Department of Physics, The Chinese University of Hong Kong, Shatin, New Territories, Hong Kong, China.
Biochemistry. 2024 Aug 6;63(15):1980-1990. doi: 10.1021/acs.biochem.4c00144. Epub 2024 Jul 15.
Aromatic amino acid decarboxylases (AAADs) are pyridoxal-5'-phosphate (PLP)-dependent enzymes that catalyze the decarboxylation of aromatic amino acid l-amino acids. In plants, apart from canonical AAADs that catalyze the straightforward decarboxylation reaction, other members of the AAAD family function as aromatic acetaldehyde synthases (AASs) and catalyze more complex decarboxylation-dependent oxidative deamination. The interconversion between a canonical AAAD and an AAS can be achieved by a single tyrosine-phenylalanine mutation in the large catalytic loop of the enzymes. In this work, we report implicit ligand sampling (ILS) calculations of the canonical l-tyrosine decarboxylase from (TyDC) that catalyzes l-tyrosine decarboxylation and its Y350F mutant that instead catalyzes the decarboxylation-dependent oxidative deamination of the same substrate. Through comparative analysis of the resulting three-dimensional (3D) O free energy profiles, we evaluate the impact of the key tyrosine/phenylalanine mutation on oxygen accessibility to both the wild type and Y350F mutant of TyDC. Additionally, using molecular dynamics (MD) simulations of the l-tryptophan decarboxylase from (TDC), we further investigate the dynamics of a large catalytic loop known to be indispensable to all AAADs. Results of our ILS and MD calculations shed new light on how key structural elements and loop conformational dynamics underlie the enzymatic functions of different members of the plant AAAD family.
芳香族氨基酸脱羧酶(AAADs)是依赖吡哆醛-5'-磷酸(PLP)的酶,可催化芳香族氨基酸 L-氨基酸的脱羧反应。在植物中,除了催化直接脱羧反应的典型 AAAD 外,AAAD 家族的其他成员还作为芳香乙醛合酶(AAS)发挥作用,并催化更复杂的依赖脱羧的氧化脱氨反应。典型 AAAD 和 AAS 之间的相互转换可以通过酶的大催化环中的单个酪氨酸-苯丙氨酸突变来实现。在这项工作中,我们报告了对催化 L-酪氨酸脱羧的 (TyDC)的典型 L-酪氨酸脱羧酶的隐式配体采样(ILS)计算,以及其 Y350F 突变体,该突变体反而催化相同底物的依赖脱羧的氧化脱氨反应。通过对所得三维(3D)O 自由能曲线的比较分析,我们评估了关键酪氨酸/苯丙氨酸突变对氧对 TyDC 野生型和 Y350F 突变体的可及性的影响。此外,我们还使用 (TDC)的 L-色氨酸脱羧酶的分子动力学(MD)模拟,进一步研究了已知对所有 AAAD 必不可少的大催化环的动力学。我们的 ILS 和 MD 计算结果为不同植物 AAAD 家族成员的酶功能如何由关键结构元素和环构象动力学来支撑提供了新的见解。