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Monoallelic IRF5 deficiency in B cells prevents murine lupus
Alex Pellerin, Kei Yasuda, Abraham Cohen-Bucay, Vanessa Sandra, Prachi Shukla, Barry K. Horne Jr, Kerstin Nündel, Gregory A. Viglianti, Yao Xie, Ulf Klein, Ying Tan, Ramon G. Bonegio, Ian R. Rifkin
Alex Pellerin, Kei Yasuda, Abraham Cohen-Bucay, Vanessa Sandra, Prachi Shukla, Barry K. Horne Jr, Kerstin Nündel, Gregory A. Viglianti, Yao Xie, Ulf Klein, Ying Tan, Ramon G. Bonegio, Ian R. Rifkin
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Research Article

Monoallelic IRF5 deficiency in B cells prevents murine lupus

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Abstract

Gain-of-function polymorphisms in the transcription factor IFN regulatory factor 5 (IRF5) are associated with an increased risk of developing systemic lupus erythematosus. However, the IRF5-expressing cell type(s) responsible for lupus pathogenesis in vivo is not known. We now show that monoallelic IRF5 deficiency in B cells markedly reduced disease in a murine lupus model. In contrast, similar reduction of IRF5 expression in macrophages, monocytes, and neutrophils did not reduce disease severity. B cell receptor and TLR7 signaling synergized to promote IRF5 phosphorylation and increase IRF5 protein expression, with these processes being independently regulated. This synergy increased B cell–intrinsic IL-6 and TNF-α production, both key requirements for germinal center (GC) responses, with IL-6 and TNF-α production in vitro and in vivo being substantially lower with loss of 1 allele of IRF5. Mechanistically, TLR7-dependent IRF5 nuclear translocation was reduced in B cells from IRF5-heterozygous mice. In addition, we show in multiple lupus models that IRF5 expression was dynamically regulated in vivo with increased expression in GC B cells compared with non-GC B cells and with further sequential increases during progression to plasmablasts and long-lived plasma cells. Overall, a critical threshold level of IRF5 in B cells was required to promote disease in murine lupus.

Authors

Alex Pellerin, Kei Yasuda, Abraham Cohen-Bucay, Vanessa Sandra, Prachi Shukla, Barry K. Horne Jr, Kerstin Nündel, Gregory A. Viglianti, Yao Xie, Ulf Klein, Ying Tan, Ramon G. Bonegio, Ian R. Rifkin

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Figure 6

GC B cells, Tfhs, and T-bet+ B cells are reduced in the spleens of IRF5ΔB mice.

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GC B cells, Tfhs, and T-bet+ B cells are reduced in the spleens of IRF5Δ...
Spleen cells from 8- to 10-week-old FcγRIIB−/−Yaa WT (n = 6), IRF5F/+ (n = 10), IRF5ΔB (n = 8), IRF5+/– (global heterozygous deletion, n = 7), and IRF5–/– (global homozygous deletion, n = 7) mice were analyzed. (A and B) Representative flow cytometry plots and total numbers of CD95+CD38– GC B cells (gated on CD19+B220+ cells). (C and D) Representative flow cytometry plots and total numbers of CXCR5+PD-1+ Tfhs (gated on CD3+CD4+). (E) Upper panel indicates CD23–CD21– B cells (gated on B220+CD19+CD43–CD93 cells); lower panel indicates T-bet+CD11c+ ABCs gated on the CD23–CD21– B cells shown in the upper panel. A representative example is shown. (F) Total number of T-bet+CD11c+ ABCs. Data are shown as mean ± SEM and were analyzed using 1-way ANOVA with Tukey’s post hoc test; *P < 0.05, **P < 0.01, ***P < 0.001. GC, germinal center; Tfhs, T follicular helper cells; IRF5, IFN regulatory factor 5; ABCs, age-associated B cells.

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