Literature DB >> 33394289

Substrate Specificities of GH8, GH39, and GH52 β-xylosidases from Bacillus halodurans C-125 Toward Substituted Xylooligosaccharides.

Koji Teramoto1, Sosyu Tsutsui1,2, Tomoko Sato3, Zui Fujimoto3, Satoshi Kaneko4,5.   

Abstract

Substrate specificities of glycoside hydrolase families 8 (Rex), 39 (BhXyl39), and 52 (BhXyl52) β-xylosidases from Bacillus halodurans C-125 were investigated. BhXyl39 hydrolyzed xylotriose most efficiently among the linear xylooligosaccharides. The activity decreased in the order of xylohexaose > xylopentaose > xylotetraose and it had little effect on xylobiose. In contrast, BhXyl52 hydrolyzed xylobiose and xylotriose most efficiently, and its activity decreased when the main chain became longer as follows: xylotetraose > xylopentaose > xylohexaose. Rex produced O-β-D-xylopyranosyl-(1 → 4)-[O-α-L-arabinofuranosyl-(1 → 3)]-O-β-D-xylopyranosyl-(1 → 4)-β-D-xylopyranose (Ara2Xyl3) and O-β-D-xylopyranosyl-(1 → 4)-[O-4-O-methyl-α-D-glucuronopyranosyl-(l → 2)]-β-D-xylopyranosyl-(1 → 4)-β-D-xylopyranose (MeGlcA2Xyl3), which lost a xylose residue from the reducing end of O-β-D-xylopyranosyl-(1 → 4)-[O-α-L-arabinofuranosyl-(1 → 3)]-O-β-D-xylopyranosyl-(1 → 4)-β-D-xylopyranosyl-(1 → 4)-β-D-xylopyranose (Ara3Xyl4) and O-β-D-xylopyranosyl-(1 → 4)-[O-4-O-methyl-α-D-glucuronopyranosyl-(1 → 2)]-β-D-xylopyranosyl-(1 → 4)-β-D-xylopyranosyl-(1 → 4)-β-D-xylopyranose (MeGlcA3Xyl4). It was considered that there is no space to accommodate side chains at subsite -1. BhXyl39 rapidly hydrolyzes the non-reducing-end xylose linkages of MeGlcA3Xyl4, while the arabinose branch does not significantly affect the enzyme activity because it degrades Ara3Xyl4 as rapidly as unmodified xylotetraose. The model structure suggested that BhXyl39 enhanced the activity for MeGlcA3Xyl4 by forming a hydrogen bond between glucuronic acid and Lys265. BhXyl52 did not hydrolyze Ara3Xyl4 and MeGlcA3Xyl4 because it has a narrow substrate binding pocket and 2- and 3-hydroxyl groups of xylose at subsite +1 hydrogen bond to the enzyme.

Entities:  

Keywords:  Aldouronic acid; Arabinoxylooligosaccharide; Glucronoxylooligosaccharide; Glycoside hydrolase family 39; Glycoside hydrolase family 52; Glycoside hydrolase family 8; β-D-xylosidase

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Year:  2021        PMID: 33394289     DOI: 10.1007/s12010-020-03451-2

Source DB:  PubMed          Journal:  Appl Biochem Biotechnol        ISSN: 0273-2289            Impact factor:   2.926


  2 in total

1.  GH30 Glucuronoxylan-Specific Xylanase from Streptomyces turgidiscabies C56.

Authors:  Tomoko Maehara; Haruka Yagi; Tomoko Sato; Mayumi Ohnishi-Kameyama; Zui Fujimoto; Kei Kamino; Yoshiaki Kitamura; Franz St John; Katsuro Yaoi; Satoshi Kaneko
Journal:  Appl Environ Microbiol       Date:  2018-01-31       Impact factor: 4.792

2.  Expression and characterization of a xylosidase (Bxyl) from Bacillus halodurans C-125.

Authors:  Yanli Liang; Xingyu Li; Hyundong Shin; Rachel R Chen; Zichao Mao
Journal:  Sheng Wu Gong Cheng Xue Bao       Date:  2009-09
  2 in total
  1 in total

1.  Understanding the Xylooligosaccharides Utilization Mechanism of Lactobacillus brevis and Bifidobacterium adolescentis: Proteins Involved and Their Conformational Stabilities for Effectual Binding.

Authors:  Ishu Khangwal; Sinosh Skariyachan; Akshay Uttarkar; Aditi G Muddebihalkar; Vidya Niranjan; Pratyoosh Shukla
Journal:  Mol Biotechnol       Date:  2021-09-20       Impact factor: 2.695

  1 in total

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