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精氨酸在鱼腥藻中的分解代谢途径涉及一种新型的双功能酶,该酶可将精氨酸转化为脯氨酸。

Catabolic pathway of arginine in Anabaena involves a novel bifunctional enzyme that produces proline from arginine.

机构信息

Instituto de Bioquímica Vegetal y Fotosíntesis, CSIC and Universidad de Sevilla, Américo Vespucio 49, E-41092, Sevilla, Spain.

出版信息

Mol Microbiol. 2019 Apr;111(4):883-897. doi: 10.1111/mmi.14203. Epub 2019 Feb 25.

DOI:10.1111/mmi.14203
PMID:30636068
Abstract

Arginine participates widely in metabolic processes. The heterocyst-forming cyanobacterium Anabaena catabolizes arginine to produce proline and glutamate, with concomitant release of ammonium, as major products. Analysis of mutant Anabaena strains showed that this catabolic pathway is the product of two genes, agrE (alr4995) and putA (alr0540). The predicted PutA protein is a conventional, bifunctional proline oxidase that produces glutamate from proline. In contrast, AgrE is a hitherto unrecognized enzyme that contains both an N-terminal α/β propeller domain and a unique C-terminal domain of previously unidentified function. In vitro analysis of the proteins expressed in Escherichia coli or Anabaena showed arginine dihydrolase activity of the N-terminal domain and ornithine cyclodeaminase activity of the C-terminal domain, overall producing proline from arginine. In the diazotrophic filaments of Anabaena, β-aspartyl-arginine dipeptide is transferred from the heterocysts to the vegetative cells, where it is cleaved producing aspartate and arginine. Both agrE and putA were found to be expressed at higher levels in vegetative cells than in heterocysts, implying that arginine is catabolized by the AgrE-PutA pathway mainly in the vegetative cells. Expression in Anabaena of a homolog of the C-terminal domain of AgrE obtained from Methanococcus maripaludis enabled us to identify an archaeal ornithine cyclodeaminase.

摘要

精氨酸广泛参与代谢过程。固氮蓝藻鱼腥藻将精氨酸分解为脯氨酸和谷氨酸,并同时释放铵,作为主要产物。对突变鱼腥藻菌株的分析表明,这种分解途径是两个基因的产物,agrE(alr4995)和putA(alr0540)。预测的 PutA 蛋白是一种常规的、双功能脯氨酸氧化酶,可将脯氨酸转化为谷氨酸。相比之下,AgrE 是一种以前未被识别的酶,它包含一个 N 端 α/β 推进器结构域和一个独特的 C 端结构域,其功能以前未被识别。在大肠杆菌或鱼腥藻中表达的蛋白质的体外分析表明,N 端结构域具有精氨酸二氢酶活性,C 端结构域具有鸟氨酸环化酶活性,总体上可从精氨酸产生脯氨酸。在鱼腥藻的固氮丝中,β-天冬酰基-精氨酸二肽从异形胞转移到营养细胞,在那里它被切割产生天冬氨酸和精氨酸。agrE 和 putA 在营养细胞中的表达水平均高于异形胞,这表明精氨酸主要在营养细胞中通过 AgrE-PutA 途径进行分解。在鱼腥藻中表达从 Methanococcus maripaludis 获得的 AgrE 的 C 端结构域的同源物,使我们能够鉴定出一种古菌鸟氨酸环化酶。

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