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Improving the catalytic performance of xylanase from Bacillus circulans through structure-based rational design

  • Kyoungseon Min
  • , Hoyong Kim
  • , Hyun June Park
  • , Siseon Lee
  • , Ye Jean Jung
  • , Ji Hyun Yoon
  • , Jin Suk Lee
  • , Kyoungmoon Park
  • , Young Je Yoo
  • , Jeong Chan Joo
  • Korea Institute of Energy Research
  • Korea Research Institute of Chemical Technology
  • Duksung Women's University
  • The Catholic University of Korea
  • Hongik University
  • Seoul National University

Research output: Contribution to journalArticlepeer-review

33 Scopus citations

Abstract

Endo-1,4-β-xylanase is one of the most important enzymes employed in biorefineries for obtaining fermentable sugars from hemicellulosic components. Herein, we aimed to improve the catalytic performance of Bacillus circulans xylanase (Bcx) using a structure-guided rational design. A systematic analysis of flexible motions revealed that the R49 component of Bcx (i) constrains the global conformational changes essential for substrate binding and (ii) is involved in modulating flexible motion. Site-saturated mutagenesis of the R49 residue led to the engineering of the active mutants with the trade-off between flexibility and rigidity. The most active mutant R49N improved the catalytic performance, including its catalytic efficiency (7.51-fold), conformational stability (0.7 °C improvement), and production of xylose oligomers (2.18-fold higher xylobiose and 1.72-fold higher xylotriose). The results discussed herein can be applied to enhance the catalytic performance of industrially important enzymes by controlling flexibility.

Original languageEnglish
Article number125737
JournalBioresource Technology
Volume340
DOIs
StatePublished - Nov 2021

Bibliographical note

Publisher Copyright:
© 2021 Elsevier Ltd

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • Catalytic activity
  • Flexibility
  • Saturation mutagenesis
  • Thermal stability
  • Xylanase

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