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IL-27 blockade suppresses IL-10 modification in Th1 cells and promotes intracranial aneurysms rupture
Xi Zeng1, Fengling Zang1, Guirong Bu2
1Department of Pharmacy, Nanjing First Hospital, Nanjing University of Chinese Medicine, Nanjing, Jiangsu, 210023, China; School of Pharmacy, Jiangsu Key Laboratory for Pharmacology and Safety Evaluation of Chinese Materia Medica, Nanjing University of Chinese Medicine, Nanjing, Jiangsu, 210023, China.
Intracranial aneurysms (IA) stability is regulated by helper T (Th)-cell homeostasis, but the role of IL-27, a key cytokine inducing regulatory T-cell phenotypes, remains unexplored. This study aimed to determine the role of IL-27 insufficiency in IA rupture and to elucidate the underlying immunopathological mechanisms. We integrated transcriptomic data from human IA tissues with an elastase-induced hypertensive mouse model. Findings were gained through IL-27 blockade in vivo, immunofluorescence staining, and in vitro co-culture systems involving bone marrow-derived macrophages (BMDMs) with IL-27 blockade, CD4+ T cells, and cerebrovascular endothelial system. IL-27 expression was markedly reduced in ruptured human and mouse IA tissues. In mice, IL-27 blockade increased the IA rupture rate, exacerbated vascular remodeling, and promoted endothelial injury. This was accompanied by a systemic inflammatory shift, with decreased IL-10 and increased IFN-γ levels, alongside localized expansion of T-bet+ Th1 cells and depletion of IL-10+ type 1 regulatory T (Tr1) cells in IA wall. Although CD68+ macrophages abundantly infiltrated IA lesions, their IL-27 production was impaired. In vitro IL-27 blockade in BMDMs promoted Th1 polarization, suppressed Tr1 differentiation, and rendered CD4+ T cells capable of inducing endothelial damage and soluble adhesion molecule release. IL-27 blockade promotes IA rupture by disrupting Th1/Tr1 balance, which may through impaired macrophage function, revealing a novel immunopathological mechanism and potential therapeutic target for IA management.
Intracranial aneurysms (IA) stability is regulated by helper T (Th)-cell homeostasis, but the role of IL-27, a key cytokine inducing regulatory T-cell phenotypes, remains unexplored. This study aimed to determine the role of IL-27 insufficiency in IA rupture and to elucidate the underlying immunopathological mechanisms. We integrated transcriptomic data from human IA tissues with an elastase-induced hypertensive mouse model. Findings were gained through IL-27 blockade in vivo, immunofluorescence staining, and in vitro co-culture systems involving bone marrow-derived macrophages (BMDMs) with IL-27 blockade, CD4+ T cells, and cerebrovascular endothelial system. IL-27 expression was markedly reduced in ruptured human and mouse IA tissues. In mice, IL-27 blockade increased the IA rupture rate, exacerbated vascular remodeling, and promoted endothelial injury. This was accompanied by a systemic inflammatory shift, with decreased IL-10 and increased IFN-γ levels, alongside localized expansion of T-bet+ Th1 cells and depletion of IL-10+ type 1 regulatory T (Tr1) cells in IA wall. Although CD68+ macrophages abundantly infiltrated IA lesions, their IL-27 production was impaired. In vitro IL-27 blockade in BMDMs promoted Th1 polarization, suppressed Tr1 differentiation, and rendered CD4+ T cells capable of inducing endothelial damage and soluble adhesion molecule release. IL-27 blockade promotes IA rupture by disrupting Th1/Tr1 balance, which may through impaired macrophage function, revealing a novel immunopathological mechanism and potential therapeutic target for IA management.
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