Development of thermostable sucrose phosphorylase by semi-rational design for efficient biosynthesis of alpha-D-glucosylglycerol

Author:

Xia Yuanyuan,Li Xiaoyu,Yang Linli,Luo Xiaozhou,Shen Wei,Cao Yu,Peplowski LukaszORCID,Chen XianzhongORCID

Abstract

Abstract Sucrose phosphorylase (SPase) can specifically catalyze transglycosylation reactions and can be used to enzymatically synthesize α-D-glycosides. However, the low thermostability of SPase has been a bottleneck for its industrial application. In this study, a SPase gene from Leuconostoc mesenteroides ATCC 12,291 (LmSPase) was synthesized with optimized codons and overexpressed successfully in Escherichia coli. A semi-rational design strategy that combined the FireProt (a web server designing thermostable proteins), structure–function analysis, and molecular dynamic simulations was used to improve the thermostability of LmSPase. Finally, one single-point mutation T219L and a combination mutation I31F/T219L/T263L/S360A (Mut4) with improved thermostability were obtained. The half-lives at 50 °C of T219L and Mut4 both increased approximately two-fold compared to that of wild-type LmSPase (WT). Furthermore, the two variants T219L and Mut4 were used to produce α-D-glucosylglycerol (αGG) from sucrose and glycerol by incubating with 40 U/mL crude extracts at 37 °C for 60 h and achieved the product concentration of 193.2 ± 12.9 g/L and 195.8 ± 13.1 g/L, respectively, which were approximately 1.3-fold higher than that of WT (150.4 ± 10.0 g/L). This study provides an effective strategy for improving the thermostability of an industrial enzyme. Key points Predicted potential hotspot residues directing the thermostability of LmSPase by semi-rational design Screened two positive variants with higher thermostability and higher activity Synthesized α-D-glucosylglycerol to a high level by two screened positive variants

Funder

National Natural Science Foundation of China

the China Postdoctoral Science Foundation

Natural Science Foundation of Jiangsu Province

Higher Education Discipline Innovation Project

the Program of the Key Laboratory of Industrial Biotechnology, Ministry of Education

Publisher

Springer Science and Business Media LLC

Subject

Applied Microbiology and Biotechnology,General Medicine,Biotechnology

Reference41 articles.

1. Alford RF, Leaver-Fay A, Jeliazkov JR, O’Meara MJ, DiMaio FP, Park H, Shapovalov MV, Renfrew PD, Mulligan VK, Kappel K, Labonte JW, Pacella MS, Bonneau R, Bradley P, Dunbrack RL Jr, Das R, Baker D, Kuhlman B, Kortemme T, Gray JJ (2017) The Rosetta All-atom energy function for macromolecular modeling and design. J Chem Theory Comput 13:3031–3048. https://doi.org/10.1021/acs.jctc.7b00125

2. Bednar D, Beerens K, Sebestova E, Bendl J, Khare S, Chaloupkova R, Prokop Z, Brezovsky J, Baker D, Damborsky J (2015) FireProt: energy- and evolution-based computational design of thermostable multiple-point mutants. PLoS Comput Biol 11:e1004556. https://doi.org/10.1371/journal.pcbi.1004556

3. Bolivar JM, Luley-Goedl C, Leitner E, Sawangwan T, Nidetzky B (2017) Production of glucosyl glycerol by immobilized sucrose phosphorylase: options for enzyme fixation on a solid support and application in microscale flow format. J Biotechnol 257:131–138. https://doi.org/10.1016/j.jbiotec.2017.01.019

4. Cerdobbel A, De Winter K, Aerts D, Kuipers R, Joosten H-J, Soetaert W, Desmet T (2011) Increasing the thermostability of sucrose phosphorylase by a combination of sequence- and structure-based mutagenesis. Protein Eng Des Sel 24:829–834. https://doi.org/10.1093/protein/gzr042

5. Chen Y, Zhao Y, Zhou X, Liu N, Ming D, Zhu L, Jiang L (2021) Improving the thermostability of trehalose synthase from Thermomonospora curvata by covalent cyclization using peptide tags and investigation of the underlying molecular mechanism. Int J Biol Macromol 168:13–21. https://doi.org/10.1016/j.ijbiomac.2020.11.195

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