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全球海洋和人类肠道微生物群参与海藻降解的完整木聚糖利用途径及调控机制

Complete xylan utilization pathway and regulation mechanisms involved in marine algae degradation by cosmopolitan marine and human gut microbiota.

作者信息

Sun Hai-Ning, Chen Xiu-Lan, Wang Yan, Zhu Yan-Ping, Teng Zhao-Jie, Cao Hai-Yan, Xu Ting-Ting, Chen Yin, Zhang Yu-Zhong, Zhao Fang

机构信息

State Key Laboratory of Microbial Technology, Shandong University, Qingdao 266237, Shandong Province, China.

MOE Key Laboratory of Evolution and Marine Biodiversity, Frontiers Science Center for Deep Ocean Multispheres and Earth System & College of Marine Life Sciences, Ocean University of China, Qingdao 266003, Shandong Province, China.

出版信息

ISME J. 2025 Jan 2;19(1). doi: 10.1093/ismejo/wraf085.

DOI:10.1093/ismejo/wraf085
PMID:40401997
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12125979/
Abstract

β-1,3-xylan, typically found in marine algae as a major cell wall polysaccharide, represents an overlooked pool of organic carbon in global oceans. Whilst our understanding of microbial catabolism of xylans has improved significantly, particularly from biotransformations of terrestrial plant biomass that are typically composed of β-1,4-xylans, knowledge on how microbes utilize β-1,3-xylan remains limited. Here, we describe the discovery of a complete pathway for β-1,3-xylan catabolism and its regulation in a marine bacterium, Vibrio sp. EA2. The pathway starts with the extracellular decomposition of β-1,3-xylan by two β-1,3-xylanases into β-1,3-xylooligomers, which are mainly internalized by an ATP-binding cassette transporter. The substrate binding protein of this transporter has an L-shaped substrate binding pocket to preferentially bind β-1,3-xylooligomers. Subsequently, two intracellular β-1,3-xylosidases degrade β-1,3-xylooligomers into fermentable xylose. The pathway is activated by a unique regulator with xylose being the effector. This β-1,3-xylan catabolic pathway differs from that of β-1,4-xylan catabolism in enzymes, transporters, and regulators. Bioinformatic analysis suggests that the β-1,3-xylan catabolism pathway is not only prevalent in diverse marine bacteria and cosmopolitan human gut microbiota, such as Bacteroides, but also likely transferred horizontally from algae-degrading marine bacteria to the human gut.

摘要

β-1,3-木聚糖是海藻中主要的细胞壁多糖,是全球海洋中一个被忽视的有机碳库。虽然我们对木聚糖的微生物分解代谢的理解有了显著提高,特别是对通常由β-1,4-木聚糖组成的陆地植物生物质的生物转化,但关于微生物如何利用β-1,3-木聚糖的知识仍然有限。在这里,我们描述了在海洋细菌弧菌属EA2中发现的β-1,3-木聚糖分解代谢的完整途径及其调控。该途径始于两种β-1,3-木聚糖酶将β-1,3-木聚糖在细胞外分解为β-1,3-木寡糖,这些木寡糖主要通过一个ATP结合盒转运体内化。该转运体的底物结合蛋白有一个L形的底物结合口袋,优先结合β-1,3-木寡糖。随后,两种细胞内β-1,3-木糖苷酶将β-1,3-木寡糖降解为可发酵的木糖。该途径由一种独特的调节因子激活,木糖作为效应物。这种β-1,3-木聚糖分解代谢途径在酶、转运体和调节因子方面与β-1,4-木聚糖分解代谢途径不同。生物信息学分析表明,β-1,3-木聚糖分解代谢途径不仅在多种海洋细菌和世界性的人类肠道微生物群(如拟杆菌属)中普遍存在,而且可能从降解藻类的海洋细菌水平转移到人类肠道。

