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The role of β2AR-mediated macrophage pyroptosis in psychological stress-induced duodenal inflammation in mice
Received date: 2025-12-05
Online published: 2026-04-28
Objective To investigate whether psychological stress causes duodenal inflammation and the related molecular mechanisms. Methods This study employed a chronic restraint stress (CRS) mouse model, which was supplemented with in vitro models using RAW264.7 and THP-1 monocytic/macrophage cell lines. Techniques including RT-qPCR, Western blot, HE staining, and immunohistochemistry were used to investigate the expression alterations of inflammatory cytokines, pyroptosis pathway-related proteins, and hormone receptors. Results CRS significantly triggered an inflammatory response in the duodenal tissue of mice, which was characterized by heightened levels of inflammatory cytokines such as IL-1β, IL-18, and TNF-α, along with elevated histological scores (P < 0.05). This pro-inflammatory effect was mediated by the β2-adrenergic receptor (β2AR), rather than the glucocorticoid receptor. Further research demonstrated that CRS facilitated the proliferation of macrophages in the duodenal mucosa, and the chemical depletion of macrophages effectively inhibited CRS-induced inflammation (P < 0.01). Mechanistically, CRS activated the classical NLRP3/Caspase1/GSDMD-mediated pyroptosis pathway in duodenal macrophages, as indicated by the increased protein level of the activated N-terminal fragment of GSDMD. In vitro experiments verified that the stress hormone epinephrine could directly activate the macrophage pyroptosis pathway and stimulate the release of inflammatory cytokines via β2AR (P < 0.05). Conclusions Psychological stress triggers the activation of the sympathetic-adrenal medulla system. This activation promotes GSDMD-mediated pyroptosis in duodenal macrophages through the β2AR signaling pathway, ultimately resulting in duodenal mucosal inflammation.
Key words: β2AR; psychological stress; duodenal inflammation; macrophage; pyroptosis
Kehan YIN , Biyu WU , Qianqian WANG , Shengliang CHEN . The role of β2AR-mediated macrophage pyroptosis in psychological stress-induced duodenal inflammation in mice[J]. The Journal of Practical Medicine, 2026 , 42(8) : 1322 -1331 . DOI: 10.3969/j.issn.1006-5725.2026.08.003
| [1] | AZIZ I, PALSSON O S, T?RNBLOM H, et al. Epidemiology, clinical characteristics, and associations for symptom-based Rome IV functional dyspepsia in adults in the USA, Canada, and the UK: A cross-sectional population-based study[J]. Lancet Gastroenterol Hepatol, 2018, 3(4): 252-262. doi:10.1016/S2468-1253(18)30003-7 . |
| [2] | MASUY I, VAN OUDENHOVE L, TACK J. Review article: Treatment options for functional dyspepsia[J]. Aliment Pharmacol Ther, 2019, 49(9): 1134-1172. doi:10.1111/apt.15191 . |
| [3] | FORD A C, STAUDACHER H M, TALLEY N J. Postprandial symptoms in disorders of gut-brain interaction and their potential as a treatment target[J]. Gut, 2024, 73(7): 1199-1211. doi:10.1136/gutjnl-2023-331833 . |
| [4] | WAUTERS L, TALLEY N J, WALKER M M, et al. Novel concepts in the pathophysiology and treatment of functional dyspepsia[J]. Gut, 2020, 69(3): 591-600. doi:10.1136/gutjnl-2019-318536 . |
