Küntziger T, Gavet O, Sobel A, Bornens M
Institut Curie, Section Recherche, UMR 144 CNRS, 26 rue d'Ulm, 75248 Paris Cedex 05, France.
J Biol Chem. 2001 Jun 22;276(25):22979-84. doi: 10.1074/jbc.M101466200. Epub 2001 Apr 10.
Stathmin/Op18 destabilizes microtubules in vitro and regulates microtubule polymerization in vivo. Both a microtubule catastrophe-promoting activity and a tubulin sequestering activity were demonstrated for stathmin in vitro, and both could contribute to microtubule depolymerization in vivo. Stathmin activity can be turned down by extensive phosphorylation on its four phosphorylatable serines, and down-regulation of stathmin activity by phosphorylation is necessary for cells to proceed through mitosis. We show here that microinjection of a nonphosphorylatable Ser to Ala (4A) quadruple mutant in Xenopus two-cell stage embryos results in cell cleavage arrest in the injected blastomeres and aborted development, whereas injection of a pseudo-phosphorylated Ser to Glu quadruple mutant (4E) does not prevent normal development. Addition of these mutants to mitotic cytostatic factor-arrested extracts in which spindle assembly was induced led to a dramatic reduction of spindle size with 4A stathmin, and to a moderate increase with 4E stathmin, but both localized to spindle poles. Interestingly, the microtubule assembly-dependent phosphorylation of endogenous stathmin was abolished in the presence of 4A stathmin, but not of 4E stathmin. Altogether, this shows that the phosphorylation-mediated regulation of stathmin activity during the cell cycle is essential for early Xenopus embryonic development.
Stathmin/Op18在体外使微管不稳定,并在体内调节微管聚合。在体外已证实Stathmin具有促进微管灾难发生的活性和微管蛋白隔离活性,两者都可能在体内导致微管解聚。Stathmin的活性可通过其四个可磷酸化丝氨酸的广泛磷酸化而降低,并且通过磷酸化下调Stathmin活性对于细胞进行有丝分裂是必需的。我们在此表明,在非洲爪蟾双细胞期胚胎中显微注射非磷酸化的丝氨酸到丙氨酸(4A)四重突变体,会导致注射的卵裂球细胞分裂停滞和发育中止,而注射假磷酸化的丝氨酸到谷氨酸四重突变体(4E)则不会阻止正常发育。将这些突变体添加到诱导纺锤体组装的有丝分裂细胞静止因子阻滞提取物中,4A Stathmin会导致纺锤体大小显著减小,4E Stathmin会导致纺锤体大小适度增加,但两者都定位于纺锤体极。有趣的是,在存在4A Stathmin的情况下,内源性Stathmin的微管组装依赖性磷酸化被消除,但在存在4E Stathmin的情况下则没有。总之,这表明在细胞周期中磷酸化介导的Stathmin活性调节对于非洲爪蟾早期胚胎发育至关重要。