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Rhinovirus as a driver of airway T cell dynamics in children with treatment-refractory recurrent wheeze
Naomi Bryant, Lyndsey M. Muehling, Kristin Wavell, W. Gerald Teague, Judith A. Woodfolk
Naomi Bryant, Lyndsey M. Muehling, Kristin Wavell, W. Gerald Teague, Judith A. Woodfolk
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Research Article Immunology Infectious disease

Rhinovirus as a driver of airway T cell dynamics in children with treatment-refractory recurrent wheeze

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Abstract

Severe asthma in children is notoriously difficult to treat, and its immunopathogenesis is complex. In particular, the contribution of T cells and relationships to antiviral immunity remain enigmatic. Here, we coupled deep phenotyping with machine learning methods to elucidate the dynamics of T cells in the lower airways of children with treatment-refractory recurrent wheeze, and examine rhinovirus (RV) as a driver. Our strategy revealed a T cell landscape dominated by type 1 and type 17 CD8+ signatures. Interrogation of phenotypic relationships coupled with trajectory mapping identified T cell migratory and differentiation pathways spanning the blood and airways that culminated in tissue residency, and involved transitions between type 1 and type 17 tissue-resident types. These dynamics were reflected in cytokine polyfunctionality. Use of machine learning tools to cross-compare T cell populations that were enriched in the airways of RV-positive children with those induced in the blood following experimental RV challenge precisely pinpointed RV-responsive signatures that contributed to T cell migratory and differentiation pathways. Despite their rarity, these signatures were also detected in the airways of RV-negative children. Together, our results underscore the aberrant nature of type 1 immunity in the airways of children with recurrent wheeze, and implicate an important viral trigger as a driver.

Authors

Naomi Bryant, Lyndsey M. Muehling, Kristin Wavell, W. Gerald Teague, Judith A. Woodfolk

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Figure 1

Mixtures of type 1 and type 17 signatures dominate the T cell landscape in the lower airways of children with recurrent wheeze.

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Mixtures of type 1 and type 17 signatures dominate the T cell landscape ...
(A) T cell frequencies in matched blood and BAL, as a percentage of CD3+ cells. (B) CD4+/CD8+ T cell ratio in blood and BAL. (C) CD4+/CD8+ T cell ratio in the BAL of patients with (n = 17) or without (n = 15) a respiratory pathogen. (D) Frequencies of naive (CD45RO–CCR7+), central memory (CD45RO+CCR7+, Tcm), effector memory (CD45RO+CCR7–, Tem), and terminal effector memory–like (CD45RO–CCR7–CD27–, TEMRA-like) T cells in blood and BAL, as a percentage of CD4+ and CD8+ T cells. (E) Frequencies of marker-positive memory (Tcm, Tem, and TEMRA-like) CD4+ and CD8+ T cells in blood and BAL. (F) Frequencies of type 1, type 2, and type 17 subsets in BAL. Black symbols denote atopic patients (n = 20). (G) Frequencies of CD4+ and CD8+ tissue-resident memory T cells in blood and BAL (CD69+CD103– and CD69+CD103+, Trm). (H) Histograms depicting the expression of select surface receptors on CD4+ and CD8+ Trm and non-Trm cells in BAL. Bars denote mean ± SEM (A–G). *P < 0.05, ****P ≤ 0.0001 by multiple Wilcoxon’s tests with Holm-Šidák correction (A, D, and E), Wilcoxon’s matched-pairs signed rank test (B and G), or Mann-Whitney test (C).

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