Department of Cellular Neurobiology, Graduate School of Medicine, University of Tokyo, Tokyo, Japan.
Eur J Neurosci. 2019 Aug;50(4):2722-2739. doi: 10.1111/ejn.14421. Epub 2019 May 14.
Cylindromatosis tumor suppressor protein (CYLD) was initially identified as a tumor suppressor deubiquitylating protein in familial cylindromatosis patients. Proteomic analyses using rodent brain samples revealed enrichment of CYLD in purified postsynaptic density fractions. Here, we report that CYLD regulates dendritic growth and postsynaptic differentiation in mouse hippocampal neurons. CYLD showed diffuse localization in rapidly growing dendrites, but was gradually concentrated in spines. Overexpression and knockdown of CYLD in the early stage of cultured neurons demonstrated that CYLD positively regulated dendritic growth. Phenotypes in dendritic morphogenesis induced by CYLD overexpression and knockdown could be reversed by manipulation of the critical acetylation site of α-tubulin, suggesting tubulin acetylation is a downstream pathway of CYLD-dependent dendritic growth. Overexpression and knockdown of CYLD in the later stage of cultured neurons revealed that CYLD promoted formation of postsynaptic spines. Influence of CYLD on spines was not affected by co-expression of acetylation mutant forms of α-tubulin, indicating that CYLD regulates dendritic growth and spine formation through different molecular mechanisms. Analyses with the truncated and mutated forms of CYLD demonstrated that the first microtubule-binding domain of CYLD was critical for spine formation. These results suggest important roles of CYLD in sequential promotion of dendritic growth and postsynaptic spine maturation.
圆柱瘤病抑瘤蛋白(CYLD)最初在家族性圆柱瘤病患者中被鉴定为肿瘤抑制去泛素化蛋白。使用啮齿动物脑组织样本进行的蛋白质组学分析表明,CYLD 在纯化的突触后密度部分中富集。在这里,我们报告 CYLD 调节小鼠海马神经元中的树突生长和突触后分化。CYLD 在快速生长的树突中呈现弥散定位,但逐渐集中在棘突中。在培养神经元的早期过表达和敲低 CYLD 表明,CYLD 正向调节树突生长。由 CYLD 过表达和敲低诱导的树突形态发生表型可以通过操纵微管乙酰化关键位点的方式逆转,表明微管乙酰化是 CYLD 依赖性树突生长的下游途径。在培养神经元的后期过表达和敲低 CYLD 表明,CYLD 促进了突触后棘突的形成。CYLD 对棘突的影响不受共表达微管乙酰化突变体形式的影响,表明 CYLD 通过不同的分子机制调节树突生长和棘突形成。使用 CYLD 的截断和突变形式的分析表明,CYLD 的第一个微管结合结构域对于棘突形成至关重要。这些结果表明 CYLD 在顺序促进树突生长和突触后棘突成熟中具有重要作用。