免疫学
疾病
生物
自然杀伤细胞
巨噬细胞
细胞因子
炎症
细胞
T细胞
免疫系统
巨噬细胞活化综合征
促炎细胞因子
发病机制
电池类型
先天免疫系统
医学
肿瘤坏死因子α
白细胞介素15
转录组
人类疾病
失调家庭
单核细胞
作者
Amber De Visscher,Jarne Beliën,Bert Malengier‐Devlies,Eline Bernaerts,Leana De Vuyst,Jessica Filtjens,Kourosh Ahmadzadeh,Tania Mitera,Nele Berghmans,Katerina Laskari,Yvan Jamilloux,Paul Régnier,David Saadoun,Charlotte Girard,Cem Gabay,Mieke Gouwy,Paul Proost,Stéphanie Humblet‐Baron,Yvonne M. Mueller,Stefan J. Erkland
摘要
OBJECTIVE: Still disease is a rare systemic inflammatory disorder of unknown origin, characterized by episodes of uncontrolled inflammation. Although natural killer (NK) cells have been implicated in Still disease pathogenesis, their precise role remains elusive. METHODS: Within the framework of the Immunome Project Consortium for Autoinflammatory Disorders, we performed a comprehensive NK cell phenotyping in an international cohort comprising 121 patients with distinct systemic autoinflammatory diseases (53 with Still disease, 23 with chronic recurrent multifocal osteomyelitis, 23 with familial Mediterranean fever, and 22 with inflammation of unknown origin) and 32 healthy controls. RESULTS: cycling lymphocytes. Still disease NK cells displayed a hyperactivated but exhausted phenotype, including cytokine unresponsiveness, all features not observed in the other groups. This NK cell dysfunctional profile was normalized during clinical remission. Exposure of healthy NK cells to interleukin (IL)-12, IL-15, and IL-18 recapitulates the Still disease-associated phenotype, suggesting an inflammation-driven mechanism. Transcriptomic profiling identified microRNA miR-146a as a potential regulator of this NK cell dysfunction. CONCLUSION: Our findings establish NK cell apoptosis, exhaustion, and cytokine unresponsiveness as defining immunologic features of Still disease, distinguishing it from other inflammatory diseases in this cohort. This dysfunctional NK cell state may underlie the heightened risk of macrophage activation syndrome in Still disease and highlights inflammatory cytokines and miR-146a as promising therapeutic targets to mitigate disease severity and prevent life-threatening complications.
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