首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >PNAS Plus: IKKα inactivation promotes Kras-initiated lung adenocarcinoma development through disrupting major redox regulatory pathways
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PNAS Plus: IKKα inactivation promotes Kras-initiated lung adenocarcinoma development through disrupting major redox regulatory pathways

机译:PNAS Plus:IKKα失活通过破坏主要的氧化还原调节途径促进Kras引发的肺腺癌的发展

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摘要

Lung adenocarcinoma (ADC) and squamous cell carcinoma (SCC) are two distinct and predominant types of human lung cancer. IκB kinase α (IKKα) has been shown to suppress lung SCC development, but its role in ADC is unknown. We found inactivating mutations and homologous or hemizygous deletions in the CHUK locus, which encodes IKKα, in human lung ADCs. The CHUK deletions significantly reduced the survival time of patients with lung ADCs harboring KRAS mutations. In mice, lung-specific Ikkα ablation (IkkαΔLu) induces spontaneous ADCs and promotes KrasG12D-initiated ADC development, accompanied by increased cell proliferation, decreased cell senescence, and reactive oxygen species (ROS) accumulation. IKKα deletion up-regulates NOX2 and down-regulates NRF2, leading to ROS accumulation and blockade of cell senescence induction, which together accelerate ADC development. Pharmacologic inhibition of NADPH oxidase or ROS impairs KrasG12D-mediated ADC development in IkkαΔLu mice. Therefore, IKKα modulates lung ADC development by controlling redox regulatory pathways. This study demonstrates that IKKα functions as a suppressor of lung ADC in human and mice through a unique mechanism that regulates tumor cell-associated ROS metabolism.
机译:肺腺癌(ADC)和鳞状细胞癌(SCC)是人类肺癌的两种截然不同的主要类型。 IκB激酶α(IKKα)已被证明可抑制肺SCC的发展,但其在ADC中的作用尚不清楚。我们在人肺ADC中发现了在编码IKKα的CHUK基因座中的失活突变和同源或半合子缺失。 CHUK缺失显着减少了具有KRAS突变的肺ADC患者的生存时间。在小鼠中,肺特异性Ikkα消融(IkkαΔLu)诱导自发ADC并促进Kras G12D 引发的ADC发育,伴随细胞增殖增加,细胞衰老减少和反应性增强氧(ROS)积累。 IKKα缺失上调NOX2,下调NRF2,导致ROS积累和细胞衰老诱导受阻,共同促进ADC的发展。 NADPH氧化酶或ROS的药理抑制作用会削弱IkkαΔLu小鼠中Kras G12D 介导的ADC发育。因此,IKKα通过控制氧化还原调节途径来调节肺ADC的发育。这项研究表明,IKKα通过调节肿瘤细胞相关ROS代谢的独特机制,在人和小鼠中起肺ADC的抑制作用。

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