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首页> 外文期刊>Biochemistry >Acid-base chemistry of the reaction of aromatic L-amino acid decarboxylase and dopa analyzed by transient and steady-state kinetics: preferential binding of the substrate with its amino group unprotonated.
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Acid-base chemistry of the reaction of aromatic L-amino acid decarboxylase and dopa analyzed by transient and steady-state kinetics: preferential binding of the substrate with its amino group unprotonated.

机译:芳香族L-氨基酸脱羧酶和多巴的反应的酸碱化学通过瞬态和稳态动力学分析:底物与其氨基的非质子化优先结合。

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摘要

Transient and steady-state kinetic analysis of the reaction of aromatic L-amino acid decarboxylase (AADC), a pyridoxal 5'-phosphate- (PLP-) dependent enzyme, with its substrate dopa was carried out at various pH. The association of AADC and dopa to form the Michaelis complex and the subsequent transaldimination reaction to form the dopa-PLP Schiff base (external aldimine) were followed with a stopped-flow spectrophotometer. Combined with the steady-state k(cat) value, we could present a minimum mechanism for the reaction of AADC and dopa. In the mechanism, the association of the aldimine-protonated form of the enzyme (EH(+)) and the alpha-amino-group-unprotonated form of the substrate (S) is the main route leading to the Michaelis complex. In addition, the association of EH(+) and the alpha-amino-group-protonated form of the substrate (SH(+)) to form a Michaelis complex EH(+).SH(+) was also found as a minor route. The pK(a) of the alpha-amino group of dopa was expected to be decreased in the Michaelis complex, promoting the conversion of EH(+).SH(+) to EH(+).S, the species that directly undergoes transaldimination to form the external aldimine complex. The association of EH(+) and S had been identified as a minor route for the reaction of aspartate and aspartate aminotransferase (AspAT), which has an unusually low pK(a) value of the aldimine and can use the aldimine-unprotonated form (E) of the enzyme for adsorbing the prevalent species SH(+) [Hayashi and Kagamiyama (1997) Biochemistry 36, 13558-13569]. The present study implies that, in most PLP enzymes that have a high pK(a) value of the aldimine like AADC, S preferentially binds to the enzyme (EH(+)). The minor route of EH(+) + SH(+) in AADC may be related to the flexibility of the protein in the Michaelis complex, and a simulation analysis showed that the presence of this route decreases the k(cat) value while increasing the k(cat)/K(m) value. It also suggested that AADC has evolved to suppress the minor route to the extent necessary to obtain the maximal k(cat) value at neutral pH.
机译:在各种pH下进行了芳族L-氨基酸脱羧酶(AADC),吡咯醛5'-磷酸-(PLP-)依赖性酶及其底物多巴的反应的瞬态和稳态动力学分析。 AADC和多巴的缔合形成Michaelis配合物,随后的转铝反应形成多巴-PLP Schiff碱(外部亚胺),然后用停止流式分光光度计进行测量。结合稳态k(cat)值,我们可以给出AADC和多巴反应的最小机理。在该机制中,酶的亚胺基质子化形式(EH(+))与底物(S)的α-氨基基团非质子化形式的缔合是导致Michaelis复合物的主要途径。此外,EH(+)与底物(SH(+))的α-氨基基团质子化形式缔合形成Michaelis络合物EH(+)。SH(+)也被认为是次要途径。多巴的α-氨基基团的pK(a)有望在Michaelis复合物中降低,从而促进EH(+)。SH(+)到EH(+)。S(直接经历转铝作用的物种)的转化形成外部醛亚胺络合物。 EH(+)和S的缔合已被确定为天冬氨酸和天冬氨酸氨基转移酶(AspAT)反应的次要途径,其具有异常低的aldimine pK(a)值,并且可以使用aldimine非质子化形式( E),以吸附流行的物种SH(+)[Hayashi and Kagamiyama(1997)Biochemistry 36,13558-13569]。本研究表明,在大多数具有较高pK(a)值的Aldimine像AADC的PLP酶中,S优先结合该酶(EH(+))。 AADC中EH(+)+ SH(+)的次要途径可能与Michaelis复合物中蛋白质的柔韧性有关,模拟分析表明,该途径的存在降低了k(cat)值,同时增加了k(cat)/ K(m)值。还表明,AADC已发展到在中性pH值下获得最大k(cat)值所需的程度抑制次要途径。

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