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The brain-body circuit mediates acute stress–induced antiinflammatory reflex in bacterial cystitis by suppressing ILC2 activation
Yaxiao Liu, Jinhua Wang, Junyang Lin, Dingqi Sun, Kejia Zhu, Tongxiang Diao, Qiang Fu, Qingyu Ren
Yaxiao Liu, Jinhua Wang, Junyang Lin, Dingqi Sun, Kejia Zhu, Tongxiang Diao, Qiang Fu, Qingyu Ren
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Research Article Infectious disease Inflammation

The brain-body circuit mediates acute stress–induced antiinflammatory reflex in bacterial cystitis by suppressing ILC2 activation

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Abstract

Urinary tract infections (UTIs) are one of the most commonly encountered infections in clinical practice, in which psychological stress is a critical pathological contributor to modulate immune function. However, mechanistic pathways linking stress networks in the brain to bladder infection remain poorly understood. In this study, we discovered that acute stress treatment suppressed bladder inflammation in mice with UTIs, and a substantial number of neurons showing overlap between inflammation-associated markers and retrograde labeling were observed in the paraventricular nucleus (PVN) brain region of these mice. Activation of the PVN alleviated uropathogenic Escherichia coli–induced bladder inflammatory response. Moreover, a blocked hypothalamic-pituitary-adrenal axis reversed the antiinflammatory reflex mediated by acute stress, suggesting that glucocorticoids may modulate UTIs through the brain-body circuit. Single-cell RNA-Seq of bladder immune cells revealed that type 2 innate lymphoid (ILC2) cells expressed abundant levels of glucocorticoid receptor. The activation of the PVN effectively inhibited the expression of the pro-inflammatory cytokine colony-stimulating factor 2 by ILC2 cells through direct regulation of cell-intrinsic glucocorticoid signaling. Ultimately, our study has implications for the positioning of the brain-body circuit for UTI treatment.

Authors

Yaxiao Liu, Jinhua Wang, Junyang Lin, Dingqi Sun, Kejia Zhu, Tongxiang Diao, Qiang Fu, Qingyu Ren

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Figure 2

Identification of brain regions involved in bladder inflammation.

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Identification of brain regions involved in bladder inflammation.
(A) Ex...
(A) Experimental setup. Fos-iCreERT2 Ai14-tdTomato mice were treated with TM to label active neurons. (B) Experimental timeline of the bladder inflammation mouse model. (C) c-Fos+ cell numbers in several brain neurons (n = 6 mice per group). *P < 0.05, **P < 0.01, ***P < 0.001 vs. control group. (D) Schematic and experimental timeline of PRV-EGFP injection into the bladder wall. (E) Left: the representative image of PRV-infected (green) and TM-labeled (red) colabeled neurons in PVN. Scale bar, 200 μm. Magnified image. Scale bar, 50 μm. Right: quantification of the percentage of colabeled neurons in the Fos+ population averaged from n = 3 mice. (F and G) Representative images of c-Fos expression in PVN labeled with tdTomato (red) (n = 6 mice per group). ***P < 0.001 vs. control group. #P < 0.05, ##P < 0.01 vs. UPEC group. Scale bar, 200 μm. Box plots show the interquartile range, median (line), and minimum and maximum (whiskers). Results are presented as mean ± SEM and analyzed by 2-way ANOVA with Holm-Šidák corrections for multiple comparisons (C) or 1-way ANOVA with Tukey’s corrections for multiple comparisons (G).

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