Sokolova Olga, Maubach Gunter, Naumann Michael
Institute of Experimental Internal Medicine, Otto von Guericke University, 39120 Magdeburg, Germany.
Institute of Experimental Internal Medicine, Otto von Guericke University, 39120 Magdeburg, Germany.
Biochim Biophys Acta. 2014 Apr;1843(4):715-24. doi: 10.1016/j.bbamcr.2014.01.006. Epub 2014 Jan 11.
Helicobacter pylori colonises the gastric epithelial cells of half of the world's population and represents a risk factor for gastric adenocarcinoma. In gastric epithelial cells H. pylori induces the immediate early response transcription factor nuclear factor of kappa light polypeptide gene enhancer in B-cells (NF-κB) and the innate immune response. We show that H. pylori induces in a type IV secretion system-dependent (T4SS) and cytotoxin associated gene A protein (CagA)-independent manner a transient activation of the inhibitor of NF-κB (IκBα) kinase (IKK)-complex. IKKα and IKKβ expression stabilises the regulatory IKK complex subunit NF-κB essential modulator (NEMO). We provide evidence for an intimate mutual control of the IKK complex by mitogen-activated protein kinase kinase kinase 3 (MEKK3) and transforming growth factor β activated kinase 1 (TAK1). TAK1 interacts transiently with the E3 ubiquitin ligase tumor necrosis factor receptor-associated factor 6 (TRAF6). Protein modifications in the TAK1 molecule, e.g. TAK1 autophosphorylation and K63-linked ubiquitinylation, administer NF-κB signalling including transient recruitment of the IKK-complex. Overall, our data uncover H. pylori-induced interactions and protein modifications of the IKK complex, and its upstream regulatory factors involved in NF-κB activation.
幽门螺杆菌定植于全球一半人口的胃上皮细胞中,是胃腺癌的一个危险因素。在胃上皮细胞中,幽门螺杆菌诱导B细胞中κ轻链多肽基因增强子的核因子(NF-κB)这一立即早期反应转录因子以及先天性免疫反应。我们发现,幽门螺杆菌以IV型分泌系统依赖性(T4SS)且不依赖细胞毒素相关基因A蛋白(CagA)的方式诱导核因子κB抑制蛋白(IκBα)激酶(IKK)复合物的瞬时激活。IKKα和IKKβ的表达使调节性IKK复合物亚基NF-κB必需调节剂(NEMO)稳定。我们提供了有丝分裂原活化蛋白激酶激酶激酶3(MEKK3)和转化生长因子β激活激酶1(TAK1)对IKK复合物进行密切相互调控的证据。TAK1与E3泛素连接酶肿瘤坏死因子受体相关因子6(TRAF6)瞬时相互作用。TAK1分子中的蛋白质修饰,如TAK1自身磷酸化和K63连接的泛素化,调控包括IKK复合物瞬时募集在内的NF-κB信号传导。总体而言,我们的数据揭示了幽门螺杆菌诱导的IKK复合物相互作用和蛋白质修饰,以及其参与NF-κB激活的上游调节因子。