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Engineering the thermostability of d-lyxose isomerase from Caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose

d-Mannose is an attractive functional sugar that exhibits many physiological benefits on human health. The demand for low-calorie sugars and sweeteners in foods are increasingly available on the market. Some sugar isomerases, such as d-lyxose isomerase (d-LIase), can achieve an isomerization reactio...

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Autores principales: Wu, Hao, Yi, Ming, Wu, Xiaoyi, Ding, Yating, Pu, Minghui, Wen, Li, Cheng, Yunhui, Zhang, Wenli, Mu, Wanmeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10165151/
https://www.ncbi.nlm.nih.gov/pubmed/37168606
http://dx.doi.org/10.1016/j.synbio.2023.04.003
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author Wu, Hao
Yi, Ming
Wu, Xiaoyi
Ding, Yating
Pu, Minghui
Wen, Li
Cheng, Yunhui
Zhang, Wenli
Mu, Wanmeng
author_facet Wu, Hao
Yi, Ming
Wu, Xiaoyi
Ding, Yating
Pu, Minghui
Wen, Li
Cheng, Yunhui
Zhang, Wenli
Mu, Wanmeng
author_sort Wu, Hao
collection PubMed
description d-Mannose is an attractive functional sugar that exhibits many physiological benefits on human health. The demand for low-calorie sugars and sweeteners in foods are increasingly available on the market. Some sugar isomerases, such as d-lyxose isomerase (d-LIase), can achieve an isomerization reaction between d-mannose and d-fructose. However, the weak thermostability of d-LIase limits its efficient conversion from d-fructose to d-mannose. Nonetheless, few studies are available that have investigated the molecular modification of d-LIase to improve its thermal stability. In this study, computer-aided tools including FireProt, PROSS, and Consensus Finder were employed to jointly design d-LIase mutants with improved thermostability for the first time. Finally, the obtained five-point mutant M5 (N21G/E78P/V58Y/C119Y/K170P) showed high thermal stability and catalytic activity. The half-life of M5 at 65 °C was 10.22 fold, and the catalytic efficiency towards 600 g/L of d-fructose was 2.6 times to that of the wild type enzyme, respectively. Molecular dynamics simulation and intramolecular forces analysis revealed a thermostability mechanism of highly rigidity conformation, newly formed hydrogen bonds and π-cation interaction between and within protein domains, and redistributed surface electrostatic charges for the mutant M5. This research provided a promising d-LIase mutant for the industrial production of d-mannose from d-fructose.
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spelling pubmed-101651512023-05-09 Engineering the thermostability of d-lyxose isomerase from Caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose Wu, Hao Yi, Ming Wu, Xiaoyi Ding, Yating Pu, Minghui Wen, Li Cheng, Yunhui Zhang, Wenli Mu, Wanmeng Synth Syst Biotechnol Original Research Article d-Mannose is an attractive functional sugar that exhibits many physiological benefits on human health. The demand for low-calorie sugars and sweeteners in foods are increasingly available on the market. Some sugar isomerases, such as d-lyxose isomerase (d-LIase), can achieve an isomerization reaction between d-mannose and d-fructose. However, the weak thermostability of d-LIase limits its efficient conversion from d-fructose to d-mannose. Nonetheless, few studies are available that have investigated the molecular modification of d-LIase to improve its thermal stability. In this study, computer-aided tools including FireProt, PROSS, and Consensus Finder were employed to jointly design d-LIase mutants with improved thermostability for the first time. Finally, the obtained five-point mutant M5 (N21G/E78P/V58Y/C119Y/K170P) showed high thermal stability and catalytic activity. The half-life of M5 at 65 °C was 10.22 fold, and the catalytic efficiency towards 600 g/L of d-fructose was 2.6 times to that of the wild type enzyme, respectively. Molecular dynamics simulation and intramolecular forces analysis revealed a thermostability mechanism of highly rigidity conformation, newly formed hydrogen bonds and π-cation interaction between and within protein domains, and redistributed surface electrostatic charges for the mutant M5. This research provided a promising d-LIase mutant for the industrial production of d-mannose from d-fructose. KeAi Publishing 2023-04-21 /pmc/articles/PMC10165151/ /pubmed/37168606 http://dx.doi.org/10.1016/j.synbio.2023.04.003 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research Article
Wu, Hao
Yi, Ming
Wu, Xiaoyi
Ding, Yating
Pu, Minghui
Wen, Li
Cheng, Yunhui
Zhang, Wenli
Mu, Wanmeng
Engineering the thermostability of d-lyxose isomerase from Caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose
title Engineering the thermostability of d-lyxose isomerase from Caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose
title_full Engineering the thermostability of d-lyxose isomerase from Caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose
title_fullStr Engineering the thermostability of d-lyxose isomerase from Caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose
title_full_unstemmed Engineering the thermostability of d-lyxose isomerase from Caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose
title_short Engineering the thermostability of d-lyxose isomerase from Caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose
title_sort engineering the thermostability of d-lyxose isomerase from caldanaerobius polysaccharolyticus via multiple computer-aided rational design for efficient synthesis of d-mannose
topic Original Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10165151/
https://www.ncbi.nlm.nih.gov/pubmed/37168606
http://dx.doi.org/10.1016/j.synbio.2023.04.003
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