Department of Chemistry & Biochemistry, University of California, San Diego, La Jolla, California, USA; Structural Biochemistry Laboratory, Department of Chemistry & Biochemistry, San Diego State University, San Diego, California, USA.
Structural Biochemistry Laboratory, Department of Chemistry & Biochemistry, San Diego State University, San Diego, California, USA.
J Biol Chem. 2022 May;298(5):101864. doi: 10.1016/j.jbc.2022.101864. Epub 2022 Mar 24.
Canonical NF-κB signaling through the inhibitor of κB kinase (IKK) complex requires induction of IKK2/IKKβ subunit catalytic activity via specific phosphorylation within its activation loop. This process is known to be dependent upon the accessory ubiquitin (Ub)-binding subunit NF-κB essential modulator (NEMO)/IKKγ as well as poly-Ub chains. However, the mechanism through which poly-Ub binding serves to promote IKK catalytic activity is unclear. Here, we show that binding of NEMO/IKKγ to linear poly-Ub promotes a second interaction between NEMO/IKKγ and IKK2/IKKβ, distinct from the well-characterized interaction of the NEMO/IKKγ N terminus to the "NEMO-binding domain" at the C terminus of IKK2/IKKβ. We mapped the location of this second interaction to a stretch of roughly six amino acids immediately N-terminal to the zinc finger domain in human NEMO/IKKγ. We also showed that amino acid residues within this region of NEMO/IKKγ are necessary for binding to IKK2/IKKβ through this secondary interaction in vitro and for full activation of IKK2/IKKβ in cultured cells. Furthermore, we identified a docking site for this segment of NEMO/IKKγ on IKK2/IKKβ within its scaffold-dimerization domain proximal to the kinase domain-Ub-like domain. Finally, we showed that a peptide derived from this region of NEMO/IKKγ is capable of interfering specifically with canonical NF-κB signaling in transfected cells. These in vitro biochemical and cell culture-based experiments suggest that, as a consequence of its association with linear poly-Ub, NEMO/IKKγ plays a direct role in priming IKK2/IKKβ for phosphorylation and that this process can be inhibited to specifically disrupt canonical NF-κB signaling.
规范的 NF-κB 信号转导需要通过 IKK 复合物中的 IKK2/IKKβ 亚基催化活性的诱导来实现,这是通过其激活环中的特定磷酸化来完成的。这个过程已知依赖于辅助泛素(Ub)结合亚基 NF-κB 必需调节剂(NEMO)/IKKγ以及多聚 Ub 链。然而,多聚 Ub 结合促进 IKK 催化活性的机制尚不清楚。在这里,我们表明 NEMO/IKKγ与线性多聚 Ub 的结合促进了 NEMO/IKKγ和 IKK2/IKKβ之间的第二个相互作用,与 NEMO/IKKγ N 端与 IKK2/IKKβ C 端的“NEMO 结合结构域”之间的特征相互作用不同。我们将这个第二个相互作用的位置映射到 NEMO/IKKγ的锌指结构域的 N 端附近大约六个氨基酸的位置。我们还表明,NEMO/IKKγ 中该区域的氨基酸残基对于通过该二级相互作用在体外与 IKK2/IKKβ结合以及在培养细胞中充分激活 IKK2/IKKβ是必需的。此外,我们在 IKK2/IKKβ 的支架二聚化结构域中,在靠近激酶结构域-Ub 样结构域的位置,鉴定了该 NEMO/IKKγ 片段的一个对接位点。最后,我们表明,NEMO/IKKγ 该区域的一个肽能够特异性干扰转染细胞中的规范 NF-κB 信号。这些体外生化和细胞培养实验表明,由于与线性多聚 Ub 的结合,NEMO/IKKγ 在 IKK2/IKKβ 的磷酸化引发中直接发挥作用,并且可以通过这种方式来特异性阻断规范 NF-κB 信号。