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A novel thermostable multidomain 1,4-beta-xylanase from 'Caldibacillus cellulovorans' and effect of its xylan-binding domain on enzyme activity

机译:一种来自Caldibacillus cellulovorans的新型热稳定多结构域1,4-β-木聚糖酶及其木聚糖结合域对酶活性的影响

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摘要

The nucleotide sequence of the complete xynA gene, encoding a novel multidomain xylanase XynA of 'Caldibacillus cellulovorans', was determined by genomic-walking PCR. The putative XynA comprises an N-terminal domain (D1), recently identified as a xylan-binding domain (XBD), homologous to non-catalytic thermostabilizing domains from other xylanases. D1 is followed by a xylanase catalytic domain (D2) homologous to family 10 glycosyl hydrolases. Downstream of this domain two cellulose-binding domains (CBD), D3 and D4, were found linked via proline-threonine (PT)-rich peptides. Both CBDs showed sequence similarity to family IIIb CBDs. Upstream of xynA an incomplete open reading frame was identified, encoding a putative C-terminal CBD homologous to family IIIb CBDs. Two expression plasmids encoding the N-terminal XBD plus the catalytic domain (XynAd 1/2 ) and the xylanase catalytic domain alone (XynAd2) were constructed and the biochemical properties of the recombinant enzymes compared. The absence of the XBD resulted in a decrease in thermostability of the catalytic domain from 70°C (XynAd 1/2 ) to 60°C (XynAd2). Substrate-specificity experiments and analysis of the main products released from xylan hydrolysis indicate that both recombinant enzymes act as endo-1,4-β-xylanases, but differ in their ability to cleave small xylooligosaccharides.
机译:通过基因组行走PCR确定了完整的xynA基因的核苷酸序列,该基因编码“ Caldibacillus cellulovorans”的新型多域木聚糖酶XynA。推定的XynA包含一个N末端结构域(D1),最近被鉴定为木聚糖结合结构域(XBD),与来自其他木聚糖酶的非催化热稳定结构域同源。 D1之后是与家族10糖基水解酶同源的木聚糖酶催化域(D2)。在该结构域的下游,发现两个纤维素结合结构域(CBD)D3和D4通过富含脯氨酸-苏氨酸(PT)的肽连接。两种CBD均显示出与IIIb族CBD的序列相似性。在xynA的上游,鉴定出一个不完整的开放阅读框,其编码与家族IIIb CBD同源的推定C端CBD。构建了两个编码N末端XBD加上催化结构域(XynAd 1/2)和单独的木聚糖酶催化结构域(XynAd2)的表达质粒,并比较了重组酶的生化特性。 XBD的缺失导致催化结构域的热稳定性从70°C(XynAd 1/2)降至60°C(XynAd2)。从木聚糖水解中释放的主要产物的底物特异性实验和分析表明,两种重组酶均起内-1,4-β-木聚糖酶的作用,但它们裂解小木寡糖的能力不同。

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