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RIPK1 is a critical modulator of both tonic and TLR-responsive inflammatory and cell death pathways in human macrophage differentiation

机译:RIPK1是人类巨噬细胞分化过程中滋补和TLR反应性炎症和细胞死亡途径的关键调节剂

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摘要

In this study, we took advantage of human-induced pluripotent stem cells (hiPSC) and CRISPR/Cas9 technology to investigate the potential roles of RIPK1 in regulating hematopoiesis and macrophage differentiation, proinflammatory activation, and cell death pathways. Knock-out of RIPK1 in hiPSCs demonstrated that this protein is not required for erythro-myeloid differentiation. Using a well-established macrophage differentiation protocol, knock-out of RIPK1 did not block the differentiation of iPSC-derived macrophages, which displayed a similar phenotype to WT hiPSC-derived macrophages. However, knock-out of RIPK1 leads to a TNFα-dependent apoptotic death of differentiated hiPSC-derived macrophages (iPS-MΦ) and progressive loss of iPS-MΦ production irrespective of external pro-inflammatory stimuli. Live video analysis demonstrated that TLR3/4 activation of RIPK1 KO hiPSC-derived macrophages triggered TRIF and RIPK3-dependent necroptosis irrespective of caspase-8 activation. In contrast, TLR3/4 activation of WT macrophages-induced necroptosis only when caspases were inhibited, confirming the modulating effect of RIPK1 on RIPK3-mediated necroptosis through the FADD, Caspase-8 pathway. Activation of these inflammatory pathways required RIPK3 kinase activity while RIPK1 was dispensable. However, loss of RIPK1 sensitizes macrophages to activate RIPK3 in response to inflammatory stimuli, thereby exacerbating a potentially pathological inflammatory response. Taken together, these results reveal that RIPK1 has an important role in regulating the potent inflammatory pathways in authentic human macrophages that are poised to respond to external stimuli. Consequently, RIPK1 activity might be a valid target in the development of novel therapies for chronic inflammatory diseases.
机译:在这项研究中,我们利用人类诱导的多能干细胞(hiPSC)和CRISPR / Cas9技术研究了RIPK1在调节造血和巨噬细胞分化,促炎激活和细胞死亡途径中的潜在作用。在hiPSC中敲除RIPK1表明,该蛋白质不是红系-髓系分化所必需的。使用公认的巨噬细胞分化方案,敲除RIPK1不会阻止iPSC衍生巨噬细胞的分化,后者表现出与WT hiPSC衍生巨噬细胞相似的表型。但是,敲除RIPK1会导致分化的hiPSC衍生的巨噬细胞(iPS-MΦ)的TNFα依赖性凋亡死亡,以及iPS-MΦ产生的进行性损失,而与外部促炎性刺激无关。实时视频分析表明,无论caspase-8激活如何,源自RIPK1 KO hiPSC的巨噬细胞的TLR3 / 4激活均会触发TRIF和RIPK3依赖性坏死病。相比之下,仅当胱天蛋白酶被抑制时,WT巨噬细胞诱导的坏死性细胞的TLR3 / 4激活,证实了RIPK1通过FADD,Caspase-8途径对RIPK3介导的坏死性细胞的调节作用。这些炎症途径的激活需要RIPK3激酶活性,而RIPK1是可有可无的。但是,RIPK1的丢失使巨噬细胞激活RIPK3,以响应炎症刺激,从而加剧潜在的病理性炎症反应。综上所述,这些结果表明,RIPK1在调节正准备对外部刺激作出反应的真实人类巨噬细胞中的强力炎症途径中起重要作用。因此,RIPK1活性可能是开发针对慢性炎性疾病的新疗法的有效目标。

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