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首页> 外文期刊>PLoS Pathogens >A dual regulatory circuit consisting of S-adenosylmethionine decarboxylase protein and its reaction product controls expression of the paralogous activator prozyme in Trypanosoma brucei
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A dual regulatory circuit consisting of S-adenosylmethionine decarboxylase protein and its reaction product controls expression of the paralogous activator prozyme in Trypanosoma brucei

机译:由S-腺苷甲硫氨酸脱羧酶蛋白及其反应产物组成的双重调控回路,控制布鲁氏锥虫中旁源激活酶的表达

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Polyamines are essential for cell growth of eukaryotes including the etiologic agent of human African trypanosomiasis (HAT), Trypanosoma brucei. In trypanosomatids, a key enzyme in the polyamine biosynthetic pathway, S-adenosylmethionine decarboxylase (TbAdoMetDC) heterodimerizes with a unique catalytically-dead paralog called prozyme to form the active enzyme complex. In higher eukaryotes, polyamine metabolism is subject to tight feedback regulation by spermidine-dependent mechanisms that are absent in trypanosomatids. Instead, in T. brucei an alternative regulatory strategy based on TbAdoMetDC prozyme has evolved. We previously demonstrated that prozyme protein levels increase in response to loss of TbAdoMetDC activity. Herein, we show that prozyme levels are under translational control by monitoring incorporation of deuterated leucine into nascent prozyme protein. We furthermore identify pathway factors that regulate prozyme mRNA translation. We find evidence for a regulatory feedback mechanism in which TbAdoMetDC protein and decarboxylated AdoMet (dcAdoMet) act as suppressors of prozyme translation. In TbAdoMetDC null cells expressing the human AdoMetDC enzyme, prozyme levels are constitutively upregulated. Wild-type prozyme levels are restored by complementation with either TbAdoMetDC or an active site mutant, suggesting that TbAdoMetDC possesses an enzyme activity-independent function that inhibits prozyme translation. Depletion of dcAdoMet pools by three independent strategies: inhibition/knockdown of TbAdoMetDC, knockdown of AdoMet synthase, or methionine starvation, each cause prozyme upregulation, providing independent evidence that dcAdoMet functions as a metabolic signal for regulation of the polyamine pathway in T. brucei. These findings highlight a potential regulatory paradigm employing enzymes and pseudoenzymes that may have broad implications in biology.
机译:多胺对真核细胞的生长至关重要,包括人类非洲锥虫病(HAT),布鲁氏锥虫的病原体。在锥虫中,S-腺苷甲硫氨酸脱羧酶(TbAdoMetDC)是多胺生物合成途径中的关键酶,与称为酶的独特催化死亡旁系同源物异源二聚体形成活性酶复合物。在高等真核生物中,多胺代谢受到锥虫体中不存在的亚精胺依赖性机制的严格反馈调节。取而代之的是,在布鲁氏杆菌中,已经开发出了一种基于TbAdoMetDC酶的替代调控策略。我们以前证明了,蛋白酶蛋白水平响应于TbAdoMetDC活性的丧失而增加。本文中,我们通过监测氘代亮氨酸掺入新生的蛋白酶蛋白中来显示蛋白酶水平处于翻译控制之下。我们还确定调节蛋白酶mRNA翻译的途径因素。我们发现TbAdoMetDC蛋白和脱羧AdoMet(dcAdoMet)充当蛋白酶翻译抑制剂的监管反馈机制的证据。在表达人AdoMetDC酶的TbAdoMetDC空细胞中,蛋白酶水平被组成性上调。通过与TbAdoMetDC或活性位点突变体互补来恢复野生型酶水平,这表明TbAdoMetDC具有抑制酶翻译的非酶活性独立功能。通过三种独立的策略消耗dcAdoMet库:抑制/敲低TbAdoMetDC,敲低AdoMet合酶或甲硫氨酸饥饿,每种都会引起蛋白酶上调,从而提供了独立的证据,证明dcAdoMet作为代谢信号来调节布鲁氏杆菌中的多胺途径。这些发现突显了一种潜在的使用酶和假酶的调控范例,这些范例可能会对生物学产生广泛的影响。

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