Shen Liqun, Yu Cheng, Fei Kangqing, Gao Yahui, Zhang Bo, Li Zijie
Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, Jiangsu 214122, China.
School of Food Science and Technology, Jiangnan University, Wuxi, Jiangsu 214122, China.
J Agric Food Chem. 2025 Apr 9;73(14):8493-8502. doi: 10.1021/acs.jafc.5c01858. Epub 2025 Mar 26.
d-Allose is a crucial rare sugar that holds significant application value in the food, pharmaceutical, and healthcare industries. The most prevalent method for the production of d-allose is its conversion from d-allulose, which is catalyzed by l-rhamnose isomerase (l-RI). However, this enzyme demonstrates relatively low catalytic efficiency toward d-allulose. To enhance the catalytic efficiency of l-RI derived from , key amino acids in the noncatalytic pockets were mutated to improve the probability of d-allulose entering the catalytic pocket and to increase the local concentration of the substrate in the active region. Simultaneously, the impact of steric hindrance on the lid around the catalytic pocket was reduced by mutating the amino acid His99. Notably, the catalytic efficiency of the combined mutant E53D/A142G/E273D/H99A toward d-allulose was increased by 170% compared to that of the wild-type enzyme. Moreover, 168 whole cells expressing this l-RI variant achieved a 36.5% conversion rate of d-allose from 100 g/L d-allulose within 90 min. This study presents a highly efficient biocatalyst with the potential for industrial production of d-allose.
D-阿洛糖是一种重要的稀有糖,在食品、制药和医疗保健行业具有重要的应用价值。生产D-阿洛糖最普遍的方法是由L-鼠李糖异构酶(L-RI)催化将D-阿洛酮糖转化而来。然而,这种酶对D-阿洛酮糖的催化效率相对较低。为了提高源自[此处原文缺失相关信息]的L-RI的催化效率,对非催化口袋中的关键氨基酸进行了突变,以提高D-阿洛酮糖进入催化口袋的概率,并增加活性区域中底物的局部浓度。同时,通过突变氨基酸His99,减少了空间位阻对催化口袋周围盖子的影响。值得注意的是,与野生型酶相比,组合突变体E53D/A142G/E273D/H99A对D-阿洛酮糖的催化效率提高了170%。此外,表达这种L-RI变体的168个全细胞在90分钟内从100 g/L D-阿洛酮糖实现了36.5%的D-阿洛糖转化率。本研究提出了一种具有工业生产D-阿洛糖潜力的高效生物催化剂。