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本文引用的文献

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The Oxymonad Genome Displays Canonical Eukaryotic Complexity in the Absence of a Mitochondrion.《在缺乏线粒体的情况下,氧化单子叶动物基因组表现出典型的真核生物复杂性》。
Mol Biol Evol. 2019 Oct 1;36(10):2292-2312. doi: 10.1093/molbev/msz147.
2
Genome analyses of uncultured TG2/ZB3 bacteria in 'Margulisbacteria' specifically attached to ectosymbiotic spirochetes of protists in the termite gut.未培养的 TG2/ZB3 细菌的基因组分析,这些细菌属于玛古利斯菌,专门附着在白蚁肠道内原生动物的共生螺旋体上。
ISME J. 2019 Feb;13(2):455-467. doi: 10.1038/s41396-018-0297-4. Epub 2018 Oct 4.
3
Bacteroides thetaiotaomicron.拟杆菌属厚壁菌门。
Trends Microbiol. 2018 Nov;26(11):966-967. doi: 10.1016/j.tim.2018.08.005. Epub 2018 Sep 4.
4
Molecular and Morphological Diversity of the Oxymonad Genera Monocercomonoides and Blattamonas gen. nov.单鞭滴虫属(Monocercomonoides)和新属拟蜚蠊滴虫属(Blattamonas gen. nov.)的分子与形态多样性
Protist. 2018 Nov;169(5):744-783. doi: 10.1016/j.protis.2018.06.005. Epub 2018 Jun 30.
5
dbCAN2: a meta server for automated carbohydrate-active enzyme annotation.dbCAN2:一个用于自动化碳水化合物活性酶注释的元服务器。
Nucleic Acids Res. 2018 Jul 2;46(W1):W95-W101. doi: 10.1093/nar/gky418.
6
Genomes of rumen bacteria encode atypical pathways for fermenting hexoses to short-chain fatty acids.瘤胃细菌的基因组编码了将己糖发酵为短链脂肪酸的非典型途径。
Environ Microbiol. 2017 Nov;19(11):4670-4683. doi: 10.1111/1462-2920.13929. Epub 2017 Nov 2.
7
Genome of 'Ca. Desulfovibrio trichonymphae', an H-oxidizing bacterium in a tripartite symbiotic system within a protist cell in the termite gut.“共生毛滴虫脱硫弧菌”的基因组,一种存在于白蚁肠道原生生物细胞内三方共生系统中的氢氧化细菌。
ISME J. 2017 Mar;11(3):766-776. doi: 10.1038/ismej.2016.143. Epub 2016 Nov 1.
8
Genome analysis of 'Candidatus Ancillula trichonymphae', first representative of a deep-branching clade of Bifidobacteriales, strengthens evidence for convergent evolution in flagellate endosymbionts.双歧杆菌目一个深度分支进化枝的首个代表“毛滴虫共生双歧杆菌(Candidatus Ancillula trichonymphae)”的基因组分析,强化了鞭毛虫内共生体趋同进化的证据。
Environ Microbiol Rep. 2016 Oct;8(5):865-873. doi: 10.1111/1758-2229.12451. Epub 2016 Sep 7.
9
Genome Evolution and Nitrogen Fixation in Bacterial Ectosymbionts of a Protist Inhabiting Wood-Feeding Cockroaches.栖息于食木蟑螂体内的原生生物的细菌外共生体中的基因组进化与固氮作用
Appl Environ Microbiol. 2016 Jul 15;82(15):4682-4695. doi: 10.1128/AEM.00611-16. Print 2016 Aug 1.
10
A Eukaryote without a Mitochondrial Organelle.一种没有线粒体细胞器的真核生物。
Curr Biol. 2016 May 23;26(10):1274-84. doi: 10.1016/j.cub.2016.03.053. Epub 2016 May 12.

利用单细胞宏基因组学揭示 及其细菌共生体的代谢能力。

Revealing the metabolic capacity of and its bacterial symbionts using single-cell metagenomics.

机构信息

Department of Parasitology, Faculty of Science, Charles University, BIOCEV, 252 42 Vestec, Czech Republic.

Institute of Parasitology, Biology Centre, Czech Academy of Sciences, 370 05 České Budějovice, Czech Republic.

出版信息

Proc Natl Acad Sci U S A. 2019 Sep 24;116(39):19675-19684. doi: 10.1073/pnas.1910793116. Epub 2019 Sep 6.

DOI:10.1073/pnas.1910793116
PMID:31492817
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6765251/
Abstract

Lower termites harbor in their hindgut complex microbial communities that are involved in the digestion of cellulose. Among these are protists, which are usually associated with specific bacterial symbionts found on their surface or inside their cells. While these form the foundations of a classic system in symbiosis research, we still know little about the functional basis for most of these relationships. Here, we describe the complex functional relationship between one protist, the oxymonad , and its ectosymbiotic bacterial community using single-cell genomics. We generated partial assemblies of the host genome and Ordinivivax streblomastigis, as well as a complex metagenome assembly of at least 8 other Bacteroidetes bacteria confirmed by ribosomal (r)RNA fluorescence in situ hybridization (FISH) to be associated with Our data suggest that is probably not involved in the cellulose digestion, but the bacterial community on its surface secretes a complex array of glycosyl hydrolases, providing them with the ability to degrade cellulose to monomers and fueling the metabolism of In addition, some of the bacteria can fix nitrogen and can theoretically provide with essential amino acids and cofactors, which the protist cannot synthesize. On the contrary, most of the bacterial symbionts lack the essential glycolytic enzyme enolase, which may be overcome by the exchange of intermediates with This study demonstrates the value of the combined single-cell (meta)genomic and FISH approach for studies of complicated symbiotic systems.

摘要

低等白蚁在其后肠复合体中蕴藏着参与纤维素消化的微生物群落。其中包括原生动物,它们通常与存在于其表面或细胞内的特定细菌共生体有关。虽然这些构成了共生关系研究中经典系统的基础,但我们仍然对大多数这些关系的功能基础知之甚少。在这里,我们使用单细胞基因组学描述了一种原生动物,氧化单胞菌,及其外共生细菌群落之间的复杂功能关系。我们生成了宿主基因组和 Ordinivivax streblomastigis 的部分组装体,以及一个复杂的至少 8 种其他拟杆菌的宏基因组组装体,这些细菌通过核糖体(r)RNA 荧光原位杂交(FISH)与氧化单胞菌关联得到证实。我们的数据表明,氧化单胞菌可能不参与纤维素的消化,但在其表面的细菌群落分泌了一系列复杂的糖苷水解酶,赋予了它们将纤维素降解为单体并为氧化单胞菌的代谢提供燃料的能力。此外,一些细菌可以固定氮,并从理论上为原生动物提供必需的氨基酸和辅因子,而这些原生动物不能合成。相反,大多数细菌共生体缺乏必需的糖酵解酶烯醇酶,这可能通过与氧化单胞菌交换中间产物来克服。这项研究证明了单细胞(宏)基因组学和 FISH 方法结合用于复杂共生系统研究的价值。