Literature DB >> 23665501

Cloning and characterization of the glycoside hydrolases that remove xylosyl groups from 7-β-xylosyl-10-deacetyltaxol and its analogues.

Hai-Li Cheng1, Rui-Yu Zhao, Tian-Jiao Chen, Wen-Bo Yu, Fen Wang, Ke-Di Cheng, Ping Zhu.   

Abstract

Paclitaxel, a natural antitumor compound, is produced by yew trees at very low concentrations, causing a worldwide shortage of this important anticancer medicine. These plants also produce significant amounts of 7-β-xylosyl-10-deacetyltaxol, which can be bio-converted into 10-deacetyltaxol for the semi-synthesis of paclitaxel. Some microorganisms can convert 7-β-xylosyl-10-deacetyltaxol into 10-deacetyltaxol, but the bioconversion yield needs to be drastically improved for industrial applications. In addition, the related β-xylosidases of these organisms have not yet been defined. We set out to discover an efficient enzyme for 10-deacetyltaxol production. By combining the de novo sequencing of β-xylosidase isolated from Lentinula edodes with RT-PCR and the rapid amplification of cDNA ends, we cloned two cDNA variants, Lxyl-p1-1 and Lxyl-p1-2, which were previously unknown at the gene and protein levels. Both variants encode a specific bifunctional β-d-xylosidase/β-d-glucosidase with an identical ORF length of 2412 bp (97% identity). The enzymes were characterized, and their 3.6-kb genomic DNAs (G-Lxyl-p1-1, G-Lxyl-p1-2), each harboring 18 introns, were also obtained. Putative substrate binding motifs, the catalytic nucleophile, the catalytic acid/base, and potential N-glycosylation sites of the enzymes were predicted. Kinetic analysis of both enzymes showed kcat/Km of up to 1.07 s(-1)mm(-1) against 7-β-xylosyl-10-deacetyltaxol. Importantly, at substrate concentrations of up to 10 mg/ml (oversaturated), the engineered yeast could still robustly convert 7-β-xylosyl-10-deacetyltaxol into 10-deacetyltaxol with a conversion rate of over 85% and a highest yield of 8.42 mg/ml within 24 h, which is much higher than those reported previously. Therefore, our discovery might lead to significant progress in the development of new 7-β-xylosyl-10-deacetyltaxol-converting enzymes for more efficient use of 7-β-xylosyltaxanes to semi-synthesize paclitaxel and its analogues. This work also might lead to further studies on how these enzymes act on 7-β-xylosyltaxanes and contribute to the growing database of glycoside hydrolases.

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Year:  2013        PMID: 23665501      PMCID: PMC3734582          DOI: 10.1074/mcp.M113.030619

Source DB:  PubMed          Journal:  Mol Cell Proteomics        ISSN: 1535-9476            Impact factor:   5.911


  28 in total

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Review 10.  Taxol (paclitaxel): mechanisms of action.

Authors:  S B Horwitz
Journal:  Ann Oncol       Date:  1994       Impact factor: 32.976

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Review 1.  Engineered biosynthesis of natural products in heterologous hosts.

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2.  Pilot studies on scale-up biocatalysis of 7-β-xylosyl-10-deacetyltaxol and its analogues by an engineered yeast.

Authors:  Wan-Cang Liu; Ping Zhu
Journal:  J Ind Microbiol Biotechnol       Date:  2015-04-10       Impact factor: 3.346

3.  Improving the Catalytic Property of the Glycoside Hydrolase LXYL-P1-2 by Directed Evolution.

Authors:  Jing-Jing Chen; Xiao Liang; Hui-Xian Li; Tian-Jiao Chen; Ping Zhu
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4.  Combinatorial mutation on the β-glycosidase specific to 7-β-xylosyltaxanes and increasing the mutated enzyme production by engineering the recombinant yeast.

Authors:  Jing-Jing Chen; Xiao Liang; Fen Wang; Yan-Hua Wen; Tian-Jiao Chen; Wan-Cang Liu; Ting Gong; Jin-Ling Yang; Ping Zhu
Journal:  Acta Pharm Sin B       Date:  2018-11-27       Impact factor: 11.413

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6.  Functional and structural properties of a novel cellulosome-like multienzyme complex: efficient glycoside hydrolysis of water-insoluble 7-xylosyl-10-deacetylpaclitaxel.

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8.  Scaling-up Fermentation of Pichia pastoris to demonstration-scale using new methanol-feeding strategy and increased air pressure instead of pure oxygen supplement.

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9.  Improving 10-deacetylbaccatin III-10-β-O-acetyltransferase catalytic fitness for Taxol production.

Authors:  Bing-Juan Li; Hao Wang; Ting Gong; Jing-Jing Chen; Tian-Jiao Chen; Jin-Ling Yang; Ping Zhu
Journal:  Nat Commun       Date:  2017-05-18       Impact factor: 14.919

  9 in total

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