Back

Single cell BCR and transcriptome analysis after respiratory virus infection reveals spatiotemporal dynamics of antigen-specific B cell responses.

Mathew, N. R.; Jayanthan, J. K.; Smirnov, I.; Robinson, J. L.; Axelsson, H.; Nakka, S. S.; Emmanouilidi, A.; Czarnewski, P.; Yewdell, W. T.; Lebrero-Fernandez, C.; Bernasconi, V.; Harandi, A. M.; Lycke, N.; Borcherding, N.; Yewdell, J. W.; Greiff, V.; Bemark, M.; Angeletti, D.

2020-08-24 immunology
10.1101/2020.08.24.264069 bioRxiv
Show abstract

B cell responses are a critical component of anti-viral immunity. However, a comprehensive picture of antigen-specific B cell responses, differentiation, clonal proliferation and dynamics in different organs after infection is lacking. Here, we combined single-cell RNA sequencing with single-cell B cell receptor (BCR) characterization of antigen-specific cells in the draining lymph nodes, spleen and lungs after influenza infection. We identify several novel B cell subpopulations forming after infection and find organ-specific differences that persist over the course of the response. We discover important transcriptional differences between memory cells in lungs and lymphoid organs and describe organ-restricted clonal expansion. Strikingly, by combining BCR mutational analysis, monoclonal antibody expression and affinity measurements we find no differences between germinal center (GC)-derived memory and plasmacells, at odds with an affinity-based selection model. By linking antigen-recognition with transcriptional programming, clonal-proliferation and differentiation, these finding provide important advances in our understanding of antiviral B cell immunity.

Matching journals

The top 4 journals account for 50% of the predicted probability mass.

50% of probability mass above

"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.