I-kappa B Kinase

I - κ B 激酶
  • 文章类型: Journal Article
    背景:RAS基因的致癌突变与不受控制的细胞生长有关,有助于肿瘤发生的标志特征。虽然不同的治疗策略已经努力应用于治疗RAS突变癌症,成功靶向RAS基因仍然是癌症治疗领域的持续挑战.在我们的研究中,我们发现了一个有希望的途径来应对这一挑战。
    方法:在本研究中,我们测试了几种携带致癌NRAS的细胞系的活力,KRAS,和用IkappaBalpha(IκBα)抑制剂BAY11-7082治疗后的HRAS突变。我们进行了基于细胞培养的活力测定和基于体内皮下异种移植物的测定,以证实BAY11-7082的生长抑制作用。我们还进行了大型RNA测序分析,以确定在致癌NRAS的背景下差异调节的基因和途径。KRAS,和用BAY11-7082治疗后的HRAS突变。
    结果:我们证明了致癌NRAS,KRAS,HRAS激活IκBα激酶的表达。BAY11-7082,IκBα激酶抑制剂,减弱NRAS的生长,KRAS,细胞培养和小鼠模型中的HRAS突变癌细胞。机械上,BAY11-7082抑制剂处理导致所有RAS突变细胞系中PI3K-AKT信号传导途径的抑制和细胞凋亡的激活。此外,我们发现BAY11-7082治疗会导致不同生物学途径的下调,这取决于RAS蛋白的类型,这也可能有助于肿瘤生长抑制。
    结论:我们的研究确定BAY11-7082是治疗RAS癌基因的有效抑制剂(HRAS,KRAS,和NRAS)突变的癌细胞。这一发现为有效治疗RAS突变癌症提供了新的治疗机会。
    BACKGROUND: Oncogenic mutations in the RAS gene are associated with uncontrolled cell growth, a hallmark feature contributing to tumorigenesis. While diverse therapeutic strategies have been diligently applied to treat RAS-mutant cancers, successful targeting of the RAS gene remains a persistent challenge in the field of cancer therapy. In our study, we discover a promising avenue for addressing this challenge.
    METHODS: In this study, we tested the viability of several cell lines carrying oncogenic NRAS, KRAS, and HRAS mutations upon treatment with IkappaBalpha (IκBα) inhibitor BAY 11-7082. We performed both cell culture-based viability assay and in vivo subcutaneous xenograft-based assay to confirm the growth inhibitory effect of BAY 11-7082. We also performed large RNA sequencing analysis to identify differentially regulated genes and pathways in the context of oncogenic NRAS, KRAS, and HRAS mutations upon treatment with BAY 11-7082.
    RESULTS: We demonstrate that oncogenic NRAS, KRAS, and HRAS activate the expression of IκBα kinase. BAY 11-7082, an inhibitor of IκBα kinase, attenuates the growth of NRAS, KRAS, and HRAS mutant cancer cells in cell culture and in mouse model. Mechanistically, BAY 11-7082 inhibitor treatment leads to suppression of the PI3K-AKT signaling pathway and activation of apoptosis in all RAS mutant cell lines. Additionally, we find that BAY 11-7082 treatment results in the downregulation of different biological pathways depending upon the type of RAS protein that may also contribute to tumor growth inhibition.
