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丙氨酸tRNA合成酶非必需部分的两个突变影响催化活性。

Two mutations in the dispensable part of alanine tRNA synthetase which affect the catalytic activity.

作者信息

Jasin M, Regan L, Schimmel P

出版信息

J Biol Chem. 1985 Feb 25;260(4):2226-30.

PMID:3882689
Abstract

Two previously described chromosomal mutant alleles, alaS4 and alaS5, of Escherichia coli Ala-tRNA synthetase have been analyzed. Each causes a sharp diminution in aminoacylation activity and disrupts the alpha 4 tetramer structure of identical chains of 875 amino acids; neither mutation significantly disturbs the activity for synthesis of alanyladenylate. The location of each mutation within the structural gene has been mapped by marker rescue with specific gene fragments. Each mutant allele was cloned from the genome by reciprocal recombination with a multicopy plasmid that contains segments of alaS which flank the respective mutations. Further analysis established: 1) a single G----A transition results in a Gly----Asp change for each mutant allele at codon 674 (alaS4) and at codon 677 (alaS5). 2) The mutations are in the oligomerization domain, about 200 amino acids beyond the C-terminal side of the catalytic domain that previously was mapped by deletion analysis; the mutations are, thus, in a part of the polypeptide which is dispensable for catalytic activity. 3) For both mutant enzymes, there is little effect of the mutation on the Km for tRNAAla; kcat for aminoacylation is decreased by an order of magnitude. These point mutations reveal a subtle integration of the catalytic core with parts of the polypeptide that are not essential for catalytic activity.

摘要

对大肠杆菌丙氨酸 - tRNA合成酶的两个先前已描述的染色体突变等位基因alaS4和alaS5进行了分析。每个等位基因都会导致氨酰化活性急剧下降,并破坏由875个氨基酸组成的相同链的α4四聚体结构;两种突变均未显著干扰丙氨酰腺苷酸的合成活性。通过用特定基因片段进行标记拯救,已确定每个突变在结构基因中的位置。通过与包含位于各自突变侧翼的alaS片段的多拷贝质粒进行相互重组,从基因组中克隆了每个突变等位基因。进一步的分析确定:1)单个G→A转换导致每个突变等位基因在密码子674(alaS4)和密码子677(alaS5)处发生甘氨酸→天冬氨酸的变化。2)突变位于寡聚化结构域,在先前通过缺失分析定位的催化结构域C末端一侧约200个氨基酸之外;因此,突变位于对催化活性而言并非必需的多肽部分。3)对于两种突变酶,突变对丙氨酸tRNA Km的影响很小;氨酰化的kcat降低了一个数量级。这些点突变揭示了催化核心与对催化活性并非必需的多肽部分之间的微妙整合。

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