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Tissue-specific control of midbody microtubule stability by Citron kinase through modulation of TUBB3 phosphorylation

机译:柚子激酶通过调节TUBB3磷酸化对中体微管稳定性的组织特异性控制

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Cytokinesis, the physical separation of daughter cells at the end of cell cycle, is commonly considered a highly stereotyped phenomenon. However, in some specialized cells this process may involve specific molecular events that are still largely unknown. In mammals, loss of Citron-kinase (CIT-K) leads to massive cytokinesis failure and apoptosis only in neuronal progenitors and in male germ cells, resulting in severe microcephaly and testicular hypoplasia, but the reasons for this specificity are unknown. In this report we show that CIT-K modulates the stability of midbody microtubules and that the expression of tubulin beta-III (TUBB3) is crucial for this phenotype. We observed that TUBB3 is expressed in proliferating CNS progenitors, with a pattern correlating with the susceptibility to CIT-K loss. More importantly, depletion of TUBB3 in CIT-K-dependent cells makes them resistant to CIT-K loss, whereas TUBB3 overexpression increases their sensitivity to CIT-K knockdown. The loss of CIT-K leads to a strong decrease in the phosphorylation of S444 on TUBB3, a post-translational modification associated with microtubule stabilization. CIT-K may promote this event by interacting with TUBB3 and by recruiting at the midbody casein kinase-2 alpha (CK2 alpha) that has previously been reported to phosphorylate the S444 residue. Indeed, CK2 alpha is lost from the midbody in CIT-K-depleted cells. Moreover, expression of the nonphosphorylatable TUBB3 mutant S444A induces cytokinesis failure, whereas expression of the phospho-mimetic mutant S444D rescues the cytokinesis failure induced by both CIT-K and CK2 alpha loss. Altogether, our findings reveal that expression of relatively low levels of TUBB3 in mitotic cells can be detrimental for their cytokinesis and underscore the importance of CIT-K in counteracting this event.
机译:细胞分裂是细胞周期结束时子代细胞的物理分离,通常被认为是高度定型的现象。但是,在某些专门的细胞中,该过程可能涉及仍在很大程度上未知的特定分子事件。在哺乳动物中,仅在神经元祖细胞和雄性生殖细胞中丧失柠檬酸激酶(CIT-K)会导致大量胞质分裂失败和凋亡,从而导致严重的小头畸形和睾丸发育不全,但这种特异性的原因尚不清楚。在此报告中,我们显示CIT-K调节中体微管的稳定性,并且微管蛋白β-III(TUBB3)的表达对该表型至关重要。我们观察到,TUBB3在增殖的CNS祖细胞中表达,其模式与CIT-K丢失的敏感性相关。更重要的是,在CIT-K依赖性细胞中TUBB3的耗尽使它们对CIT-K丢失具有抵抗力,而TUBB3的过表达增加了其对CIT-K敲低的敏感性。 CIT-K的缺失导致TUBB3上S444的磷酸化强烈降低,这是与微管稳定相关的翻译后修饰。 CIT-K可能通过与TUBB3相互作用并在中体酪蛋白激酶2α(CK2α)募集而促进了这一事件,而酪蛋白激酶2α(CK2α)先前已被报道磷酸化S444残基。实际上,在CIT-K缺失的细胞中,CK2 alpha从中体丢失。此外,不可磷酸化的TUBB3突变体S444A的表达诱导胞质分裂失败,而磷酸化模拟突变体S444D的表达挽救由CIT-K和CK2α损失引起的胞质分裂失败。总而言之,我们的发现表明,有丝分裂细胞中TUBB3相对较低的表达可能会损害其胞质分裂,并强调了CIT-K在抵消这一事件中的重要性。

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