    CONCLUSIONS: Our study identifies BAY 11-7082 to be an efficacious inhibitor for treating RAS oncogene (HRAS, KRAS, and NRAS) mutant cancer cells. This finding provides new therapeutic opportunity for effective treatment of RAS-mutant cancers.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    慢性肾脏病(CKD)是一个重要的全球健康问题,导致高死亡率。生物活性物质costunolide(CTD)已显示出几种药理作用,并有望作为CKD治疗。本研究旨在探讨CTD对CKD的影响及其作用机制。
    建立单侧输尿管梗阻(UUO)方法和肾纤维化小鼠模型。将不同浓度的CTD注射到UUO小鼠模型中以研究CTD对小鼠肾纤维化的治疗作用。然后,肾形态学,病理变化,和纤维化相关基因的表达,分析了炎症和铁性凋亡。RNA测序用于鉴定参与肾损伤的主要生物学过程和途径。最后,研究了IKKβ的过表达和抑制,以检查它们在体外和体内模型中对纤维化和炎症的各自影响。
    发现CTD治疗可显著缓解纤维化,UUO诱导的肾纤维化小鼠模型中的炎症和铁凋亡。RNA测序结果表明,IKKβ是肾损伤的关键调控因子,在体外和体内肾纤维化模型中IKKβ的表达增加。功能上,下调IKKβ表达抑制铁凋亡,炎性细胞因子的产生和胶原沉积。相反,IKKβ过度表达加剧进行性肾纤维化。机械上,CTD通过抑制IKKβ的表达和减弱IKKβ/NF-κB通路减轻肾脏纤维化和炎症反应。
    这项研究表明CTD可以减轻肾脏纤维化,通过调节IKKβ/NF-κB通路在CKD中的铁凋亡和炎症,这表明靶向IKKβ治疗CKD具有巨大的潜力。
    UNASSIGNED: Chronic kidney disease (CKD) is a significant worldwide health concern that leads to high mortality rates. The bioactive substance costunolide (CTD) has demonstrated several pharmacological effects and holds promise as a CKD treatment. This study aims to investigate the impact of CTD on CKD and delve into its mechanisms of action.
    UNASSIGNED: Unilateral ureteral obstruction (UUO) methods and renal fibrosis mice models were created. Various concentrations of CTD were injected into UUO mice models to investigate the therapeutic effects of CTD on renal fibrosis of mice. Then, renal morphology, pathological changes, and the expression of genes related to fibrosis, inflammation and ferroptosis were analysed. RNA sequencing was utilized to identify the main biological processes and pathways involved in renal injury. Finally, both overexpression and inhibition of IKKβ were studied to examine their respective effects on fibrosis and inflammation in both in vitro and in vivo models.
    UNASSIGNED: CTD treatment was found to significantly alleviate fibrosis, inflammation and ferroptosis in UUO-induced renal fibrosis mice models. The results of RNA sequencing suggested that the IKKβ acted as key regulatory factor in renal injury and the expression of IKKβ was increased in vitro and in vivo renal fibrosis model. Functionally, down-regulated IKKβ expression inhibits ferroptosis, inflammatory cytokine production and collagen deposition. Conversely, IKKβ overexpression exacerbates progressive renal fibrosis. Mechanistically, CTD alleviated renal fibrosis and inflammation by inhibiting the expression of IKKβ and attenuating IKKβ/NF-κB pathway.
    UNASSIGNED: This study demonstrates that CTD could mitigate renal fibrosis, ferroptosis and inflammation in CKD by modulating the IKKβ/NF-κB pathway, which indicates targeting IKKβ has an enormous potential for treating CKD.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    随着人口老龄化和高脂饮食(HFD)消费的增加,阿尔茨海默病(AD)的发病率急剧上升。天然抗氧化剂在预防AD方面显示出有希望的潜力,氧化应激和神经炎症是AD发病的两个标志。这里,我们表明奎尼酸(QA),一种来自小米的多酚,显著降低HFD诱导的脑氧化应激和神经炎症以及Aβ和p-Tau水平。肠道微生物群的检查表明QA处理后HFD小鼠的肠道微生物群的组成改善。代谢组学分析表明,QA导致肠道微生物色氨酸代谢产物吲哚-3-乙酸(IAA)和犬尿烯酸(KYNA)显着增加。此外,IAA和KYNA与促炎因子和AD指标呈负相关。对HFD小鼠的进一步实验证明,IAA和KYNA可以重现QA的作用,从而抑制脑氧化应激和炎症,并降低Aβ和p-Tau的水平。IAA给药后大脑的转录组学分析显示IAA对DR3/IKK/NF-κB信号通路的抑制作用。总之,这项研究表明,QA可以通过肠道微生物色氨酸代谢产物调节炎性DR3/IKK/NF-κB信号通路来对抗HFD诱导的脑氧化应激和神经炎症。
