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B cell deficiency induces cytotoxic memory CD8+ T cells during influenza-associated bacterial pneumonia
Leigh M. Miller, Alexis M. Duray, Ellyse M. Cipolla, Flavia Rago, Brooke P. Dresden, Kristen L. Parenteau, Abhigya Gupta, John F. Alcorn
Leigh M. Miller, Alexis M. Duray, Ellyse M. Cipolla, Flavia Rago, Brooke P. Dresden, Kristen L. Parenteau, Abhigya Gupta, John F. Alcorn
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Research Article Immunology Infectious disease

B cell deficiency induces cytotoxic memory CD8+ T cells during influenza-associated bacterial pneumonia

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Abstract

Influenza-associated bacterial superinfections in the lung lead to increased morbidity and mortality. Nearly all people have preexisting memory to influenza virus, which can protect against subsequent infection in the lung. This study explored the role B cells play in protection against bacterial (Staphylococcus aureus or Klebsiella pneumoniae) superinfection with previous heterotypic influenza memory. B cell deficiency resulted in an increased inflammatory lung environment and lung tissue injury during superinfection. Loss of B cells increased populations of memory CD8+ T cells in the lung, and these CD8+ T cells were transcriptionally and functionally distinct from those of WT mice. Use of antibody-deficient mouse models showed that this phenotype was specifically due to loss of antibody production from B cells. Passive immunization with influenza antibody serum in B cell–deficient mice rescued the CD8+ T cell phenotype. CD8+ T cell depletion and lethal superinfection challenge experiments showed that the cytotoxic memory CD8+ T cells from B cell–deficient mice protect against superinfection bacterial burden and mortality. These findings provide insight into the importance of B cells for regulating immune responses against infection.

Authors

Leigh M. Miller, Alexis M. Duray, Ellyse M. Cipolla, Flavia Rago, Brooke P. Dresden, Kristen L. Parenteau, Abhigya Gupta, John F. Alcorn

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Figure 4

Loss of influenza virus–specific antibody drives cytotoxic memory CD8+ T cell responses in superinfection.

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Loss of influenza virus–specific antibody drives cytotoxic memory CD8+ T...
(A) X-31 influenza virus–specific serum titers measured by hemagglutinin inhibition assay (HAI) at day 61 (WT: n = 19; MD4: n = 5; μMT: n = 8; IgMi: n = 8). (B) Percentage weight loss was calculated starting from PR8 infection (WT: n = 18; MD4: n = 14; μMT: n = 26; IgMi: n = 7). (C) Viral burden (PR8) assessed via quantitative PCR (WT: n = 19; MD4: n = 14; μMT: n = 16; IgMi: n = 8). (D) Number of MRSA colonies from lung homogenates (WT: n = 22; MD4: n = 9; μMT: n = 18; IgMi: n = 8). (E) Percentage of CD8+ cells (WT: n = 27; MD4: n = 11; μMT: n = 27; IgMi: n = 8). (F) Percentage of CD44hiCD62loCD8+ cells (WT: n = 24; MD4: n = 11; μMT: n = 16; IgMi: n = 8). (G) Absolute number of NP-tetramer+CD44hiCD8+ cells (WT: n = 19; MD4: n = 11; μMT: n = 16; IgMi: n = 8). (H) Percentage of PD-1+LAG-3+TIM-3+CD8+ cells (WT: n = 24; MD4: n = 11; μMT: n = 16; IgMi: n = 8). (I) Percentage of IFN-γ+CD8+ cells (WT: n = 19; MD4: n = 7; μMT: n = 20; IgMi: n = 7). (J) Median fluorescence intensity (MFI) of granzyme B+CD8+ T cells (WT: n = 14; MD4: n = 11; μMT: n = 13; IgMi: n = 7). (K and L) Protein expression of granzyme B (WT: n = 8; MD4: n = 6; μMT: n = 7; IgMi: n = 8) and TNF-α (WT: n = 7; MD4: n = 7; μMT: n = 8; IgMi: n = 7) from BALF. Data are represented as mean ± SEM, and P values were determined by repeated 1-way ANOVA measures (*P < 0.05, **P < 0.01, ***P <0.001, ****P < 0.0001).

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ISSN: 0021-9738 (print), 1558-8238 (online)

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