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大肠杆菌中吡啶核苷酸生物合成的分子生物学。喹啉酸合成基因nadA和nadB的克隆与特性分析。

Molecular biology of pyridine nucleotide biosynthesis in Escherichia coli. Cloning and characterization of quinolinate synthesis genes nadA and nadB.

作者信息

Flachmann R, Kunz N, Seifert J, Gütlich M, Wientjes F J, Läufer A, Gassen H G

机构信息

Institut für Biochemie, Technische Hochschule Darmstadt, Federal Republic of Germany.

出版信息

Eur J Biochem. 1988 Aug 1;175(2):221-8. doi: 10.1111/j.1432-1033.1988.tb14187.x.

Abstract

The two genes, nadA and nadB, responsible for quinolinate biosynthesis from aspartate and dihydroxyacetone phosphate in Escherichia coli were cloned and characterized. Quinolinate (pyridine-2,3-dicarboxylate) is the biosynthetic precursor of the pyridine ring of NAD. Gene nadA was identified by complementation in three different nadA mutant strains. Sequence analysis provided an 840-bp open reading frame coding for a 31,555-Da protein. Gene nadB was identified by complementation in a nadB mutant strain and by the L-aspartate oxidase activity of its gene product. Sequence analysis showed a 1620-bp open reading frame coding for a 60,306-Da protein. For both genes, promoter regions and ribosomal binding sites were assigned by comparison to consensus sequences. The nadB gene product, L-aspartate oxidase, was purified to homogeneity and the N-terminal sequence of 19 amino acids was determined. The enzyme was shown to be specific for L-aspartate. High-copy-number vectors, carrying either gene nadA, nadB or nadA + nadB, increased quinolinate production 1.5-fold, 2.0-fold and 15-fold respectively. Both gene products seem to be equally rate-limiting in quinolinate synthesis.

摘要

负责大肠杆菌中天冬氨酸和磷酸二羟丙酮合成喹啉酸的两个基因nadA和nadB被克隆并进行了表征。喹啉酸(吡啶-2,3-二羧酸)是NAD吡啶环的生物合成前体。通过在三种不同的nadA突变菌株中进行互补鉴定出基因nadA。序列分析提供了一个840 bp的开放阅读框,编码一种31,555 Da的蛋白质。通过在nadB突变菌株中进行互补以及通过其基因产物的L-天冬氨酸氧化酶活性鉴定出基因nadB。序列分析显示一个1620 bp的开放阅读框,编码一种60,306 Da的蛋白质。对于这两个基因,通过与共有序列比较确定了启动子区域和核糖体结合位点。nadB基因产物L-天冬氨酸氧化酶被纯化至同质,并确定了19个氨基酸的N端序列。该酶显示对L-天冬氨酸具有特异性。携带基因nadA、nadB或nadA + nadB的高拷贝数载体分别使喹啉酸产量提高了1.5倍、2.0倍和15倍。两种基因产物在喹啉酸合成中似乎同样是限速的。

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