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Altered X-chromosome inactivation in T cells may promote sex-biased autoimmune diseases
Camille M. Syrett, Bam Paneru, Donavon Sandoval-Heglund, Jianle Wang, Sarmistha Banerjee, Vishal Sindhava, Edward M. Behrens, Michael Atchison, Montserrat C. Anguera
Camille M. Syrett, Bam Paneru, Donavon Sandoval-Heglund, Jianle Wang, Sarmistha Banerjee, Vishal Sindhava, Edward M. Behrens, Michael Atchison, Montserrat C. Anguera
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Research Article Cell biology

Altered X-chromosome inactivation in T cells may promote sex-biased autoimmune diseases

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Abstract

Systemic lupus erythematosus (SLE) is an autoimmune disorder that predominantly affects women and is driven by autoreactive T cell–mediated inflammation. It is known that individuals with multiple X-chromosomes are at increased risk for developing SLE; however, the mechanisms underlying this genetic basis are unclear. Here, we use single cell imaging to determine the epigenetic features of the inactive X (Xi) in developing thymocytes, mature T cell subsets, and T cells from SLE patients and mice. We show that Xist RNA and heterochromatin modifications transiently reappear at the Xi and are missing in mature single positive T cells. Activation of mature T cells restores Xist RNA and heterochromatin marks simultaneously back to the Xi. Notably, X-chromosome inactivation (XCI) maintenance is altered in T cells of SLE patients and late-stage–disease NZB/W F1 female mice, and we show that X-linked genes are abnormally upregulated in SLE patient T cells. SLE T cells also have altered expression of XIST RNA interactome genes, accounting for perturbations of Xi epigenetic features. Thus, abnormal XCI maintenance is a feature of SLE disease, and we propose that Xist RNA localization at the Xi could be an important factor for maintaining dosage compensation of X-linked genes in T cells.

Authors

Camille M. Syrett, Bam Paneru, Donavon Sandoval-Heglund, Jianle Wang, Sarmistha Banerjee, Vishal Sindhava, Edward M. Behrens, Michael Atchison, Montserrat C. Anguera

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Figure 2

Timing of Xist RNA and H3K27me3 localization to the Xi during in vitro T cell stimulation.

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Timing of Xist RNA and H3K27me3 localization to the Xi during in vitro T...
(A) Time course for Xist RNA localization to the Xi for splenic CD3+ T cells stimulated with CD3/CD28, determined between days 0–4. Representative results from 1 experiment are shown. (B) Quantification of Xist RNA localization patterns for 4 independent experiments. Statistical significance for each type of Xist RNA localization pattern across 4 different mice (labeled m1–m4) was determined using 1-way ANOVA, and P values for each test are shown below the graph. (C) Time course (24–72 hours) for Xist RNA localization at the Xi for splenic CD3+ T cells stimulated with CD3/CD28. Results from 1 representative experiment are shown. (D) Quantification of Xist RNA localization patterns for 2 independent experiments, using 2 different mice (labeled m5 and m6). Statistical significance for each type of Xist RNA localization pattern was determined using 1-way ANOVA, and P values for each test are shown below the graph. (E) Sequential Xist RNA FISH and IF for H3K27me3 for splenic CD3+ T cells at 24, 30, 36, and 48 hours after stimulation, from 1 representative experiment. Arrows indicate co-localization of Xist RNA and H3K27me3 focus. (F) Quantification of colocalization patterns for Xist RNA and H3K27me3 during T cell activation, using the same 2 female mice from D. Statistical significance for each type of Xist RNA/H3K27me3 localization pattern was determined using 1-way ANOVA, and P values for each test are shown below the graph.

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