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Metabolic origin of the fused aminoacyl-tRNA synthetase glutamyl-prolyl-tRNA synthetase

机译:融合的氨酰基-tRNA合成酶谷氨酰基-脯氨酰-tRNA合成酶的代谢起源

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摘要

About 1 billion years ago, in a single-celled holozoan ancestor of all animals, a gene fusion of two tRNA synthetases formed the bifunctional enzyme, glutamyl-prolyl-tRNA synthetase (EPRS). We propose here that a confluence of metabolic, biochemical, and environmental factors contributed to the specific fusion of glutamyl- (ERS) and prolyl- (PRS) tRNA synthetases. To test this idea, we developed a mathematical model that centers on the precursor–product relationship of glutamic acid and proline, as well as metabolic constraints on free glutamic acid availability near the time of the fusion event. Our findings indicate that proline content increased in the proteome during the emergence of animals, thereby increasing demand for free proline. Together, these constraints contributed to a marked cellular depletion of glutamic acid and its products, with potentially catastrophic consequences. In response, an ancient organism invented an elegant solution in which genes encoding ERS and PRS fused to form EPRS, forcing coexpression of the two enzymes and preventing lethal dysregulation. The substantial evolutionary advantage of this coregulatory mechanism is evidenced by the persistence of EPRS in nearly all extant animals.
机译:大约10亿年前,在所有动物的单细胞全人类祖先中,两个tRNA合成酶的基因融合形成了双功能酶,即谷氨酰脯氨酰tRNA合成酶(EPRS)。我们在这里建议,代谢,生化和环境因素的汇合促成谷氨酰-(ERS)和脯氨酰-(PRS)tRNA合成酶的特异性融合。为了验证这一想法,我们开发了一个数学模型,该模型集中于谷氨酸和脯氨酸的前体-产物关系,以及融合事件发生时对游离谷氨酸可用性的代谢限制。我们的发现表明,在动物出现期间,蛋白质组中脯氨酸的含量增加,从而增加了对游离脯氨酸的需求。这些限制因素共同导致谷氨酸及其产物的明显细胞耗竭,并可能造成灾难性后果。作为响应,一种古老的生物体发明了一种优雅的解决方案,其中编码ERS和PRS的基因融合形成EPRS,迫使这两种酶共同表达并防止致命的失调。 EPRS在几乎所有现存动物中的持久性都证明了这种调控机制的实质性进化优势。

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