Jerzy Haber Institute of Catalysis and Surface Chemistry Polish Academy of Sciences, Niezapominajek 8, 30-239 Krakow, Poland.
Institute of Chemical and Environmental Engineering, Slovak Technical University, Radlinského 9, 812 37 Bratislava, Slovakia.
Int J Mol Sci. 2024 Jul 5;25(13):7385. doi: 10.3390/ijms25137385.
Derived from the denitrifying bacterium EbN1 ( sp.), the enzyme -1-(4-hydroxyphenyl)-ethanol dehydrogenase (S-HPED) belongs to the short-chain dehydrogenase/reductase family. Using research techniques like UV-Vis spectroscopy, dynamic light scattering, thermal-shift assay and HPLC, we investigated the catalytic and structural stability of S-HPED over a wide temperature range and within the pH range of 5.5 to 9.0 under storage and reaction conditions. The relationship between aggregation and inactivation of the enzyme in various pH environments was also examined and interpreted. At pH 9.0, where the enzyme exhibited no aggregation, we characterized thermally induced enzyme inactivation. Through isothermal and multitemperature analysis of inactivation data, we identified and confirmed the first-order inactivation mechanism under these pH conditions and determined the kinetic parameters of the inactivation process. Additionally, we report the positive impact of glucose as an enzyme stabilizer, which slows down the dynamics of S-HPED inactivation over a wide range of pH and temperature and limits enzyme aggregation. Besides characterizing the stability of S-HPED, the enzyme's catalytic activity and high stereospecificity for 10 prochiral carbonyl compounds were positively verified, thus expanding the spectrum of substrates reduced by S-HPED. Our research contributes to advancing knowledge about the biocatalytic potential of this catalyst.
来源于脱氮细菌 EbN1(sp.),酶 1-(4-羟基苯基)-乙醇脱氢酶(S-HPED)属于短链脱氢酶/还原酶家族。我们使用紫外可见光谱、动态光散射、热移测定和高效液相色谱等研究技术,在储存和反应条件下,在 5.5 至 9.0 的 pH 范围内,研究了 S-HPED 在较宽温度范围内的催化和结构稳定性。还研究和解释了在不同 pH 环境下酶聚集和失活之间的关系。在 pH 9.0 下,酶没有聚集,我们对热诱导的酶失活进行了表征。通过对失活数据的等温线和多温度分析,我们在这些 pH 条件下确定并确认了一级失活机制,并确定了失活过程的动力学参数。此外,我们报告了葡萄糖作为酶稳定剂的积极影响,它在较宽的 pH 和温度范围内减缓了 S-HPED 失活的动力学,并限制了酶的聚集。除了对 S-HPED 的稳定性进行表征外,还对该酶对 10 个前手性羰基化合物的高立体特异性的催化活性进行了积极验证,从而扩展了 S-HPED 还原的底物范围。我们的研究有助于提高对这种催化剂的生物催化潜力的认识。