Department of Biochemistry and Center for Excellence in Protein and Enzyme Technology, Faculty of Science, Mahidol University, Bangkok, Thailand.
Department of Biochemistry, Faculty of Science, Kasetsart University, Bangkok, Thailand.
FEBS J. 2023 May;290(9):2449-2462. doi: 10.1111/febs.16640. Epub 2022 Oct 17.
Succinic semialdehyde dehydrogenase (SSADH) catalyses the conversion of succinic semialdehyde into succinic acid and two electrons are transferred to NAD(P) to yield NAD(P)H. Our previous work has already reported the catalytic role of Cys289 of two-cysteine SSADH from Acinetobacter baumannii (AbSSADH). However, the mechanistic role of the neighbouring conserved Cys291 and Glu255 remains unexplored. In this study, the functional roles of Cys291 and Glu255 in AbSSADH catalysis have been characterized. Results demonstrated that the E255A activity was almost completely lost, ~ 7000-fold lower than the wild-type (WT), indicating that Glu255 is very crucial and directly involved in AbSSADH catalysis. However, the C291A and C291S variants activity and catalytic turnover (k ) decreased ~ 2-fold and 9-fold respectively. To further characterize the functional roles of Cys291, we employed two pH-dependent methods; pre-steady-state burst amplitude and NADP-enzyme adduct formation. The results showed that the pK values of catalytic Cys289 measured for the WT and C291A reactions were 7.8 and 8.7-8.8, respectively, suggesting that Cys291 can lower the pK of Cys289 and consequently trigger the deprotonation of a Cys289 thiol. In addition, the Cys291 also plays a role in disulfide/sulfhydryl redox regulation for AbSSADH activity. Hence, we demonstrated for the first time the dual functions of Cys291 in enhancing the nucleophilicity of the catalytic Cys289 and regulating a disulfide/sulfhydryl redox switch for AbSSADH catalysis. The mechanistic insights into the nucleophilicity enhancement of the catalytic cysteine of AbSSADH might be applicable to understanding how the microenvironment increases cysteine reactivity in other enzymes in the aldehyde dehydrogenase superfamily.
琥珀酸半醛脱氢酶(SSADH)催化琥珀酸半醛转化为琥珀酸,同时将两个电子转移到 NAD(P),生成 NAD(P)H。我们之前的工作已经报道了鲍曼不动杆菌(AbSSADH)的双半胱氨酸 SSADH 中 Cys289 的催化作用。然而,相邻保守的 Cys291 和 Glu255 的作用机制仍未被探索。在这项研究中,我们对 AbSSADH 催化中 Cys291 和 Glu255 的功能作用进行了表征。结果表明,E255A 活性几乎完全丧失,比野生型(WT)低约 7000 倍,表明 Glu255 非常关键且直接参与 AbSSADH 催化。然而,C291A 和 C291S 变体的活性和催化周转率(k )分别下降了约 2 倍和 9 倍。为了进一步表征 Cys291 的功能作用,我们采用了两种依赖 pH 的方法;预稳态爆发幅度和 NADP-酶加合物形成。结果表明,WT 和 C291A 反应的催化 Cys289 的 pK 值分别为 7.8 和 8.7-8.8,表明 Cys291 可以降低 Cys289 的 pK 值,从而引发 Cys289 巯基的去质子化。此外,Cys291 还在 AbSSADH 活性的二硫键/巯基氧化还原调节中发挥作用。因此,我们首次证明了 Cys291 在增强催化 Cys289 的亲核性和调节 AbSSADH 催化的二硫键/巯基氧化还原开关方面的双重作用。对 AbSSADH 中催化半胱氨酸亲核性增强的机制研究可能有助于理解微环境如何提高醛脱氢酶超家族中其他酶的半胱氨酸反应性。