| [5] | TALLEY N J. What causes functional gastrointestinal disorders? A proposed disease model[J]. Am J Gastroenterol, 2020, 115(1): 41-48. doi:10.14309/ajg.0000000000000485 . |
| [6] | WAUTERS L, BURNS G, CEULEMANS M, et al. Duodenal inflammation: An emerging target for functional dyspepsia?[J]. Expert Opin Ther Targets, 2020, 24(6): 511-523. doi:10.1080/14728222.2020.1752181 . |
| [7] | OSHIMA T. Functional dyspepsia: Current understanding and future perspective[J]. Digestion, 2024, 105(1): 26-33. doi:10.1159/000532082 . |
| [8] | 沈宏. 功能性消化不良与精神心理因素相关性的临床分析[J]. 中国高等医学教育, 2016(2): 130, 132. doi:10.3969/j.issn.1002-1701.2016.02.069 . |
| [9] | GAO Y, LIU K Y, XIAO W, et al. Aryl hydrocarbon receptor confers protection against macrophage pyroptosis and intestinal inflammation through regulating polyamine biosynthesis[J]. Theranostics, 2024, 14(11): 4218-4239. doi:10.7150/thno.95749 . |
| [10] | ROBINSON N, GANESAN R, HEGED?S C, et al. Programmed necrotic cell death of macrophages: Focus on pyroptosis, necroptosis, and parthanatos[J]. Redox Biol, 2019, 26: 101239. doi:10.1016/j.redox.2019.101239 . |
| [11] | FRANK D, VINCE J E. Pyroptosis versus necroptosis: Similarities, differences, and crosstalk[J]. Cell Death Differ, 2019, 26(1): 99-114. doi:10.1038/s41418-018-0212-6 . |
| [12] | ORNING P, LIEN E, FITZGERALD K A. Gasdermins and their role in immunity and inflammation[J]. J Exp Med, 2019, 216(11): 2453-2465. doi:10.1084/jem.20190545 . |
| [13] | IBEAKANMA C, OCHOA-CORTES F, MIRANDA-MORALES M, et al. Brain-gut interactions increase peripheral nociceptive signaling in mice with postinfectious irritable bowel syndrome[J]. Gastroenterology, 2011, 141(6): 2098-2108.e5. doi:10.1053/j.gastro.2011.08.006 . |
| [14] | POWELL N D, SLOAN E K, BAILEY M T, et al. Social stress up-regulates inflammatory gene expression in the leukocyte transcriptome via β-adrenergic induction of myelopoiesis[J]. Proc Natl Acad Sci U S A, 2013, 110(41): 16574-16579. doi:10.1073/pnas.1310655110 . |
| [15] | MACCORMACK J K, GAUDIER-DIAZ M M, ARMSTRONG-CARTER E L, et al. Beta-adrenergic blockade blunts inflammatory and antiviral/antibody gene expression responses to acute psychosocial stress[J]. Neuropsychopharmacology, 2021, 46(4): 756-762. doi:10.1038/s41386-020-00897-0 . |
| [16] | LIU W Z, ZHANG W H, ZHENG Z H, et al. Identification of a prefrontal cortex-to-amygdala pathway for chronic stress-induced anxiety[J]. Nat Commun, 2020, 11(1): 2221. doi:10.1038/s41467-020-15920-7 . |
| [17] | LUO Q Q, CHENG L, WANG B, et al. ZBTB20 mediates stress-induced visceral hypersensitivity via activating the NF-κB/transient receptor potential channel pathway[J]. Neurogastroenterol Motil, 2024, 36(2): e14718. doi:10.1111/nmo.14718 . |
| [18] | KOBAYASHI H, IIDA T, OCHIAI Y, et al. Neuro-mesenchymal interaction mediated by a β2-adrenergic nerve growth factor feedforward loop promotes colorectal cancer progression[J]. Cancer Discov, 2025, 15(1): 202-226. doi:10.1158/2159-8290.CD-24-0287 . |
| [19] | XIAO X, GAO Y, YAN L, et al. M1 polarization of macrophages promotes stress-induced hair loss via interleukin-18 and interleukin-1β[J]. J Cell Physiol, 2024, 239(4): e31181. doi:10.1002/jcp.31181 . |
