首页> 美国卫生研究院文献>Journal of Bacteriology >An efficient approach to identify ilvA mutations reveals an amino-terminal catalytic domain in biosynthetic threonine deaminase from Escherichia coli.
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An efficient approach to identify ilvA mutations reveals an amino-terminal catalytic domain in biosynthetic threonine deaminase from Escherichia coli.

机译:鉴定ilvA突变的有效方法揭示了来自大肠杆菌的生物合成苏氨酸脱氨酶中的氨基末端催化结构域。

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摘要

High-level expression of the regulatory enzyme threonine deaminase in Escherichia coli strains grown on minimal medium that are deficient in the activities of enzymes needed for branched-chain amino acid biosynthesis result in growth inhibition, possibly because of the accumulation of toxic levels of alpha-ketobutyrate, the product of the committed step in isoleucine biosynthesis. This condition affords a means for selecting genetic variants of threonine deaminase that are deficient in catalysis by suppression of growth inhibition. Strains harboring mutations in ilvA that decreased the catalytic activity of threonine deaminase were found to grow more rapidly than isogenic strains containing wild-type ilvA. Modification of the ilvA gene to introduce additional unique, evenly spaced restriction enzyme sites facilitated the identification of suppressor mutations by enabling small DNA fragments to be subcloned for sequencing. The 10 mutations identified in ilvA code for enzymes with significantly reduced activity relative to that of wild-type threonine deaminase. Values for their specific activities range from 40% of that displayed by wild-type enzyme to complete inactivation as evidenced by failure to complement an ilvA deletion strain to isoleucine prototrophy. Moreover, some mutant enzymes showed altered allosteric properties with respect to valine activation and isoleucine inhibition. The location of the 10 mutations in the 5' two-thirds of the ilvA gene is consistent with suggestions that threonine deaminase is organized functionally with an amino-terminal domain that is involved in catalysis and a carboxy-terminal domain that is important for regulation.
机译:在基本培养基上生长的大肠杆菌菌株中的调节酶苏氨酸脱氨酶的高水平表达缺乏支链氨基酸生物合成所需的酶的活性,导致生长受到抑制,这可能是由于α-酮丁酸,异亮氨酸生物合成中重要步骤的产物。该条件提供了一种选择苏氨酸脱氨酶的遗传变异体的方法,该苏氨酸脱氨酶的遗传变异体通过抑制生长抑制而缺乏催化作用。发现带有ilvA突变的菌株会降低苏氨酸脱氨酶的催化活性,而这种菌株比含有野生型ilvA的同基因菌株生长更快。修饰ilvA基因以引入其他独特的,均匀间隔的限制性酶切位点,可通过将小DNA片段亚克隆进行测序来促进抑制子突变的鉴定。与野生型苏氨酸脱氨酶相比,ilvA中鉴定出的10个突变编码的酶活性明显降低。其比活性的值范围为野生型酶显示的值的40%,直至完全灭活为止,这可以通过未能将ilvA缺失菌株与异亮氨酸原营养体互补来证明。而且,一些突变酶在缬氨酸活化和异亮氨酸抑制方面显示出变构的变构性质。 ilvA基因的5'三分之二的10个突变的位置与苏氨酸脱氨酶在功能上组织有催化作用的氨基末端结构域和重要的调节羧基末端结构域的建议相一致。

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