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      Engineering of Cyclodextrin Glycosyltransferase Reveals pH-Regulated Mechanism of Enhanced Long-Chain Glycosylated Sophoricoside Specificity

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          Abstract

          The low water solubility of sophoricoside seriously limits its applications in the food and pharmaceutical industries. Long-chain glycosylated sophoricosides show greatly improved water solubility. Here, the product specificity of cyclodextrin glycosyltransferase (CGTase) for long-chain glycosylated sophoricosides was significantly affected by pH. Our results reveal the pH-regulated mechanism of the glycosylated product specificity of CGTase. This work adds to our understanding of the synthesis of long-chain glycosylated sophoricosides and provides guidance for exploring related product specificity of CGTase based on pH regulation.

          ABSTRACT

          Sophoricoside glycosylated derivatives, especially long-chain glycosylated sophoricosides (LCGS), have greatly improved water solubility compared with sophoricoside. Here, cyclodextrin glycosyltransferase from Paenibacillus macerans ( PmCGTase) was employed for sophoricoside glycosylation. Saturation mutagenesis of alanine 156, alanine 166, glycine 173, and leucine 174 was performed due to their nonconservative properties among α-, β-, and γ-CGTases with different product specificities. Variants L174P, A156V/L174P, and A156V/L174P/A166Y greatly improved the product specificity for LCGS. pH significantly affected the extent of glycosylation catalyzed by the variants. Further investigations revealed that the pH-regulated mechanism for LCGS synthesis mainly depends on a disproportionation route at a lower pH (pH 4) and a cyclization-coupling route at a higher pH (pH 8) and equivalent effects of cyclization-coupling and disproportionation routes at pH 5. Whereas short-chain glycosylated sophoricosides (SCGS) are primarily produced via disproportionation of maltodextrin at pH 4 and secondary disproportionation of LCGS at pH 8. At pH 5, SCGS synthesis mainly depends on a hydrolysis route by the wild type (WT) and a secondary disproportionation route by variant A156V/L174P/A166Y. Kinetics analysis showed a decreased K m value of variant A156V/L174P/A166Y. Dynamics simulation results demonstrated that the improved LCGS specificity of the variant is possibly attributed to the enhanced affinity to long-chain substrates, which may be caused by the changes of hydrogen bond interactions at the –5, –6, and –7 subsites. Our results reveal a pH-regulated mechanism for product specificity of CGTase and provide guidance for engineering CGTase toward products with different sugar chain lengths.

          IMPORTANCE The low water solubility of sophoricoside seriously limits its applications in the food and pharmaceutical industries. Long-chain glycosylated sophoricosides show greatly improved water solubility. Here, the product specificity of cyclodextrin glycosyltransferase (CGTase) for long-chain glycosylated sophoricosides was significantly affected by pH. Our results reveal the pH-regulated mechanism of the glycosylated product specificity of CGTase. This work adds to our understanding of the synthesis of long-chain glycosylated sophoricosides and provides guidance for exploring related product specificity of CGTase based on pH regulation.

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          Author and article information

          Contributors
          Role: Editor
          Journal
          Appl Environ Microbiol
          Appl. Environ. Microbiol
          aem
          aem
          AEM
          Applied and Environmental Microbiology
          American Society for Microbiology (1752 N St., N.W., Washington, DC )
          0099-2240
          1098-5336
          31 January 2020
          18 March 2020
          April 2020
          : 86
          : 7
          : e00004-20
          Affiliations
          [a ] Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, China
          [b ] Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, China
          North Carolina State University
          Author notes
          Address correspondence to Ye Ni, yni@ 123456jiangnan.edu.cn .

          Citation Han R, Ni J, Zhou J, Dong J, Xu G, Ni Y. 2020. Engineering of cyclodextrin glycosyltransferase reveals pH-regulated mechanism of enhanced long-chain glycosylated sophoricoside specificity. Appl Environ Microbiol 86:e00004-20. https://doi.org/10.1128/AEM.00004-20.

          Author information
          https://orcid.org/0000-0003-4887-7517
          Article
          PMC7082579 PMC7082579 7082579 00004-20
          10.1128/AEM.00004-20
          7082579
          32005733
          3b2f970a-6abd-4abe-8df4-c90c1b95f0c5
          Copyright © 2020 American Society for Microbiology.

          All Rights Reserved.

          History
          : 5 January 2020
          : 22 January 2020
          Page count
          supplementary-material: 1, Figures: 8, Tables: 1, Equations: 0, References: 38, Pages: 14, Words: 7653
          Funding
          Funded by: National key research and development program of china;
          Award ID: 2018YFA0901700
          Award Recipient :
          Funded by: National first-class discipline of light industry technology and engineering;
          Award ID: LITE2018-07
          Award Recipient :
          Funded by: National Natural Science Foundation of China (NSF), https://doi.org/10.13039/501100001809;
          Award ID: 31871738
          Award Recipient :
          Funded by: National Natural Science Foundation of China (NSF), https://doi.org/10.13039/501100001809;
          Award ID: 21776112
          Award Recipient :
          Categories
          Enzymology and Protein Engineering
          Custom metadata
          April 2020

          sophoricoside glycosylation,cyclodextrin glycosyltransferase,long-chain glycosylated product specificity,saturation mutagenesis,molecular dynamics

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