    With the increasing of aging population and the consumption of high-fat diets (HFD), the incidence of Alzheimer\'s disease (AD) has skyrocketed. Natural antioxidants show promising potential in the prevention of AD, as oxidative stress and neuroinflammation are two hallmarks of AD pathogenesis. Here, we showed that quinic acid (QA), a polyphenol derived from millet, significantly decreased HFD-induced brain oxidative stress and neuroinflammation and the levels of Aβ and p-Tau. Examination of gut microbiota suggested the improvement of the composition of gut microbiota in HFD mice after QA treatment. Metabolomic analysis showed significant increase of gut microbial tryptophan metabolites indole-3-acetic acid (IAA) and kynurenic acid (KYNA) by QA. In addition, IAA and KYNA showed negative correlation with pro-inflammatory factors and AD indicators. Further experiments on HFD mice proved that IAA and KYNA could reproduce the effects of QA that suppress brain oxidative stress and inflammation and decrease the levels of of Aβ and p-Tau. Transcriptomics analysis of brain after IAA administration revealed the inhibition of DR3/IKK/NF-κB signaling pathway by IAA. In conclusion, this study demonstrated that QA could counteract HFD-induced brain oxidative stress and neuroinflammation by regulating inflammatory DR3/IKK/NF-κB signaling pathway via gut microbial tryptophan metabolites.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    线粒体功能障碍可引发多种炎症途径,特别是当凋亡caspases被抑制时。这种炎症程序受到透化线粒体的自噬处置的负调控。最近的数据表明,线粒体蛋白的泛素化对于线粒体透化下游的NEMO驱动的NF-kB活化至关重要。
    Mitochondrial dysfunction can elicit multiple inflammatory pathways, especially when apoptotic caspases are inhibited. Such an inflammatory program is negatively regulated by the autophagic disposal of permeabilized mitochondria. Recent data demonstrate that the ubiquitination of mitochondrial proteins is essential for NEMO-driven NF-kB activation downstream of mitochondrial permeabilization.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    而IkB激酶-ε(IKKε)在病毒刺激后诱导免疫调节基因,其通过炎性细胞因子的上调仍未被探索。由于气道上皮细胞对空气传播的损伤有反应并增强炎症,IKKε表达在肺上皮细胞系(A549,BEAS-2B)和以浸没或分化的气液界面(ALI)培养物生长的原代人支气管上皮细胞(pHBECs)中表征。IKKε表达被促炎细胞因子上调,IL-1β和TNFα。因此,A549细胞中的机制询问用于证明细胞因子诱导的IKKε的NF-κB依赖性。此外,A549和BEAS-2B细胞中的染色质免疫沉淀显示NF-κB亚基的稳健募集,p65,到IKKε基因座(IKBKE)内的一个5'和两个内含子区域。此外,IL-1β和TNFα诱导强RNA聚合酶2募集至5'区,第一个内含子,和转录起始位点。将p65结合区稳定转染到A549细胞中,揭示了IL-1β和TNFα可诱导的报告活性,这需要NF-κB,但未被糖皮质激素抑制。虽然在5'和下游内含子区域中鉴定出关键的NF-κB基序,第一个内含子区不含功能性NF-κB基序。因此,IL-1β和TNFα诱导的IKKε表达涉及三个NF-κB结合区,含有多功能NF-κB基序,以及p65通过非经典NF-κB结合基序结合的潜在其他机制。通过增强IKKε表达,IL-1β可能引发,或者增强,对替代刺激的反应,如通过佛波醇12-肉豆蔻酸酯13-乙酸酯诱导的IKKε磷酸化建模。然而,由于IKKε表达仅被糖皮质激素部分抑制,IKKε依赖性反应可能导致糖皮质激素抗性疾病。
