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Functional interplay between protein arginine methyltransferases in Trypanosoma brucei

机译:布氏锥虫中蛋白质精氨酸甲基转移酶之间的功能相互作用

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AbstractArginine methylation is a common posttranslational modification that has far-reaching cellular effects. Trypanosoma brucei is an early-branching eukaryote with four characterized protein arginine methyltransferases (PRMTs), one additional putative PRMT, and over 800 arginine methylated proteins, suggesting that arginine methylation has widespread impacts in this organism. While much is known about the activities of individual T. brucei PRMTs (TbPRMTs), little is known regarding how TbPRMTs function together in vivo. In this study, we analyzed single and selected double TbPRMT knockdowns for the impact on expression of TbPRMTs and global methylation status. Repression of TbPRMT1 caused a decrease in asymmetric dimethylarginine and a marked increase in monomethylarginine that was catalyzed by TbPRMT7, suggesting that TbPRMT1 and TbPRMT7 can compete for the same substrate. We also observed an unexpected and strong interdependence between TbPRMT1 and TbPRMT3 protein levels. This finding, together with the observation of similar methyl landscape profiles in TbPRMT1 and TbPRMT3 repressed cells, strongly suggests that these two enzymes form a functional complex. We show that corepression of TbPRMT6/7 synergistically impacts growth of procyclic-form T. brucei. Our findings also implicate the actions of noncanonical, and as yet unidentified, PRMTs in T. brucei. Together, our studies indicate that TbPRMTs display a functional interplay at multiple levels.
机译:摘要精氨酸甲基化是一种常见的翻译后修饰,具有深远的细胞效应。布氏锥虫(Trypanosoma brucei)是一种早期分支的真核生物,具有四个特征蛋白精氨酸甲基转移酶(PRMT),一个推定的PRMT和800多个精氨酸甲基化蛋白,表明精氨酸甲基化对该生物体具有广泛的影响。尽管关于单个布鲁氏菌PRMTs(TbPRMTs)的活性知之甚少,但关于TbPRMTs在体内如何共同发挥作用却知之甚少。在这项研究中,我们分析了单个和选定的两个TbPRMT敲低对TbPRMTs表达和整体甲基化状态的影响。 TbPRMT1的阻遏引起不对称二甲基精氨酸的减少和TbPRMT7催化的单甲基精氨酸的显着增加,这表明TbPRMT1和TbPRMT7可以竞争相同的底物。我们还观察到TbPRMT1和TbPRMT3蛋白水平之间的意外和强烈的相互依赖性。这一发现,加上在TbPRMT1和TbPRMT3抑制的细胞中观察到相似的甲基景观,强烈表明这两种酶形成了功能复合物。我们显示,TbPRMT6 / 7的协同作用协同影响前环形式布鲁氏菌的生长。我们的发现还暗示了布鲁氏杆菌中非经典的和尚未确定的PRMT的作用。在一起,我们的研究表明TbPRMTs在多个级别上显示功能相互作用。

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