| [20] | PIKE A F, LONGHENA F, FAUSTINI G, et al. Dopamine signaling modulates microglial NLRP3 inflammasome activation: Implications for Parkinson's disease[J]. J Neuroinflammation, 2022, 19(1): 50. doi:10.1186/s12974-022-02410-4 . |
| [21] | GASTALDELLO A, LIVINGSTONE D E W, ABERNETHIE A J, et al. Safer topical treatment for inflammation using 5α-tetrahydrocorticosterone in mouse models[J]. Biochem Pharmacol, 2017, 129: 73-84. doi:10.1016/j.bcp.2017.01.008 . |
| [22] | MARGOLIS K G, STEVANOVIC K, LI Z, et al. Pharmacological reduction of mucosal but not neuronal serotonin opposes inflammation in mouse intestine[J]. Gut, 2014, 63(6): 928-937. doi:10.1136/gutjnl-2013-304901 . |
| [23] | BALSIGER L M, CARBONE F, RAYMENANTS K, et al. Understanding and managing patients with overlapping disorders of gut-brain interaction[J]. Lancet Gastroenterol Hepatol, 2023, 8(4): 383-390. doi:10.1016/S2468-1253(22)00435-6 . |
| [24] | TAKI M, OSHIMA T, LI M, et al. Duodenal low-grade inflammation and expression of tight junction proteins in functional dyspepsia[J]. Neurogastroenterol Motil, 2019, 31(10): e13576. doi:10.1111/nmo.13576 . |
| [25] | 黄智炜, 颜秀娟, 陈胜良. 十二指肠炎症与功能性胃肠病症状重叠的研究进展[J]. 胃肠病学, 2023, 28(2): 120-124. doi:10.3969/j.issn.1008-7125.2023.02.009 . |
| [26] | DENG Y, ZHOU M, WANG J, et al. Involvement of the microbiota-gut-brain axis in chronic restraint stress: Disturbances of the kynurenine metabolic pathway in both the gut and brain[J]. Gut Microbes, 2021, 13(1): 1869501. doi:10.1080/19490976.2020.1869501 . |
| [27] | BEDERSKA-?OJEWSKA D, SZCZEPANIK K, TUREK J, et al. Dietary zinc restriction and chronic restraint stress affect mice physiology, immune organ morphology, and liver function[J]. Nutrients, 2024, 16(22): 3934. doi:10.3390/nu16223934 . |
| [28] | ZHANG C, SONG Y, JIN X, et al. Chronic psychological stress induces cardiomyocyte hypertrophy through corticosterone-glucocorticoid receptor-LAMA5 axis[J]. Adv Sci, 2025, 12(36): e14659. doi:10.1002/advs.202414659 . |
| [29] | GUAN Y, YAO W, YU H, et al. Chronic stress promotes colorectal cancer progression by enhancing glycolysis through β2-AR/CREB1 signal pathway[J]. Int J Biol Sci, 2023, 19(7): 2006-2019. doi:10.7150/ijbs.79583 . |
| [30] | WALSH C P, BOVBJERG D H, MARSLAND A L. Glucocorticoid resistance and β2-adrenergic receptor signaling pathways promote peripheral pro-inflammatory conditions associated with chronic psychological stress: A systematic review across species[J]. Neurosci Biobehav Rev, 2021, 128: 117-135. doi:10.1016/j.neubiorev.2021.06.013 . |
| [31] | 杨奎, 潘旭冉, 邵敏. 糖皮质激素治疗老年重症肺炎合并呼吸衰竭患者对APACHEⅡ、SOFA评分及预后的影响[J]. 实用医学杂志, 2025, 41(10): 1569-1574. doi:10.3969/j.issn.1006-5725.2025.10.020 . |
| [32] | 张玲, 金成豪, 孔春芳. 糖皮质激素在多发性骨髓瘤中的耐药机制[J]. 实用医学杂志, 2023, 39(11): 1457-1460. doi:10.3969/j.issn.1006-5725.2023.11.023 . |
| [33] | HEGARTY L M, JONES G R, BAIN C C. Macrophages in intestinal homeostasis and inflammatory bowel disease[J]. Nat Rev Gastroenterol Hepatol, 2023, 20(8): 538-553. doi:10.1038/s41575-023-00769-0 . |
| [34] | LI P, HAO Z, WU J, et al. Comparative proteomic analysis of polarized human THP-1 and mouse RAW264.7 macrophages[J]. Front Immunol, 2021, 12: 700009. doi:10.3389/fimmu.2021.700009 . |
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