    While IκB-kinase-ε (IKKε) induces immunomodulatory genes following viral stimuli, its up-regulation by inflammatory cytokines remains under-explored. Since airway epithelial cells respond to airborne insults and potentiate inflammation, IKKε expression was characterized in pulmonary epithelial cell lines (A549, BEAS-2B) and primary human bronchial epithelial cells grown as submersion or differentiated air-liquid interface cultures. IKKε expression was up-regulated by the pro-inflammatory cytokines, interleukin-1β (IL-1β) and tumour necrosis factor-α (TNFα). Thus, mechanistic interrogations in A549 cells were used to demonstrate the NF-κB dependence of cytokine-induced IKKε. Furthermore, chromatin immunoprecipitation in A549 and BEAS-2B cells revealed robust recruitment of the NF-κB subunit, p65, to one 5\' and two intronic regions within the IKKε locus (IKBKE). In addition, IL-1β and TNFα induced strong RNA polymerase 2 recruitment to the 5\' region, the first intron, and the transcription start site. Stable transfection of the p65-binding regions into A549 cells revealed IL-1β- and TNFα-inducible reporter activity that required NF-κB, but was not repressed by glucocorticoid. While critical NF-κB motifs were identified in the 5\' and downstream intronic regions, the first intronic region did not contain functional NF-κB motifs. Thus, IL-1β- and TNFα-induced IKKε expression involves three NF-κB-binding regions, containing multiple functional NF-κB motifs, and potentially other mechanisms of p65 binding through non-classical NF-κB binding motifs. By enhancing IKKε expression, IL-1β may prime, or potentiate, responses to alternative stimuli, as modelled by IKKε phosphorylation induced by phorbol 12-myristate 13-acetate. However, since IKKε expression was only partially repressed by glucocorticoid, IKKε-dependent responses could contribute to glucocorticoid-resistant disease.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

    求助全文

  • 文章类型: Journal Article
    非洲猪瘟(ASF)是一种急性,出血性,由非洲猪瘟病毒(ASFV)引起的猪的高度传染性疾病。我们先前的研究确定ASFVMGF300-2R蛋白作为毒力因子起作用,并发现MGF300-2R通过选择性自噬降解IKKβ。然而,在自噬降解过程中负责IKKβ泛素化的E3泛素连接酶仍然未知。为了解决这个问题,我们首先通过免疫沉淀-质谱法提取了328种与MGF300-2R相互作用的蛋白质。接下来,我们分析并证实了E3泛素连接酶TRIM21和MGF300-2R之间的相互作用,并证明了TRIM21在IKKβ泛素化中的催化作用。最后,我们表明MGF300-2R对IKKβ的降解依赖于TRIM21。总之,我们的结果表明TRIM21是参与MGF300-2R降解IKKβ的E3泛素连接酶,从而增强我们对MGF300-2R功能的理解,并提供对减毒活疫苗的合理设计和针对ASF的抗病毒策略的见解。
    African swine fever (ASF) is an acute, hemorrhagic, highly contagious disease in pigs caused by African swine fever virus (ASFV). Our previous study identified that the ASFV MGF300-2R protein functions as a virulence factor and found that MGF300-2R degrades IKKβ via selective autophagy. However, the E3 ubiquitin ligase responsible for IKKβ ubiquitination during autophagic degradation still remains unknown. In order to solve this problem, we first pulled down 328 proteins interacting with MGF300-2R through immunoprecipitation-mass spectrometry. Next, we analyzed and confirmed the interaction between the E3 ubiquitin ligase TRIM21 and MGF300-2R and demonstrated the catalytic role of TRIM21 in IKKβ ubiquitination. Finally, we indicated that the degradation of IKKβ by MGF300-2R was dependent on TRIM21. In summary, our results indicate TRIM21 is the E3 ubiquitin ligase involved in the degradation of IKKβ by MGF300-2R, thereby augmenting our understanding of the functions of MGF300-2R and offering insights into the rational design of live attenuated vaccines and antiviral strategies against ASF.