Rashmi J Rao, Jimin Yang, Siyi Jiang, Wadih El-Khoury, Neha Hafeez, Satoshi Okawa, Yi Yin Tai, Ying Tang, Yassmin Al Aaraj, John C Sembrat, Stephen Y Chan
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Inflammatory stimulus of PAECs with IL-1β upregulates <i>IFI16</i> expression, inducing proinflammatory cytokine upregulation and cellular apoptosis. <i>IFI16</i> mRNA stability is regulated by post-transcriptional m6A modification, mediated by Wilms' tumor 1-associated protein (WTAP), a structural stabilizer of the methyltransferase complex, via regulation of m6A methylation of <i>IFI16</i>. In addition, m6A levels are increased in the peripheral blood mononuclear cells of patients with PAH compared with control, indicating that quantifying this epigenetic change in patients may hold potential as a biomarker for disease identification. In summary, our study demonstrates that IFI16 mediates inflammatory endothelial pathophenotypes seen in pulmonary arterial hypertension.<b>NEW & NOTEWORTHY</b> Our work establishes a paradigm of the regulatory role of the Wilms' tumor 1-associated protein (WTAP)-interferon inducible protein 16 (IFI16) axis that uses m6A RNA methylation to drive endothelial inflammatory activation in pulmonary hypertension. Consequently, because m6A epigenetic modifications are both reversible and dynamic, this axis is an attractive diagnostic and therapeutic target in pulmonary hypertension and more broadly in endothelial immune activation.</p>","PeriodicalId":7593,"journal":{"name":"American journal of physiology. 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引用次数: 0
摘要
肺动脉高压(PAH)是一种由内皮细胞炎症和功能障碍驱动的进行性疾病,导致肺血管的病理性重塑。先天免疫激活与多环芳烃的发展有关;然而,PAH诱导炎症的调控、传播和可逆性尚不清楚。在这里,我们利用人肺动脉内皮细胞(PAECs)证明了干扰素诱导蛋白16 (IFI16),一种先天免疫传感器,在肺动脉高压中作为内皮炎症调节剂的作用。IL-1b对paec的炎症刺激上调IFI16的表达,诱导促炎细胞因子上调和细胞凋亡。IFI16 mRNA的稳定性受到转录后m6A修饰的调节,m6A修饰由Wilms' tumor 1-associated protein (WTAP)介导,WTAP是甲基转移酶复合物的结构稳定剂,通过调节IFI16的m6A甲基化。此外,与对照组相比,PAH患者外周血单个核细胞中的m6A水平升高,表明量化患者的这种表观遗传变化可能具有作为疾病识别的生物标志物的潜力。总之,我们的研究表明IFI16介导肺动脉高压中可见的炎性内皮病理表型。
Post-transcriptional regulation of IFI16 promotes inflammatory endothelial pathophenotypes observed in pulmonary arterial hypertension.
Pulmonary arterial hypertension (PAH) is a progressive disease driven by endothelial cell inflammation and dysfunction, resulting in the pathological remodeling of the pulmonary vasculature. Innate immune activation has been linked to PAH development; however, the regulation, propagation, and reversibility of the induction of inflammation in PAH are poorly understood. Here, we demonstrate the role of interferon-inducible protein 16 (IFI16), an innate immune sensor, as a modulator of endothelial inflammation in pulmonary hypertension, using human pulmonary artery endothelial cells (PAECs). Inflammatory stimulus of PAECs with IL-1β upregulates IFI16 expression, inducing proinflammatory cytokine upregulation and cellular apoptosis. IFI16 mRNA stability is regulated by post-transcriptional m6A modification, mediated by Wilms' tumor 1-associated protein (WTAP), a structural stabilizer of the methyltransferase complex, via regulation of m6A methylation of IFI16. In addition, m6A levels are increased in the peripheral blood mononuclear cells of patients with PAH compared with control, indicating that quantifying this epigenetic change in patients may hold potential as a biomarker for disease identification. In summary, our study demonstrates that IFI16 mediates inflammatory endothelial pathophenotypes seen in pulmonary arterial hypertension.NEW & NOTEWORTHY Our work establishes a paradigm of the regulatory role of the Wilms' tumor 1-associated protein (WTAP)-interferon inducible protein 16 (IFI16) axis that uses m6A RNA methylation to drive endothelial inflammatory activation in pulmonary hypertension. Consequently, because m6A epigenetic modifications are both reversible and dynamic, this axis is an attractive diagnostic and therapeutic target in pulmonary hypertension and more broadly in endothelial immune activation.
期刊介绍:
The American Journal of Physiology-Lung Cellular and Molecular Physiology publishes original research covering the broad scope of molecular, cellular, and integrative aspects of normal and abnormal function of cells and components of the respiratory system. Areas of interest include conducting airways, pulmonary circulation, lung endothelial and epithelial cells, the pleura, neuroendocrine and immunologic cells in the lung, neural cells involved in control of breathing, and cells of the diaphragm and thoracic muscles. The processes to be covered in the Journal include gas-exchange, metabolic control at the cellular level, intracellular signaling, gene expression, genomics, macromolecules and their turnover, cell-cell and cell-matrix interactions, cell motility, secretory mechanisms, membrane function, surfactant, matrix components, mucus and lining materials, lung defenses, macrophage function, transport of salt, water and protein, development and differentiation of the respiratory system, and response to the environment.