School of Chemistry and Life Sciences, Suzhou University of Science and Technology, Suzhou, 215009, PR China.
Fujian Key Laboratory of Marine Enzyme Engineering, College of Biosciences and Engineering, Fuzhou University, Fuzhou, 350116, PR China.
Enzyme Microb Technol. 2021 Aug;148:109789. doi: 10.1016/j.enzmictec.2021.109789. Epub 2021 Mar 26.
Ribose-5-phosphate isomerase A (RpiA) is of great importance in biochemistry research, however its application in biotechnology has not been fully explored. In this study the activity of RpiA from Ochrobactrum sp. CSL1 (OsRpiA) towards D-allose was engineered based on sequential and structural analyses. Strategies of alanine scanning, rational design and saturated mutagenesis were employed to create three mutant libraries. A single mutant of K124A showed a 45 % activity improvement towards D-allose. The reaction properties of the mutant were analyzed, and a shift of optimal pH and higher thermal stability at low reaction temperatures were identified. The conversion of D-allose was also improved by 40 % using K124A, and higher activities on major substrates were found in the mutant's substrate scope, implying its application potential in rare sugar preparation. Kinetics analysis revealed that K of K124A mutant decreased by 12 % and the catalytic efficiency increased by 65 % towards D-allose. Moreover, molecular dynamics simulation illustrated the binding of substrate and K124A was more stable than that of the wild-type. The shorter distance and more relax bond angle between the catalytic residue of K124A and D-allose explained the activity improvement in detail. This study highlights the potential of OsRpiA as a biocatalyst for rare sugar preparation, and provides distinct evidences for its catalytic mechanism.
核酮糖-5-磷酸异构酶 A(RpiA)在生物化学研究中具有重要意义,但它在生物技术中的应用尚未得到充分探索。在这项研究中,基于序列和结构分析,对来自 Ochrobactrum sp. CSL1(OsRpiA)的 RpiA 对 D-阿洛糖的活性进行了工程改造。采用丙氨酸扫描、合理设计和饱和诱变策略创建了三个突变文库。K124A 的单个突变体对 D-阿洛糖的活性提高了 45%。分析了突变体的反应特性,发现最佳 pH 值发生偏移,在低反应温度下具有更高的热稳定性。使用 K124A 还将 D-阿洛糖的转化率提高了 40%,并且在突变体的底物范围内发现了对主要底物的更高活性,这表明其在稀有糖制备中的应用潜力。动力学分析表明,K124A 突变体的 K 值降低了 12%,对 D-阿洛糖的催化效率提高了 65%。此外,分子动力学模拟表明,底物与 K124A 的结合比野生型更稳定。K124A 的催化残基与 D-阿洛糖之间的距离更短,键角更松弛,这详细解释了活性的提高。本研究强调了 OsRpiA 作为稀有糖制备生物催化剂的潜力,并为其催化机制提供了明确的证据。