Bian Jiahao, Hao Junyao, Yang Guang-Yu
State Key Laboratory of Microbial Metabolism, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai 200240, China.
Sheng Wu Gong Cheng Xue Bao. 2022 Dec 25;38(12):4601-4614. doi: 10.13345/j.cjb.220219.
Creatinine levels in biological fluids are important indicators for the clinical evaluation of renal function. Creatinase (CRE, EC3.5.3.3) is one of the key enzymes in the enzymatic measurement of creatinine concentration, and it is also the rate-limiting enzyme in the whole enzymatic cascade system. The poor catalytic activity of CRE severely limits its clinical and industrial applications. To address this issue, a semi-rational design is applied to increase the activity of a creatinase from sp. KS-85 (Al-CRE). By high-throughput screen of saturation mutagenesis libraries on the selected hotspot mutations, multiple variant enzymes with increased activity are obtained. The five-point best variant enzyme (I304L/F395V/K351V/Y63S/Q88A) were further obtained by recombine the improved mutations sites that to showed a 2.18-fold increased specific activity. Additionally, structure analysis is conducted to understand the mechanism of the activity change. This study paves the way for a better practical application of creatinase and may help further understand its catalytic mechanism.
生物体液中的肌酐水平是肾功能临床评估的重要指标。肌酸酶(CRE,EC3.5.3.3)是酶法测定肌酐浓度的关键酶之一,也是整个酶促级联系统中的限速酶。CRE较差的催化活性严重限制了其临床和工业应用。为了解决这个问题,采用半理性设计提高了来自sp. KS-85的肌酸酶(Al-CRE)的活性。通过对选定热点突变的饱和诱变文库进行高通量筛选,获得了多个活性增强的变体酶。通过重组显示比活性提高2.18倍的改进突变位点,进一步获得了五点最佳变体酶(I304L/F395V/K351V/Y63S/Q88A)。此外,还进行了结构分析以了解活性变化的机制。本研究为肌酸酶更好的实际应用铺平了道路,并可能有助于进一步了解其催化机制。