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    含有pLxIS基序的信号转导蛋白诱导对抗病毒免疫至关重要的干扰素(IFN)应答。除了它们在激活IFN调节因子(IRF)转录因子中确立的作用外,与pLxIS基序相关的其他途径和功能的存在尚不清楚。使用基于合成生物学的平台,我们鉴定了两种含有孤儿pLxIS的蛋白质,它们刺激IFN应答,而与所有已知的模式识别受体途径无关.我们进一步发现了pLxIS信号机制的多样性,其中pLxIS基序表示多基序信令实体的一个分量,它在激活IRF3,TRAF6泛素连接酶,IκB激酶,丝裂原活化蛋白激酶,和代谢活动。最多样化的pLxIS信号机制与人细胞中最高的抗病毒活性相关。调节IFN信号传导的结构域的灵活性可以解释它们在本质上的普遍性。
    Signal transduction proteins containing a pLxIS motif induce interferon (IFN) responses central to antiviral immunity. Apart from their established roles in activating the IFN regulator factor (IRF) transcription factors, the existence of additional pathways and functions associated with the pLxIS motif is unknown. Using a synthetic biology-based platform, we identified two orphan pLxIS-containing proteins that stimulate IFN responses independent of all known pattern-recognition receptor pathways. We further uncovered a diversity of pLxIS signaling mechanisms, where the pLxIS motif represents one component of a multi-motif signaling entity, which has variable functions in activating IRF3, the TRAF6 ubiquitin ligase, IκB kinases, mitogen-activated protein kinases, and metabolic activities. The most diverse pLxIS signaling mechanisms were associated with the highest antiviral activities in human cells. The flexibility of domains that regulate IFN signaling may explain their prevalence in nature.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

    求助全文

  • 文章类型: Journal Article
    GSK-3β,IKK-β,ROCK-1激酶与阿尔茨海默病的病理机制有关,因为它们参与了淀粉样β(Aβ)和tau蛋白的错误折叠和积累,以及炎症过程。在这些激酶中,GSK-3β起着最关键的作用。在这项研究中,我们介绍了化合物62,一种新颖的,非常有效,竞争性GSK-3β抑制剂(IC50=8nM,Ki=2nM),还表现出额外的ROCK-1抑制活性(IC50=2.3μM),并表现出抗炎和神经保护特性。在小胶质细胞BV-2细胞系的脂多糖诱导的炎症模型中,化合物62有效抑制一氧化氮(NO)和促炎细胞因子的产生。此外,它在冈田酸诱导的tau过度磷酸化的神经变性细胞模型中显示出神经保护作用。该化合物还显示出进一步开发的潜力,其特征在于其在小鼠微粒体中的化学和代谢稳定性以及良好的溶解度。
    GSK-3β, IKK-β, and ROCK-1 kinases are implicated in the pathomechanism of Alzheimer\'s disease due to their involvement in the misfolding and accumulation of amyloid β (Aβ) and tau proteins, as well as inflammatory processes. Among these kinases, GSK-3β plays the most crucial role. In this study, we present compound 62, a novel, remarkably potent, competitive GSK-3β inhibitor (IC50 = 8 nM, Ki = 2 nM) that also exhibits additional ROCK-1 inhibitory activity (IC50 = 2.3 µM) and demonstrates anti-inflammatory and neuroprotective properties. Compound 62 effectively suppresses the production of nitric oxide (NO) and pro-inflammatory cytokines in the lipopolysaccharide-induced model of inflammation in the microglial BV-2 cell line. Furthermore, it shows neuroprotective effects in an okadaic-acid-induced tau hyperphosphorylation cell model of neurodegeneration. The compound also demonstrates the potential for further development, characterized by its chemical and metabolic stability in mouse microsomes and fair solubility.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    B细胞急性淋巴细胞白血病(B-ALL)是一种恶性血液病,对儿童和青少年特别有害,复发或无反应病例对癌症相关死亡有显著影响。IKBKE,与先天免疫有关,肿瘤促进,和抗药性,在B-ALL的背景下仍然知之甚少。因此,本研究旨在探讨IKBKE抑制剂MCCK1对B-ALL细胞的影响。这项研究包括不同的实验,包括临床样本,体外和体内研究。定量实时荧光PCR和蛋白质印迹显示B-ALL患者IKBKEmRNA和蛋白质表达升高。随后用B-ALL细胞系进行的体外实验表明,MCCK1处理导致细胞活力和存活率降低,流式细胞术显示细胞周期停滞。使用B-ALL小鼠肿瘤模型的体内实验证实了MCCK1在阻止肿瘤增殖中的功效。这些发现共同表明IKBKE,发现在B-ALL患者中升高,可能是一个有希望的药物靶点,MCCK1显示出在体外和体内诱导B-ALL细胞凋亡的潜力。
