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Quantitative chimeric analysis of six specificity determinants that differentiate Escherichia coli aspartate from tyrosine aminotransferase

机译:六种特异性决定子的定量嵌合分析,这些决定子将大肠杆菌天冬氨酸和酪氨酸转氨酶区分开

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摘要

The six mutations, referred to as the Hex mutations, that together have been shown to convert Escherichia coli aspartate aminotransferase (AATase) specificity to be substantially like that of E. coli tyrosine aminotransferase (TATase) are dissected into two groups, (T109S/N297S) and (V39L/K41Y/T47I/N69L). The letters on the left and right of the numbers designate AATase and TATase residues, respectively. The T109S/N297S pair has been investigated previously. The latter group, the "Grease" set, is now placed in the AATase framework, and the retroGrease set (L39V/Y41K/I47T/L69N) is substituted into TATase. The Grease mutations in the AATase framework were found primarily to lower KMs for both aromatic and dicarboxylic substrates. In contrast, retroGrease TATase exhibits lowered kcats for both substrates. The six retroHex mutations, combining retroGrease and S109T/S297N, were found to invert the substrate specificity of TATase, creating an enzyme with a nearly ninefold preference (kcat/KM) for aspartate over phenylalanine. The retroHex mutations perturb the electrostatic environment of the pyridoxal phosphate cofactor, as evidenced by a spectrophotometric titration of the internal aldimine, which uniquely shows two pKas, 6.1 and 9.1. RetroHex was also found to have impaired dimer stability, with a KD for dimer dissociation of 350 nM compared with the wild type KD of 4 nM. Context dependence and additivity analyses demonstrate the importance of interactions of the Grease residues with the surrounding protein framework in both the AATase and TATase contexts, and with residues 109 and 297 in particular. Context dependence and cooperativity are particularly evident in the effects of mutations on kcat/KM(Asp). Effects on kcat/KM(Phe) are more nearly additive and context independent.
机译:已经证明这六个突变(称为Hex突变)一起转换为大肠杆菌天冬氨酸转氨酶(AATase)的特异性,与大肠杆菌酪氨酸转氨酶(TATase)的特异性基本相同,将其分为两组(T109S / N297S )和(V39L / K41Y / T47I / N69L)。数字左侧和右侧的字母分别表示AATase和TATase残基。 T109S / N297S对已经过调查。现在将后一组(“油脂”集)放入AATase框架中,并将RetroGrease集(L39V / Y41K / I47T / L69N)替换为TATase。发现AATase框架中的Grease突变主要是降低芳香族和二羧酸底物的KMs。相反,retroGrease TATase对两种底物的kcat降低。发现将retroGrease和S109T / S297N结合在一起的六个retroHex突变可逆转TATase的底物特异性,从而产生一种天冬氨酸比苯丙氨酸具有近九倍的偏好(kcat / KM)酶。 RetroHex突变干扰了吡ido醛磷酸盐辅因子的静电环境,这通过内部亚胺的分光光度滴定来证明,该滴定法独特地显示出两个pKas(6.1和9.1)。 RetroHex还发现二聚体稳定性受损,二聚体解离的KD为350 nM,而野生型KD为4 nM。上下文依赖性和可加性分析表明,在AATase和TATase上下文中,油脂残基与周围蛋白质框架相互作用的重要性,尤其是与残基109和297相互作用的重要性。在突变对kcat / KM(Asp)的影响中,上下文相关性和协作性尤其明显。对kcat / KM(Phe)的影响与加性和上下文无关。

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