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同型丝氨酸脱氢酶的分子和酶学特性

Molecular and Enzymatic Features of Homoserine Dehydrogenase from .

机构信息

Department of Chemistry, College of Natural Sciences, Soongsil University, Seoul 06978, Republic of Korea.

Department of Information Communication, Materials, and Chemistry Convergence Technology, Soongsil University, Seoul 06978, Republic of Korea.

出版信息

J Microbiol Biotechnol. 2020 Dec 28;30(12):1905-1911. doi: 10.4014/jmb.2004.04060.

Abstract

Homoserine dehydrogenase (HSD) catalyzes the reversible conversion of -aspartate-4- semialdehyde to -homoserine in the aspartate pathway for the biosynthesis of lysine, methionine, threonine, and isoleucine. HSD has attracted great attention for medical and industrial purposes due to its recognized application in the development of pesticides and is being utilized in the large scale production of -lysine. In this study, HSD from (BsHSD) was overexpressed in and purified to homogeneity for biochemical characterization. We examined the enzymatic activity of BsHSD for -homoserine oxidation and found that BsHSD exclusively prefers NADP to NAD and that its activity was maximal at pH 9.0 and in the presence of 0.4 M NaCl. By kinetic analysis, values for -homoserine and NADP were found to be 35.08 ± 2.91 mM and 0.39 ± 0.05 mM, respectively, and the values were 2.72 ± 0.06 μmol/min mg and 2.79 ± 0.11 μmol/min mg, respectively. The apparent molecular mass determined with size-exclusion chromatography indicated that BsHSD forms a tetramer, in contrast to the previously reported dimeric HSDs from other organisms. This novel oligomeric assembly can be attributed to the additional C-terminal ACT domain of BsHSD. Thermal denaturation monitoring by circular dichroism spectroscopy was used to determine its melting temperature, which was 54.8°C. The molecular and biochemical features of BsHSD revealed in this study may lay the foundation for future studies on amino acid metabolism and its application for industrial and medical purposes.

摘要

高丝氨酸脱氢酶(HSD)在天冬氨酸途径中催化-天冬氨酸-4-半醛可逆转化为-高丝氨酸,用于赖氨酸、甲硫氨酸、苏氨酸和异亮氨酸的生物合成。由于其在农药开发中的应用得到认可,HSD 在医学和工业方面引起了极大的关注,并且正在大规模生产 -赖氨酸。在这项研究中,(BsHSD)的 HSD 在 中过表达并纯化至均一性,用于生化特性分析。我们研究了 BsHSD 对 -高丝氨酸氧化的酶活性,发现 BsHSD 专一地偏爱 NADP 而不是 NAD,并且其活性在 pH 9.0 和存在 0.4 M NaCl 时最大。通过动力学分析,发现 -高丝氨酸和 NADP 的 值分别为 35.08 ± 2.91 mM 和 0.39 ± 0.05 mM,而 值分别为 2.72 ± 0.06 μmol/min mg 和 2.79 ± 0.11 μmol/min mg。凝胶过滤层析法测定的表观分子量表明,BsHSD 形成四聚体,与其他生物体报道的先前二聚体 HSD 不同。这种新型的寡聚组装归因于 BsHSD 的额外 C 端 ACT 结构域。圆二色性光谱法的热变性监测用于测定其熔点为 54.8°C。本研究中揭示的 BsHSD 的分子和生化特征可能为未来的氨基酸代谢研究及其在工业和医学中的应用奠定基础。

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