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[1] Fang Wang, Rong Li, Hui Jian, Zihao Huang, Yingwu Wang*, Zheng Guo*, and Renjun Gao*, Design and construction of an effective expression system with aldehyde tag for site-specific enzyme immobilization,Catalysts, 2020, 10(4), 410.
[2] Dongni Liu, Lin Deng, Dan Wang, Wei Li, Renjun Gao*,“Bridge regions” regulate catalysis and protein stability of acylpeptide hydrolase, Biochemical Engineering Journal, 2019, 145, 42-52.
[3] Wei Li, Dongni Liu, Xu Geng, Zhengqiang Li* and Renjun Gao*, Real-time regulation of catalysis by remotecontrolled enzyme-conjugated gold nanorod composites for aldol reaction-based applications, Catalysis Science & Technology, 2019, 2221-2230.
[4] Ye Zhou, Bianca Pérez, Weiwei Hao, Jiabao Lv, Renjun Gao*, Zheng Guo*, The additive mutational effects from surface charge engineering: A compromise between enzyme activity, thermostability and ionic liquid tolerance, Biochemical Engineering Journal, 2019, 148,195-204.
[5] Ye Zhou, Nykola C. Jones, Jannik Nedergaard Pedersen, Bianca P8rez, S?ren Vr?nning Hoffmann, Steen Vang Petersen, Jan Skov Pedersen, Adam Perriman, Peter Kristensen, Renjun Gao*, and Zheng Guo*, Insight into the Structure and Activity of Surface-Engineered Lipase Biofluids, ChemBioChem, 2019, 20, 1266-1272.
[6] Jiabao Lyu, Zidan Li, Juncheng Men, Ruyun Jiang, Guilin Tang, Ye Zhou, Renjun Gao*, Covalent immobilization of Bacillus subtilis lipase A on Fe3O4 nanoparticles by aldehyde tag: An ideal immobilization with minimal chemical modification, Process Biochemistry, 2019, 81, 63-69.
[7] Dongni Liu, Wei Li, Xiaoyu Jiang, Shuju Bai, Jiyang Liu, Xutong Liu, Yuhua Shi, Ziyu Kuai, Wei Kong, Renjun Gao* and Yaming Shan*, Using near-infrared enhanced thermozyme and scFv dual-conjugated Au nanorods for detection and targeted photothermal treatment of Alzheimer’s disease, Theranostics, 2019, 9(8), 2268-2281.
[8] Jingwen Yang, Renjun Gao, Ye Zhou, Sampson Anankanbil, Jingbo Li, Guiqiu Xie*, Zheng Guo*, β-Glucosidase from Thermotoga naphthophila RKU-10 for exclusive synthesis of galactotrisaccharides: Kinetics and thermodynamics insight into reaction mechanism, Food Chemistry, 2018, 240, 1:422-429
[9] Jingwen Yang, Bianca Pérez, Sampson Anankanbil, Jingbo Li, Ye Zhou, Renjun Gao*, Zheng Guo*, Valorizing Dairy Waste: Thermophilic Biosynthesis of a Novel Ascorbic Acid Derivative, Journal of Agricultural and Food Chemistry, 2017, 65(41): 9087-9093.
[10] Jingwen Yang, Qi Wang, Ye Zhou, Jingbo Li, Renjun Gao*, Zheng Guo*, Engineering T. naphthophila β-glucosidase for enhanced synthesis of galactooligosaccharides by site-directed mutagenesis, Biochemical Engineering Journal, 2017, 127, 15:1-8.
[11] Jingwen Yang, Bianca Pérez, Sampson Anankanbil, Jingbo Li, Renjun Gao*, and Zheng Guo*, Enhanced Synthesis of Alkyl Galactopyranoside by Thermotoga naphthophila β-Galactosidase Catalyzed Transglycosylation: Kinetic Insight of a Functionalized Ionic Liquid-Mediated System, ACS Sustainable Chem. Eng. 2017, 5, 2006-2014.
[12] Ye Zhou, Guiqiu Xie, Lin Chang, Yan Wang, Renjun Gao*, Identification of an archaeal maltooligosyltrehalose trehalohydrolase encoded by an interrupted gene, Extremophile, 2017, 21:537-549.
[13] Xiaoxiao Yu, Bianca Pérez, Zhefei Zhang, Renjun Gao* and Zheng Guo*, Mining catalytic promiscuity from Thermophilic archaea: an acyl-peptide releasing enzyme from Sulfolobus tokodaii (ST0779) for nitroaldol reactions, Green Chemistry, 2016, 18, 2753-2761.
[14] Jingwen Yang, Xiaochen Chen, Dahai Yu, Renjun Gao*. Microwave-assisted synthesis of butyl galactopyranoside catalyzed by β-galactosidase from thermotoga naphthophila RKU-10. Process Biochemistry, 2016, 51, 1: 53-58.
[15] Hui Jian, Yingwu Wang*, Yan Bai, Rong Li, Renjun Gao*, Site-Specific, Covalent Immobilization of Dehalogenase ST2570 Catalyzed by Formylglycine-Generating Enzymes and Its Application in Batch and Semi-Continuous Flow Reactors, Molecules, 2016, 21,7:895.