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Self-reactive B cells in the GALT are actively curtailed to prevent gut inflammation
Ashima Shukla, Cindi Chen, Julia Jellusova, Charlotte R. Leung, Elaine Kao, Numana Bhat, Wai W. Lin, John R. Apgar, Robert C. Rickert
Ashima Shukla, Cindi Chen, Julia Jellusova, Charlotte R. Leung, Elaine Kao, Numana Bhat, Wai W. Lin, John R. Apgar, Robert C. Rickert
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Research Article Immunology Inflammation

Self-reactive B cells in the GALT are actively curtailed to prevent gut inflammation

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Abstract

Immune homeostasis in the gut-associated lymphoid tissues (GALT) is critical to prevent the development of inadvertent pathologies. B cells, as the producers of antibodies and cytokines, play an important role in maintaining the GALT homeostasis. However, the mechanism by which B cells specifically direct their responses toward non-self-antigens and become ignorant to self-antigens in the GALT is not known. Therefore, we developed what we believe to be a novel mouse model by expressing duck egg lysozyme (DEL) in gut epithelial cells in presence of HEL-reactive B cells. Notably, we observed a transient activation and rapid deletion of self-reactive B cells in Peyer’s patches and mesenteric lymph nodes upon self-antigen exposure. The survival of self-reactive B cells upon exposure to their self-antigen was partially rescued by blocking receptor editing but could be completely rescued by stronger survival signal, such as ectopic expression of BCL2. Importantly, rescuing the self-reactive B cells promoted production of autoantibodies and gut inflammation. Mechanistically, we identify a specific activation of TGF-β signaling in self-reactive B cells in the gut and a critical role of this pathway in maintaining peripheral tolerance. Collectively, our studies describe functional consequences and the fate of self-reactive B cells in GALT and provide potentially novel mechanistic insights governing self-tolerance of B cells in the gut.

Authors

Ashima Shukla, Cindi Chen, Julia Jellusova, Charlotte R. Leung, Elaine Kao, Numana Bhat, Wai W. Lin, John R. Apgar, Robert C. Rickert

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Figure 4

Self-reactive B cells undergo Bim-mediated apoptosis and Rag-mediated receptor editing.

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Self-reactive B cells undergo Bim-mediated apoptosis and Rag-mediated re...
(A) Gated on B220+HEL+ cells, dot plot displaying gain of Bim expression in HEL-specific cells upon antigen encounter in PPs and graph displaying the percentage of Bim+ HEL-specific cells in spleens, pLNs, mLNs, and PPs from Villincre+SWHEL and Villincre+mDELloxpSWHEL mice. *P = 0.0442, ****P < 0.0001. Data are representative of more than 3 experimental repeats and 7 mice per group. (B) Immunohistochemistry staining of HEL binding (cy3) and Bim (cy5) in PPs from Villincre+SWHEL and Villincre+mDELloxpSWHEL mice (original magnification, ×20). Villincre+ and Villincre+mDELloxp mice were reconstituted with the bone marrow from SWHELRag2KO-transgenic mice (C) The frequency of B220+ cells in the spleens, pLNs, mLNs, and PPs and absolute numbers of HEL-specific B cells from PPs of RVillincre+(Rag2KO) and RVillincre+mDELloxp(Rag2KO) mice. (D) Gated on B220+ cells, graph displaying the frequency of HEL-specific cells in the spleens, pLNs, mLNs, and PPs of RVillincre+(Rag2KO), RVillincre+mDELloxp(Rag2KO), RVillincre+(Rag2KO+μMT), and RVillincre+mDELloxp(Rag2KO+μMT) mice. (E) Absolute numbers of HEL-specific cells in PPs of RVillincre+(Rag2KO+μMT) and RVillincre+mDELloxp(Rag2KO+μMT) mice. (F) Log2 fold change in the numbers of HEL-specific cells from PPs of reconstituted Villincre+ and Villincre+mDELloxp mice by SWHEL, SWHEL(Rag2KO) and SWHEL(Rag2KO+μMT) bone marrow. (G) Activation of HEL-specific cells from spleens, pLNs, mLNs, and PPs of RVillincre+(Rag2KO) and RVillincre+mDELloxp(Rag2KO) mice by HEL binding MFI and MHC-II MFI. ****P < 0.0001, **P < 0.005, *P = 0.0253. Data are represented of 4 mice group; experiments were performed 3 times for Rag2KO rescue. Grouped statistical analysis was performed by multiple t test and 2-way ANOVA in Prism.

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