Marín María José, Flández Marta, Bermejo Clara, Arroyo Javier, Martín Humberto, Molina María
Departamento de Microbiología II, Facultad de Farmacia, Universidad Complutense de Madrid, Pza Ramón y Cajal s/n, 28040, Madrid, Spain.
Mol Genet Genomics. 2009 Mar;281(3):345-59. doi: 10.1007/s00438-008-0415-5. Epub 2009 Jan 4.
The activity of protein phosphatases on mitogen-activated protein kinases (MAPKS) is essential in the modulation of the final outcome of MAPK-signalling pathways. The yeast dual-specificity phosphatase (DSP) Msg5, expressed as two isoforms of different length, dephosphorylates the MAPKs of mating and cell integrity pathways, Fus3 and Slt2, respectively, but its action on the MAPK Kss1 is unclear. Here we analyse the global impact of Msg5 on the yeast transcriptome. Both Fus3- and Slt2- but not Kss1-mediated gene expression is induced in cells lacking Msg5. However, although these cells show high Slt2 phosphorylation, the Rlm1-dependent Slt2-regulated transcriptional response is weak. Therefore, mechanisms concomitant with Slt2 phosphorylation are required for a strong Rlm1 activation. The limited Slt2 activity on Rlm1 is not a specific effect on this substrate but a consequence of its low kinase activity in msg5Delta cells. Lack of Msg5 does not increase Kss1 phosphorylation although both proteins physically interact. Both Msg5 isoforms interact similarly with Slt2, whereas the long form binds Fus3 with higher affinity and consequently down-regulates it more efficiently than the short one. We propose that specific binding of DSP isoforms to distinct MAPKs provides a novel mechanism for fine tuning different pathways by the same phosphatase.
蛋白磷酸酶对丝裂原活化蛋白激酶(MAPK)的活性在调节MAPK信号通路的最终结果中至关重要。酵母双特异性磷酸酶(DSP)Msg5以两种不同长度的同工型形式表达,分别使交配和细胞完整性通路的MAPK即Fus3和Slt2去磷酸化,但其对MAPK Kss1的作用尚不清楚。在此,我们分析了Msg5对酵母转录组的整体影响。在缺乏Msg5的细胞中,Fus3和Slt2介导的基因表达均被诱导,但Kss1介导的基因表达未被诱导。然而,尽管这些细胞显示出高Slt磷酸化,但Rlm1依赖的Slt2调节的转录反应较弱。因此,强烈激活Rlm1需要与Slt2磷酸化同时发生的机制。Slt2对Rlm1的有限活性并非对该底物的特异性作用,而是msg5Delta细胞中其激酶活性较低的结果。尽管Msg5和Kss1蛋白发生物理相互作用,但缺乏Msg5并不会增加Kss1的磷酸化。两种Msg5同工型与Slt2的相互作用相似,而长同工型与Fus3的结合亲和力更高,因此比短同工型更有效地下调Fus3。我们提出,DSP同工型与不同MAPK的特异性结合为同一磷酸酶微调不同通路提供了一种新机制。