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ISME J. 2025 Jan 2;19(1). doi: 10.1093/ismejo/wraf085.
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Marine Bacteroidetes enzymatically digest xylans from terrestrial plants.海洋拟杆菌通过酶解作用来消化陆地植物中的木聚糖。
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Xylan degradation by the human gut Bacteroides xylanisolvens XB1A(T) involves two distinct gene clusters that are linked at the transcriptional level.人类肠道解木聚糖拟杆菌XB1A(T)对木聚糖的降解涉及两个不同的基因簇,这两个基因簇在转录水平上相互关联。
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本文引用的文献

1
The catabolic specialization of the marine bacterium sp. Q13 to red algal β1,3/1,4-mixed-linkage xylan.海洋细菌 sp. Q13 对红藻 β1,3/1,4-混合链接木聚糖的分解代谢特化。
Appl Environ Microbiol. 2024 Jan 24;90(1):e0170423. doi: 10.1128/aem.01704-23. Epub 2024 Jan 3.
2
A novel class of xylanases specifically degrade marine red algal β1,3/1,4-mixed-linkage xylan.一类新型木聚糖酶可特异性降解海洋红藻β1,3/1,4-混合连接木聚糖。
J Biol Chem. 2023 Sep;299(9):105116. doi: 10.1016/j.jbc.2023.105116. Epub 2023 Jul 29.
3
Marine Bacteroidetes enzymatically digest xylans from terrestrial plants.
海洋拟杆菌通过酶解作用来消化陆地植物中的木聚糖。
Environ Microbiol. 2023 Sep;25(9):1713-1727. doi: 10.1111/1462-2920.16390. Epub 2023 Apr 30.
4
Novel D-glutamate catabolic pathway in marine Proteobacteria and halophilic archaea.海洋变形菌和嗜盐古菌中的新型 D-谷氨酸分解代谢途径。
ISME J. 2023 Apr;17(4):537-548. doi: 10.1038/s41396-023-01364-6. Epub 2023 Jan 23.
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Characterization of Multiple Alginate Lyases in a Highly Efficient Alginate-Degrading Strain and Its Degradation Strategy.高效降解海藻酸盐菌株中多种海藻酸盐裂解酶的特性及其降解策略。
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6
sp. nov., a novel 1,3-xylanase-secreting bacterium isolated from a marine green alga.sp. nov.,一种从海洋绿藻中分离出的新型分泌1,3 -木聚糖酶的细菌。
Front Microbiol. 2022 Oct 24;13:1006116. doi: 10.3389/fmicb.2022.1006116. eCollection 2022.
7
Diverse events have transferred genes for edible seaweed digestion from marine to human gut bacteria.多种事件已将可食用海藻消化的基因从海洋转移到了人类肠道细菌中。
Cell Host Microbe. 2022 Mar 9;30(3):314-328.e11. doi: 10.1016/j.chom.2022.02.001. Epub 2022 Mar 2.
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Diversity of Marine 1,3-Xylan-Utilizing Bacteria and Characters of Their Extracellular 1,3-Xylanases.利用海洋1,3-木聚糖的细菌多样性及其胞外1,3-木聚糖酶的特性
Front Microbiol. 2021 Oct 1;12:721422. doi: 10.3389/fmicb.2021.721422. eCollection 2021.
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Highly accurate protein structure prediction with AlphaFold.利用 AlphaFold 进行高精度蛋白质结构预测。
Nature. 2021 Aug;596(7873):583-589. doi: 10.1038/s41586-021-03819-2. Epub 2021 Jul 15.
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Isotopic tracing reveals single-cell assimilation of a macroalgal polysaccharide by a few marine Flavobacteria and Gammaproteobacteria.同位素示踪表明,少数海洋黄杆菌和γ-变形菌能够单个细胞地同化大型海藻多糖。
ISME J. 2021 Oct;15(10):3062-3075. doi: 10.1038/s41396-021-00987-x. Epub 2021 May 5.