Department of Internal Medicine, University of Texas Southwestern Medical Center, Dallas, Texas, USA.
J Clin Invest. 2013 May;123(5):2244-56. doi: 10.1172/JCI66466. Epub 2013 Apr 8.
NF-κB is a master regulator of inflammation and has been implicated in the pathogenesis of immune disorders and cancer. Its regulation involves a variety of steps, including the controlled degradation of inhibitory IκB proteins. In addition, the inactivation of DNA-bound NF-κB is essential for its regulation. This step requires a factor known as copper metabolism Murr1 domain-containing 1 (COMMD1), the prototype member of a conserved gene family. While COMMD proteins have been linked to the ubiquitination pathway, little else is known about other family members. Here we demonstrate that all COMMD proteins bind to CCDC22, a factor recently implicated in X-linked intellectual disability (XLID). We showed that an XLID-associated CCDC22 mutation decreased CCDC22 protein expression and impaired its binding to COMMD proteins. Moreover, some affected individuals displayed ectodermal dysplasia, a congenital condition that can result from developmental NF-κB blockade. Indeed, patient-derived cells demonstrated impaired NF-κB activation due to decreased IκB ubiquitination and degradation. In addition, we found that COMMD8 acted in conjunction with CCDC22 to direct the degradation of IκB proteins. Taken together, our results indicate that CCDC22 participates in NF-κB activation and that its deficiency leads to decreased IκB turnover in humans, highlighting an important regulatory component of this pathway.
NF-κB 是炎症的主要调节因子,与免疫紊乱和癌症的发病机制有关。其调节涉及多种步骤,包括抑制性 IκB 蛋白的控制降解。此外,DNA 结合的 NF-κB 的失活对于其调节是必需的。这一步骤需要一种称为铜代谢 Murr1 结构域包含蛋白 1(COMMD1)的因子,它是保守基因家族的原型成员。虽然 COMMD 蛋白与泛素化途径有关,但对其他家族成员知之甚少。在这里,我们证明所有 COMMD 蛋白都与 CCDC22 结合,CCDC22 是最近与 X 连锁智力障碍(XLID)相关的一个因子。我们表明,与 XLID 相关的 CCDC22 突变降低了 CCDC22 蛋白表达,并损害了其与 COMMD 蛋白的结合。此外,一些受影响的个体表现出外胚层发育不良,这是一种先天性疾病,可能是由于 NF-κB 阻断导致的。事实上,患者来源的细胞表现出 NF-κB 激活受损,原因是 IκB 的泛素化和降解减少。此外,我们发现 COMMD8 与 CCDC22 一起作用,指导 IκB 蛋白的降解。总之,我们的结果表明 CCDC22 参与 NF-κB 的激活,其缺乏导致人类 IκB 周转率降低,突出了该途径的一个重要调节成分。
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