    B-cell acute lymphoblastic leukemia (B-ALL) is a malignant blood disorder, particularly detrimental to children and adolescents, with recurrent or unresponsive cases contributing significantly to cancer-associated fatalities. IKBKE, associated with innate immunity, tumor promotion, and drug resistance, remains poorly understood in the context of B-ALL. Thus, this research aimed to explore the impact of the IKBKE inhibitor MCCK1 on B-ALL cells. The study encompassed diverse experiments, including clinical samples, in vitro and in vivo investigations. Quantitative real-time fluorescence PCR and protein blotting revealed heightened IKBKE mRNA and protein expression in B-ALL patients. Subsequent in vitro experiments with B-ALL cell lines demonstrated that MCCK1 treatment resulted in reduced cell viability and survival rates, with flow cytometry indicating cell cycle arrest. In vivo experiments using B-ALL mouse tumor models substantiated MCCK1\'s efficacy in impeding tumor proliferation. These findings collectively suggest that IKBKE, found to be elevated in B-ALL patients, may serve as a promising drug target, with MCCK1 demonstrating potential for inducing apoptosis in B-ALL cells both in vitro and in vivo.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

    求助全文

  • 文章类型: Journal Article
    免疫细胞在环境巡逻期间经历大的细胞形状变化,因为它们在迁移通过组织时遇到的物理限制。这些细胞可以使用专用的形状感测路径来适应这种变形事件。然而,形状感知如何影响免疫细胞功能尚不清楚。这里,我们确定了一种形状传感机制,该机制可增加趋化因子受体CCR7的表达,并在稳态下引导树突状细胞从外周组织迁移至淋巴结.这种机制依赖于脂质代谢酶cPLA2,需要核包膜张紧,并通过ARP2/3肌动蛋白成核复合物进行微调。我们还表明,该形状传感轴通过激活已知控制其致耐受性潜力的IKKβ-NF-κB依赖性途径来重新编程树突状细胞转录。这些结果表明,免疫细胞经历的细胞形状变化可以定义其迁移行为和免疫调节特性,并揭示组织的物理性质对适应性免疫的贡献。
    Immune cells experience large cell shape changes during environmental patrolling because of the physical constraints that they encounter while migrating through tissues. These cells can adapt to such deformation events using dedicated shape-sensing pathways. However, how shape sensing affects immune cell function is mostly unknown. Here, we identify a shape-sensing mechanism that increases the expression of the chemokine receptor CCR7 and guides dendritic cell migration from peripheral tissues to lymph nodes at steady state. This mechanism relies on the lipid metabolism enzyme cPLA2, requires nuclear envelope tensioning and is finely tuned by the ARP2/3 actin nucleation complex. We also show that this shape-sensing axis reprograms dendritic cell transcription by activating an IKKβ-NF-κB-dependent pathway known to control their tolerogenic potential. These results indicate that cell shape changes experienced by immune cells can define their migratory behavior and immunoregulatory properties and reveal a contribution of the physical properties of tissues to adaptive immunity.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

公众号