Kim HyeWon, Yang Peirong, Catanuto Paola, Verde Fulvia, Lai Hong, Du Hongyan, Chang Fred, Marcus Stevan
Department of Molecular Genetics and Program in Genes and Development, University of Texas M. D. Anderson Cancer Center, Houston, Texas 77030, USA.
J Biol Chem. 2003 Aug 8;278(32):30074-82. doi: 10.1074/jbc.M302609200. Epub 2003 May 22.
The p21-activated kinase (PAK) homolog, Shk1, is a critical component of a multifunctional Ras/Cdc42/PAK complex required for viability, polarized growth and cell shape, and sexual differentiation in the fission yeast, Schizosaccharomyces pombe. Substrate targets of the Shk1 kinase have not previously been described. Here we show that the S. pombe cell polarity factor, Tea1, is directly phosphorylated by Shk1 in vitro. We demonstrate further that Tea1 is phosphorylated in S. pombe cells and that its level of phosphorylation is significantly reduced in cells defective in Shk1 function. Consistent with a role for Tea1 as a potential downstream effector of Shk1, we show that a tea1 null mutation rescues the Shk1 hyperactivity-induced lethal phenotype caused by loss of function of the essential Shk1 inhibitor, Skb15. All phenotypes associated with Skb15 loss, including defects in actin cytoskeletal organization, chromosome segregation, and cytokinesis, are suppressed by tea1 Delta, suggesting that Tea1 is a potential mediator of multiple Shk1 functions. S. pombe cells carrying a weak hypomorphic allele of shk1 together with a tea1 Delta mutation exhibit a cytokinesis defective phenotype that is significantly more severe than that observed in the respective single mutants, providing evidence that Shk1 and Tea1 cooperate to regulate cytokinesis. In addition, we show that S. pombe cells carrying the orb2-34 allele of shk1 exhibit a pattern of monopolar growth similar to that observed in tea1 Delta cells, suggesting that Shk1 and Tea1 may regulate one or more common processes involved in the regulation of polarized cell growth. Taken together, our results strongly implicate Tea1 as a potential substrate-effector of the Shk1 kinase.
p21激活激酶(PAK)的同源物Shk1,是粟酒裂殖酵母生存能力、极性生长、细胞形态以及有性分化所需的多功能Ras/Cdc42/PAK复合物的关键组成部分。此前尚未描述过Shk1激酶的底物靶点。在此我们表明,粟酒裂殖酵母细胞极性因子Tea1在体外被Shk1直接磷酸化。我们进一步证明,Tea1在粟酒裂殖酵母细胞中被磷酸化,并且在Shk1功能缺陷的细胞中其磷酸化水平显著降低。与Tea1作为Shk1潜在下游效应物的作用一致,我们表明tea1缺失突变可挽救由必需的Shk1抑制剂Skb15功能丧失导致的Shk1过度激活诱导的致死表型。与Skb15缺失相关的所有表型,包括肌动蛋白细胞骨架组织缺陷、染色体分离和胞质分裂缺陷,都被tea1Δ抑制,这表明Tea1是多种Shk1功能的潜在介导物。携带shk1弱等位基因和tea1Δ突变的粟酒裂殖酵母细胞表现出胞质分裂缺陷表型,该表型比在各自的单突变体中观察到的要严重得多,这证明Shk1和Tea1协同调节胞质分裂。此外,我们表明携带shk1的orb2 - 34等位基因的粟酒裂殖酵母细胞表现出与tea1Δ细胞中观察到的类似的单极生长模式,这表明Shk1和Tea1可能调节参与极性细胞生长调控的一个或多个共同过程。综上所述,我们的结果有力地表明Tea1是Shk1激酶的潜在底物效应物。