth of concomitant immune responses prior to patient recovery: a case report of non-severe COVID-19.

Authors:  Irani Thevarajan; Thi H O Nguyen; Marios Koutsakos; Julian Druce; Leon Caly; Carolien E van de Sandt; Xiaoxiao Jia; Suellen Nicholson; Mike Catton; Benjamin Cowie; Steven Y C Tong; Sharon R Lewin; Katherine Kedzierska
Journal:  Nat Med       Date:  2020-04       Impact factor: 87.241

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