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植物病原体玉米黑粉菌中铵转运蛋白与信号蛋白Rho1之间的物理和遗传相互作用。

Physical and genetic interaction between ammonium transporters and the signaling protein Rho1 in the plant pathogen Ustilago maydis.

作者信息

Paul Jinny A, Barati Michelle T, Cooper Michael, Perlin Michael H

机构信息

Department of Biology, Program on Disease Evolution, University of Louisville, Louisville, Kentucky, USA.

Kidney Disease Program, University of Louisville, Louisville, Kentucky, USA.

出版信息

Eukaryot Cell. 2014 Oct;13(10):1328-36. doi: 10.1128/EC.00150-14. Epub 2014 Aug 15.

Abstract

Dimorphic transitions between yeast-like and filamentous forms occur in many fungi and are often associated with pathogenesis. One of the cues for such a dimorphic switch is the availability of nutrients. Under conditions of nitrogen limitation, fungal cells (such as those of Saccharomyces cerevisiae and Ustilago maydis) switch from budding to pseudohyphal or filamentous growth. Ammonium transporters (AMTs) are responsible for uptake and, in some cases, for sensing the availability of ammonium, a preferred nitrogen source. Homodimer and/or heterodimer formation may be required for regulating the activity of the AMTs. To investigate the potential interactions of Ump1 and Ump2, the AMTs of the maize pathogen U. maydis, we first used the split-ubiquitin system, followed by a modified split-YFP (yellow fluorescent protein) system, to validate the interactions in vivo. This analysis showed the formation of homo- and hetero-oligomers by Ump1 and Ump2. We also demonstrated the interaction of the high-affinity ammonium transporter, Ump2, with the Rho1 GTPase, a central protein in signaling, with roles in controlling polarized growth. This is the first demonstration in eukaryotes of the physical interaction in vivo of an ammonium transporter with the signaling protein Rho1. Moreover, the Ump proteins interact with Rho1 during the growth of cells in low ammonium concentrations, a condition required for the expression of the Umps. Based on these results and the genetic evidence for the interaction of Ump2 with both Rho1 and Rac1, another small GTPase, we propose a model for the role of these interactions in controlling filamentation, a fundamental aspect of development and pathogenesis in U. maydis.

摘要

酵母样形态和丝状形态之间的二态转变在许多真菌中都会发生,并且通常与致病机制相关。这种二态转换的线索之一是营养物质的可利用性。在氮限制条件下,真菌细胞(如酿酒酵母和玉米黑粉菌的细胞)会从出芽生长转变为假菌丝或丝状生长。铵转运蛋白(AMT)负责铵的摄取,在某些情况下还负责感知铵(一种优质氮源)的可利用性。调节AMT的活性可能需要形成同二聚体和/或异二聚体。为了研究玉米病原体玉米黑粉菌的AMT——Ump1和Ump2之间的潜在相互作用,我们首先使用分裂泛素系统,随后使用改良的分裂黄色荧光蛋白(split-YFP)系统来验证体内的相互作用。该分析表明Ump1和Ump2形成了同聚体和异聚体。我们还证明了高亲和力铵转运蛋白Ump2与Rho1 GTP酶之间的相互作用,Rho1 GTP酶是信号传导中的核心蛋白,在控制极性生长中发挥作用。这是真核生物中铵转运蛋白与信号蛋白Rho1在体内发生物理相互作用的首次证明。此外,在低铵浓度下细胞生长过程中,Ump蛋白与Rho1相互作用,而低铵浓度是Ump表达所需的条件。基于这些结果以及Ump2与Rho1和另一种小GTP酶Rac1相互作用的遗传学证据,我们提出了一个模型,阐述这些相互作用在控制丝状化过程中的作用,丝状化是玉米黑粉菌发育和致病机制的一个基本方面。

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