Division of Molecular Medicine (M.W., P.F., A.E.B., M.M.M., W.W., S.A., N.W., C.L.W., A.R.T.).
Department of Pediatrics, Section of Molecular Genetics (M.W.).
Circulation. 2018 Aug 28;138(9):898-912. doi: 10.1161/CIRCULATIONAHA.117.032636.
BACKGROUND: The CANTOS trial (Canakinumab Antiinflammatory Thrombosis Outcome Study) showed that antagonism of interleukin (IL)-1β reduces coronary heart disease in patients with a previous myocardial infarction and evidence of systemic inflammation, indicating that pathways required for IL-1β secretion increase cardiovascular risk. IL-1β and IL-18 are produced via the NLRP3 inflammasome in myeloid cells in response to cholesterol accumulation, but mechanisms linking NLRP3 inflammasome activation to atherogenesis are unclear. The cholesterol transporters ATP binding cassette A1 and G1 (ABCA1/G1) mediate cholesterol efflux to high-density lipoprotein, and Abca1/g1 deficiency in myeloid cells leads to cholesterol accumulation. METHODS: To interrogate mechanisms connecting inflammasome activation with atherogenesis, we used mice with myeloid Abca1/g1 deficiency and concomitant deficiency of the inflammasome components Nlrp3 or Caspase-1/11. Bone marrow from these mice was transplanted into Ldlr recipients, which were fed a Western-type diet. RESULTS: Myeloid Abca1/g1 deficiency increased plasma IL-18 levels in Ldlr mice and induced IL-1β and IL-18 secretion in splenocytes, which was reversed by Nlrp3 or Caspase-1/11 deficiency, indicating activation of the NLRP3 inflammasome. Nlrp3 or Caspase-1/11 deficiency decreased atherosclerotic lesion size in myeloid Abca1/g1-deficient Ldlr mice. Myeloid Abca1/g1 deficiency enhanced caspase-1 cleavage not only in splenic monocytes and macrophages, but also in neutrophils, and dramatically enhanced neutrophil accumulation and neutrophil extracellular trap formation in atherosclerotic plaques, with reversal by Nlrp3 or Caspase-1/11 deficiency, suggesting that inflammasome activation promotes neutrophil recruitment and neutrophil extracellular trap formation in atherosclerotic plaques. These effects appeared to be indirectly mediated by systemic inflammation leading to activation and accumulation of neutrophils in plaques. Myeloid Abca1/g1 deficiency also activated the noncanonical inflammasome, causing increased susceptibility to lipopolysaccharide-induced mortality. Patients with Tangier disease, who carry loss-of-function mutations in ABCA1 and have increased myeloid cholesterol content, showed a marked increase in plasma IL-1β and IL-18 levels. CONCLUSIONS: Cholesterol accumulation in myeloid cells activates the NLRP3 inflammasome, which enhances neutrophil accumulation and neutrophil extracellular trap formation in atherosclerotic plaques. Patients with Tangier disease, who have increased myeloid cholesterol content, showed markers of inflammasome activation, suggesting human relevance.
背景:CANTOS 试验(Canakinumab Antiinflammatory Thrombosis Outcome Study)表明,白细胞介素(IL)-1β拮抗剂可降低既往心肌梗死和全身炎症证据的患者的冠心病风险,表明 IL-1β 分泌所需的途径增加了心血管风险。IL-1β 和 IL-18 通过髓样细胞中的 NLRP3 炎性小体在胆固醇积累时产生,但将 NLRP3 炎性小体激活与动脉粥样硬化形成联系起来的机制尚不清楚。胆固醇转运蛋白 ATP 结合盒 A1 和 G1(ABCA1/G1)介导胆固醇向高密度脂蛋白的流出,而髓样细胞中 Abca1/g1 的缺乏会导致胆固醇积累。
方法:为了探究连接炎性小体激活与动脉粥样硬化形成的机制,我们使用髓样细胞 Abca1/g1 缺乏和炎性小体成分 Nlrp3 或 Caspase-1/11 同时缺乏的小鼠。将这些小鼠的骨髓移植到 LDLR 受体中,并给予西方饮食。
结果:髓样细胞 Abca1/g1 缺乏增加了 LDLR 小鼠的血浆 IL-18 水平,并诱导脾细胞中 IL-1β 和 IL-18 的分泌,这可以被 Nlrp3 或 Caspase-1/11 缺乏所逆转,表明 NLRP3 炎性小体的激活。Nlrp3 或 Caspase-1/11 缺乏减少了髓样细胞 Abca1/g1 缺陷 LDLR 小鼠的动脉粥样硬化病变大小。髓样细胞 Abca1/g1 缺乏不仅增强了脾单核细胞和巨噬细胞中的 Caspase-1 切割,而且增强了中性粒细胞中的 Caspase-1 切割,并显著增强了动脉粥样硬化斑块中的中性粒细胞积累和中性粒细胞细胞外陷阱的形成,这可以被 Nlrp3 或 Caspase-1/11 缺乏所逆转,表明炎性小体的激活促进了动脉粥样硬化斑块中中性粒细胞的募集和中性粒细胞细胞外陷阱的形成。这些影响似乎是通过导致斑块中中性粒细胞的激活和积累的系统性炎症间接介导的。髓样细胞 Abca1/g1 缺乏还激活了非经典炎性小体,导致对脂多糖诱导的死亡率的敏感性增加。载脂蛋白 A1 功能丧失突变并增加髓样细胞胆固醇含量的 Tangier 病患者表现出血浆 IL-1β 和 IL-18 水平的显著增加。
结论:髓样细胞中的胆固醇积累激活 NLRP3 炎性小体,增强了动脉粥样硬化斑块中的中性粒细胞积累和中性粒细胞细胞外陷阱的形成。载脂蛋白 A1 功能丧失突变并增加髓样细胞胆固醇含量的 Tangier 病患者表现出炎性小体激活的标志物,表明存在人类相关性。
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