Search

The GH10 and GH48 dual-functional catalytic domains from a multimodular glycoside hydrolase synergize in hydrolyzing both cellulose and xylan

메타 데이터

바이오화학분류
    • 바이오플라스틱
      1. 플라스틱
      2. 기타
    • 바이오정밀화학
      1. 기타
    • 화장품용 기능성소재
      1. 기타
    • 의료용 화학소재
      1. 식품첨가제
논문

The GH10 and GH48 dual-functional catalytic domains from a multimodular glycoside hydrolase synergize in hydrolyzing both cellulose and xylan

학술지

Biotechnology for biofuels

저자명

Chu, Yindi; Hao, Zhenzhen; Wang, Kaikai; Tu, Tao; Huang, Huoqing; Wang, Yuan; Bai, Ying Guo; Wang, Yaru; Luo, Huiying; Yao, Bin; Su, Xiaoyun

초록

<B>Abstract</B>Background<P>Regarding plant cell wall polysaccharides degradation, multimodular glycoside hydrolases (GHs) with two catalytic domains separated by one or multiple carbohydrate-binding domains are rare in nature. This special mode of domain organization endows the <I>Caldicellulosiruptor bescii</I> CelA (GH9-CBM3c-CBM3b-CBM3b-GH48) remarkably high efficiency in hydrolyzing cellulose. <I>Cb</I>Xyn10C/Cel48B from the same bacterium is also such an enzyme which has, however, evolved to target both xylan and cellulose. Intriguingly, the GH10 endoxylanase and GH48 cellobiohydrolase domains are both dual functional, raising the question if they can act synergistically in hydrolyzing cellulose and xylan, the two major components of plant cell wall.</P>Results<P>In this study, we discovered that <I>Cb</I>Xyn10C and <I>Cb</I>Cel48B, which stood for the N- and C-terminal catalytic domains, respectively, cooperatively released much more cellobiose and cellotriose from cellulose. In addition, they displayed intramolecular synergy but only at the early stage of xylan hydrolysis by generating higher amounts of xylooligosaccharides including xylotriose, xylotetraose, and xylobiose. When complex lignocellulose corn straw was used as the substrate, the synergy was found only for cellulose but not xylan hydrolysis.</P>Conclusion<P>This is the first report to reveal the synergy between a GH10 and a GH48 domain. The synergy discovered in this study is helpful for understanding how <I>C. bescii</I> captures energy from these recalcitrant plant cell wall polysaccharides. The insight also sheds light on designing robust and multi-functional enzymes for plant cell wall polysaccharides degradation.</P>

발행연도

2019

발행기관

Springer (Biomed Central Ltd.)

라이선스

cc-by

ISSN

1754-6834

12

1

페이지

pp.279

0건의 논문이 있습니다.

0건의 특허가 있습니다.

0건의 무역이 있습니다.

2건의 후보군 물질이 있습니다.

1 2023-12-11

논문; 2019-12-01

Export

About

Search

Trend