Circadian Control of Pulmonary Endothelial Signaling Occurs via the NADPH Oxidase 2-NLRP3 Pathway.

IF 2.1 3区 生物学 Q2 BIOLOGY
Shaon Sengupta, Yool Lee, Jian Qin Tao, Isha Akolia, Natalia Louneva, Kaitlyn Forrest, Oindrila Paul, Thomas G Brooks, Gregory R Grant, Amita Sehgal, Shampa Chatterjee
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Abstract

Circadian rhythms are endogenous oscillations that occur with a 24-h periodicity and support organismal homeostasis. While the role of the circadian clock in systemic vasculature is well known, its role in pulmonary vasculature, specifically in the pulmonary endothelium, has remained unexplored. We hypothesized that the circadian clock directly regulates pulmonary endothelium to control lung inflammation. Using pulmonary artery segments and endothelial cells isolated from lungs of mPer2luciferase transgenic mice, we monitored circadian rhythms and observed that lipopolysaccharide (LPS) treatment disrupted rhythmicity. This disruption was mediated by reactive oxygen species (ROS) generated via NADPH oxidase 2 (NOX2). Remarkably, the pharmacologic inhibition of NOX2 before LPS exposure restored circadian rhythmicity in the pulmonary endothelium. In wild-type (WT) mice, LPS activated a NOX2-NLRP3 signaling axis that drove inflammation as evidenced by increased polymorphonuclear neutrophil (PMN) accumulation and intercellular adhesion molecule-1 (ICAM-1) expression on the pulmonary endothelium. In contrast, disruption of the clock using two different clock mutants (Bmal1-/- and Cry1/2-/-) resulted in a sustained baseline elevation of PMN and ICAM-1, which changed minimally with LPS. This effect was attributed to aberrant activation of the NLRP3 inflammasome at baseline in the clock mutants, as supported by lung transcriptomic data and reversal of the phenotype with an NLRP3 inhibitor. Importantly, these findings also reveal an intriguing bidirectional relationship: while the circadian clock modulates inflammatory responses, inflammatory stimuli in turn alter circadian rhythmicity via the NOX2 pathway. Together, our results identify a novel mechanism by which circadian control of pulmonary endothelial inflammation may be leveraged to mitigate the consequences of clock disruption in lung disease.

NADPH氧化酶2-NLRP3通路对肺内皮信号的昼夜调控
昼夜节律是一种以24小时为周期的内源性振荡,支持生物体内平衡。虽然生物钟在全身血管系统中的作用是众所周知的,但它在肺血管系统中的作用,特别是在肺内皮中的作用仍未被探索。我们假设昼夜节律钟直接调节肺内皮细胞以控制肺部炎症。利用从mPer2luciferase转基因小鼠肺中分离的肺动脉段和内皮细胞,我们监测了昼夜节律,并观察到脂多糖(LPS)处理会破坏节律性。这种破坏是由NADPH氧化酶2 (NOX2)产生的活性氧(ROS)介导的。值得注意的是,在LPS暴露前,NOX2的药理学抑制恢复了肺内皮的昼夜节律。在野生型(WT)小鼠中,LPS激活了NOX2-NLRP3信号轴,该信号轴驱动炎症,其证据是肺内皮上多形核中性粒细胞(PMN)积累和细胞间粘附分子-1 (ICAM-1)表达增加。相比之下,使用两种不同的时钟突变体(Bmal1-/-和Cry1/2-/-)破坏时钟导致PMN和ICAM-1的基线持续升高,而LPS对其变化最小。这种效应归因于时钟突变体在基线时NLRP3炎性体的异常激活,正如肺转录组学数据和NLRP3抑制剂的表型逆转所支持的那样。重要的是,这些发现还揭示了一个有趣的双向关系:当生物钟调节炎症反应时,炎症刺激反过来通过NOX2途径改变昼夜节律。总之,我们的研究结果确定了一种新的机制,通过这种机制,肺内皮炎症的昼夜节律控制可以减轻肺部疾病中时钟中断的后果。
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来源期刊
CiteScore
6.10
自引率
8.60%
发文量
48
审稿时长
>12 weeks
期刊介绍: Journal of Biological Rhythms is the official journal of the Society for Research on Biological Rhythms and offers peer-reviewed original research in all aspects of biological rhythms, using genetic, biochemical, physiological, behavioral, epidemiological & modeling approaches, as well as clinical trials. Emphasis is on circadian and seasonal rhythms, but timely reviews and research on other periodicities are also considered. The journal is a member of the Committee on Publication Ethics (COPE).
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