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Intracellular Pathogen Sensor NOD2 Programs Macrophages to Trigger Notch1 Activation

机译:细胞内病原体传感器NOD2程序巨噬细胞触发NOTCH1激活

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Intracellular pathogen sensor, NOD2, has been implicated in regulation of wide range of anti-inflammatory responses critical during development of a diverse array of inflammatory diseases; however, underlying molecular details are still imprecisely understood. In this study, we demonstrate that NOD2 programs macrophages to trigger Notch1 signaling. Signaling perturbations or genetic approaches suggest signaling integration through cross-talk between Notch1-PI3K during the NOD2-triggered expression of a multitude of immunological parameters including COX-2/PGE2 and IL-10. NOD2 stimulation enhanced active recruitment of CSL/RBP-Jk on the COX-2 promoter in vivo. Intriguingly, nitric oxide assumes critical importance in NOD2-mediated activation of Notch1 signaling as iNOS?/? macrophages exhibited compromised ability to execute NOD2-triggered Notch1 signaling responses. Correlative evidence demonstrates that this mechanism operates in vivo in brain and splenocytes derived from wild type, but not from iNOS?/? mice. Importantly, NOD2-driven activation of the Notch1-PI3K signaling axis contributes to its capacity to impart survival of macrophages against TNF-α or IFN-γ-mediated apoptosis and resolution of inflammation. Current investigation identifies Notch1-PI3K as signaling cohorts involved in the NOD2-triggered expression of a battery of genes associated with anti-inflammatory functions. These findings serve as a paradigm to understand the pathogenesis of NOD2-associated inflammatory diseases and clearly pave a way toward development of novel therapeutics.
机译:细胞内病原体传感器NOD2涉及在各种炎症疾病发展过程中的广泛抗炎反应的调节;然而,仍然不当理解潜在的分子细节。在这项研究中,我们证明了NOD2程序巨噬细胞触发NOTCH1信令。信号传导扰动或遗传方法建议通过在NOD2-触发的表达的NODCH1-PI3K之间的串扰的跨谈,包括COX-2 / PGE2和IL-10。 NOD2刺激在体内COX-2启动子上增强了CSL / RBP-JK的活性募集。有趣的是,一氧化氮在Nod2介导的Notch1信号传导中致力于Inos?/?巨噬细胞表现出损害的执行Nod2触发的Notch1信令响应的能力。相关证据表明,这种机制在脑和脾细胞中衍生自野生类型的体内,但不是来自伊克斯?/?老鼠。重要的是,NOD2驱动的NOTCH1-PI3K信号轴的激活有助于赋予巨噬细胞存活的能力免受TNF-α或IFN-γ介导的凋亡和分辨率的炎症。电流调查将Notch1-PI3K识别为参与与抗炎功能相关的基因电池的Nod2-触发表达的信号群。这些发现作为划分,以了解Nod2相关的炎症疾病的发病机制,并显然铺平了新的治疗方法的发展。

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