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Ustilago maydis Rho1 and 14-3-3 Homologues Participate in Pathways Controlling Cell Separation and Cell Polarity

机译:乌节菌可能是Rho1和14-3-3同源物参与控制细胞分离和细胞极性的途径

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Proteins of the 14-3-3 and Rho-GTPase families are functionally conserved eukaryotic proteins that participate in many important cellular processes such as signal transduction, cell cycle regulation, malignant transformation, stress response, and apoptosis. However, the exact role(s) of these proteins in these processes is not entirely understood. Using the fungal maize pathogen, Ustilago maydis, we were able to demonstrate a functional connection between Pdc1 and Rho1, the U. maydis homologues of 14-3-3ε and Rho1, respectively. Our experiments suggest that Pdc1 regulates viability, cytokinesis, chromosome condensation, and vacuole formation. Similarly, U. maydis Rho1 is also involved in these three essential processes and exerts an additional function during mating and filamentation. Intriguingly, yeast two-hybrid and epistasis experiments suggest that both Pdc1 and Rho1 could be constituents of the same regulatory cascade(s) controlling cell growth and filamentation in U. maydis. Overexpression of rho1 ameliorated the defects of cells depleted for Pdc1. Furthermore, we found that another small G protein, Rac1, was a suppressor of lethality for both Pdc1 and Rho1. In addition, deletion of cla4, encoding a Rac1 effector kinase, could also rescue cells with Pdc1 depleted. Inferring from these data, we propose a model for Rho1 and Pdc1 functions in U. maydis.
机译:14-3-3和Rho-GTPase家族的蛋白质是功能保守的真核蛋白质,参与许多重要的细胞过程,例如信号转导,细胞周期调节,恶性转化,应激反应和凋亡。但是,这些蛋白质在这些过程中的确切作用尚不完全清楚。使用真菌玉米病原体 Ustilago maydis ,我们能够证明Pdc1和Rho1( U)之间的功能连接。可能分别是14-3-3ε和Rho1的同源物。我们的实验表明,Pdc1调节活力,胞质分裂,染色体浓缩和液泡形成。同样, U。 maydis Rho1也参与了这三个基本过程,并在交配和细丝化过程中发挥了额外的功能。有趣的是,酵母双杂交和上位性实验表明Pdc1和Rho1可能是同一调控级联的组成部分,这些级联控制 U中的细胞生长和丝化。 maydis rho1 的过表达改善了Pdc1耗尽的细胞的缺陷。此外,我们发现另一个小G蛋白Rac1可以抑制Pdc1和Rho1的致死性。此外,删除编码Rac1效应激酶的 cla4 也可以挽救Pdc1耗尽的细胞。从这些数据推断,我们为 U中的Rho1和Pdc1函数提出了一个模型。 maydis

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