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2
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Electrospray multistage mass spectrometry in the negative ion mode for the unambiguous molecular and structural characterization of acidic hydrolysates from 4-O-methylglucuronoxylan generated by endoxylanases.电喷雾多级质谱负离子模式用于明确表征内切木聚糖酶产生的4-O-甲基葡糖醛酸木聚糖酸性水解产物的分子和结构。
J Mass Spectrom. 2019 Mar;54(3):213-221. doi: 10.1002/jms.4321.
2
A plasmid borne, functionally novel glycoside hydrolase family 30 subfamily 8 endoxylanase from solventogenic .溶剂梭菌来源的具有新颖功能的质体承载的糖苷水解酶家族 30 亚家族 8 内切木聚糖酶
Biochem J. 2018 May 4;475(9):1533-1551. doi: 10.1042/BCJ20180050.
3
Glucuronoxylan recognition by GH 30 xylanases: A study with enzyme and substrate variants.GH30 木聚糖酶对木二糖醛酸木聚糖的识别:通过酶和底物变体进行的研究。
Arch Biochem Biophys. 2018 Apr 2;643:42-49. doi: 10.1016/j.abb.2018.02.014. Epub 2018 Feb 22.
4
GH30 Glucuronoxylan-Specific Xylanase from Streptomyces turgidiscabies C56.链霉菌属 C56 来源的 GH30 型木聚糖酶特异性作用于木葡聚糖
Appl Environ Microbiol. 2018 Jan 31;84(4). doi: 10.1128/AEM.01850-17. Print 2018 Feb 15.
5
MolProbity: More and better reference data for improved all-atom structure validation.MolProbity:用于改进全原子结构验证的更多更好的参考数据。
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Carbohydr Res. 2017 Nov 8;451:72-80. doi: 10.1016/j.carres.2017.09.012. Epub 2017 Sep 23.
7
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8
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Mol Biol Evol. 2016 Jul;33(7):1870-4. doi: 10.1093/molbev/msw054. Epub 2016 Mar 22.
9
A glucuronoxylan-specific xylanase from a new Paenibacillus favisporus strain isolated from tropical soil of Brazil.从巴西热带土壤中分离出的新型芽孢杆菌新菌株产生的一种葡糖醛酸木聚糖特异性木聚糖酶。
Int Microbiol. 2014 Sep;17(3):175-84. doi: 10.2436/20.1501.01.220.
10
Draft Genome Sequence of Talaromyces cellulolyticus Strain Y-94, a Source of Lignocellulosic Biomass-Degrading Enzymes.纤维素解木霉Y-94菌株的基因组序列草图,木质纤维素生物质降解酶的来源
Genome Announc. 2015 Feb 26;3(1):e00014-15. doi: 10.1128/genomeA.00014-15.

丝状真菌 GH30-7 木聚糖酶 B 的结构与功能表征。

Structural and functional characterization of a bifunctional GH30-7 xylanase B from the filamentous fungus .

机构信息

From the Bioconversion Group and.

the Polymer Chemistry Group, Research Institute for Sustainable Chemistry, AIST, 1-1-1 Higashi, Tsukuba, Ibaraki 305-8565, Japan, and.

出版信息

J Biol Chem. 2019 Mar 15;294(11):4065-4078. doi: 10.1074/jbc.RA118.007207. Epub 2019 Jan 17.

DOI:10.1074/jbc.RA118.007207
PMID:30655295
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6422087/
Abstract

Glucuronoxylanases are endo-xylanases and members of the glycoside hydrolase family 30 subfamilies 7 (GH30-7) and 8 (GH30-8). Unlike for the well-studied GH30-8 enzymes, the structural and functional characteristics of GH30-7 enzymes remain poorly understood. Here, we report the catalytic properties and three-dimensional structure of GH30-7 xylanase B (Xyn30B) identified from the cellulolytic fungus Xyn30B efficiently degraded glucuronoxylan to acidic xylooligosaccharides (XOSs), including an α-1,2-linked 4--methyl-d-glucuronosyl substituent (MeGlcA). Rapid analysis with negative-mode electrospray-ionization multistage MS (ESI(-)-MS ) revealed that the structures of the acidic XOS products are the same as those of the hydrolysates (MeGlcAXyl , > 2) obtained with typical glucuronoxylanases. Acidic XOS products were further degraded by Xyn30B, releasing first xylobiose and then xylotetraose and xylohexaose as transglycosylation products. This hydrolase reaction was unique to Xyn30B, and the substrate was cleaved at the xylobiose unit from its nonreducing end, indicating that Xyn30B is a bifunctional enzyme possessing both endo-glucuronoxylanase and exo-xylobiohydrolase activities. The crystal structure of Xyn30B was determined as the first structure of a GH30-7 xylanase at 2.25 Å resolution, revealing that Xyn30B is composed of a pseudo-(α/β)-catalytic domain, lacking an α6 helix, and a small β-rich domain. This structure and site-directed mutagenesis clarified that Arg, conserved in GH30-7 glucuronoxylanases, is a critical residue for MeGlcA appendage-dependent xylan degradation. The structural comparison between Xyn30B and the GH30-8 enzymes suggests that Asn in the β2-α2 loop is involved in xylobiohydrolase activity. In summary, our findings indicate that Xyn30B is a bifunctional endo- and exo-xylanase.

摘要

木聚糖酶是内切木聚糖酶,属于糖苷水解酶家族 30 亚家族 7(GH30-7)和 8(GH30-8)。与研究充分的 GH30-8 酶不同,GH30-7 酶的结构和功能特性仍知之甚少。在这里,我们报道了从纤维素分解真菌 Xyn30B 中鉴定出的 GH30-7 木聚糖酶 B(Xyn30B)的催化特性和三维结构。Xyn30B 能够有效地将葡糖醛酸木聚糖降解为酸性木寡糖(XOS),包括α-1,2 连接的 4--甲基-d-葡萄糖醛酸基(MeGlcA)取代基。采用负离子模式电喷雾电离多级质谱(ESI(-)-MS )快速分析表明,酸性 XOS 产物的结构与用典型的葡糖醛酸木聚糖酶获得的水解产物(MeGlcAXyl , > 2)相同。酸性 XOS 产物进一步被 Xyn30B 降解,首先释放出木二糖,然后作为转糖苷产物释放出木四糖和木六糖。这种水解酶反应是 Xyn30B 所特有的,底物从其非还原端的木二糖单元被切割,表明 Xyn30B 是一种具有内切葡糖醛酸木聚糖酶和外切木二糖水解酶活性的双功能酶。Xyn30B 的晶体结构在 2.25 Å 的分辨率下被确定为第一个 GH30-7 木聚糖酶的结构,表明 Xyn30B 由一个伪(α/β)-催化结构域组成,缺少一个α6 螺旋和一个小的富含β的结构域。该结构和定点突变阐明了 GH30-7 葡糖醛酸木聚糖酶中保守的精氨酸是 MeGlcA 附属物依赖性木聚糖降解的关键残基。Xyn30B 与 GH30-8 酶的结构比较表明,β2-α2 环中的天冬酰胺参与了木二糖水解酶的活性。总之,我们的研究结果表明 Xyn30B 是一种具有内切和外切活性的双功能木聚糖酶。