AJINOMOTO Co., Inc, 1-1, Suzuki-Cho, Kawasaki-Ku, Kawasaki-Shi, Kanagawa, 210-8681, Japan.
TMDU Advanced Research Institute, Tokyo Medical and Dental University, 1-5-45 Yushima, Bunkyo-ku, Tokyo, 113-8510, Japan.
Subcell Biochem. 2021;96:355-372. doi: 10.1007/978-3-030-58971-4_10.
Thermostability is a key factor in the industrial and clinical application of enzymes, and understanding mechanisms of thermostability is valuable for molecular biology and enzyme engineering. In this chapter, we focus on the thermostability of leucine dehydrogenase (LDH, EC 1.4.1.9), an amino acid-metabolizing enzyme that is an NAD-dependent oxidoreductase which catalyzes the deamination of branched-chain l-amino acids (BCAAs). LDH from Geobacillus stearothermophilus (GstLDH) is a highly thermostable enzyme that has already been applied to quantify the concentration of BCAAs in biological specimens. However, the molecular mechanism of its thermostability had been unknown because no high-resolution structure was available. Here, we discuss the thermostability of GstLDH on the basis of its structure determined by cryo-electron microscopy. Sequence comparison with other structurally characterized LDHs (from Lysinibacillus sphaericus and Sporosarcina psychrophila) indicated that non-conserved residues in GstLDH, including Ala94, Tyr127, and the C-terminal region, are crucial for oligomeric stability through intermolecular interactions between protomers. Furthermore, NAD binding to GstLDH increased the thermostability of the enzyme as additional intermolecular interactions formed on cofactor binding. This knowledge is important for further applications and development of amino acid metabolizing enzymes in industrial and clinical fields.
热稳定性是酶在工业和临床应用中的关键因素,了解热稳定性的机制对于分子生物学和酶工程具有重要价值。在本章中,我们重点介绍亮氨酸脱氢酶(LDH,EC 1.4.1.9)的热稳定性,亮氨酸脱氢酶是一种氨基酸代谢酶,是 NAD 依赖性氧化还原酶,可催化支链 l-氨基酸(BCAAs)的脱氨作用。来自嗜热脂肪地芽孢杆菌(GstLDH)的 LDH 是一种高度热稳定的酶,已经被应用于定量生物样本中 BCAAs 的浓度。然而,由于没有高分辨率的结构,其热稳定性的分子机制尚不清楚。在这里,我们根据冷冻电子显微镜确定的结构讨论了 GstLDH 的热稳定性。与其他结构特征明确的 LDH(来自球形赖氨酸芽孢杆菌和嗜冷游动球菌)的序列比较表明,GstLDH 中的非保守残基,包括 Ala94、Tyr127 和 C 末端区域,通过单体之间的相互作用对于寡聚体稳定性至关重要。此外,NAD 与 GstLDH 的结合增加了酶的热稳定性,因为在辅因子结合时形成了额外的分子间相互作用。这些知识对于在工业和临床领域进一步应用和开发氨基酸代谢酶非常重要。