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链延伸微生物组的代谢相互作用。

Metabolic Interactions of a Chain Elongation Microbiome.

机构信息

State Key Laboratory of Pollution Control and Resource Reuse, Tongji University, Shanghai, China.

Shanghai Institute of Pollution Control and Ecological Security, Shanghai, China.

出版信息

Appl Environ Microbiol. 2018 Oct 30;84(22). doi: 10.1128/AEM.01614-18. Print 2018 Nov 15.

Abstract

Carbon chain elongation (CCE), a reaction within the carboxylate platform that elongates short-chain to medium-chain carboxylates by mixed culture, has attracted worldwide interest. The present study provides insights into the microbial diversity and predictive microbial metabolic pathways of a mixed-culture CCE microbiome on the basis of a comparative analysis of the metagenome and metatranscriptome. We found that the microbial structure of an acclimated chain elongation microbiome was a highly similar to that of the original inoculating biogas reactor culture; however, the metabolic activities were completely different, demonstrating the high stability of the microbial structure and flexibility of its functions. Additionally, the fatty acid biosynthesis (FAB) pathway, rather than the well-known reverse β-oxidation (RBO) pathway for CCE, was more active and pivotal, though the FAB pathway had more steps and consumed more ATP, a phenomenon that has rarely been observed in previous CCE studies. A total of 91 draft genomes were reconstructed from the metagenomic reads, of which three were near completion (completeness, >97%) and were assigned to unknown strains of , , and The last two strains are likely new-found active participators of CCE in the mixed culture. Finally, a conceptual framework of CCE, including both pathways and the potential participators, was proposed. Carbon chain elongation means the conversion of short-chain volatile fatty acids to medium-chain carboxylates, such as -caproate and -caprylate with electron donors under anaerobic condition. This bio-reaction can both expand the resource of valuable biochemicals and broaden the utilization of low-grade organic residues in a sustainable biorefinery context. is conventionally considered model microbe for carbon chain elongation which uses the reverse β-oxidation pathway. However, little is known about the detailed microbial structure and function of other abundant microorganism in a mixed culture (or open culture) of chain elongation. We conducted the comparative metagenomic and metatranscriptomic analysis of a chain elongation microbiome to throw light on the underlying functional microbes and alternative pathways.

摘要

碳链延长(CCE)是羧酸平台中的一种反应,通过混合培养将短链延长为中链羧酸。该反应引起了全世界的关注。本研究基于宏基因组和宏转录组的比较分析,深入了解混合培养 CCE 微生物组的微生物多样性和预测微生物代谢途径。我们发现,驯化后的 CCE 微生物组的微生物结构与原始接种沼气反应器培养物非常相似;然而,代谢活性却完全不同,这表明微生物结构具有高度稳定性和功能灵活性。此外,脂肪酸生物合成(FAB)途径比众所周知的 CCE 反向β-氧化(RBO)途径更为活跃和关键,尽管 FAB 途径具有更多的步骤且消耗更多的 ATP,但这种现象在之前的 CCE 研究中很少观察到。从宏基因组读数中总共重建了 91 个草案基因组,其中三个接近完成(完整性>97%),并分配给 、 、和的未知菌株。后两个菌株可能是混合培养中 CCE 的新发现的活跃参与者。最后,提出了 CCE 的概念框架,包括两条途径和潜在的参与者。碳链延长是指在厌氧条件下,利用电子供体将短链挥发性脂肪酸转化为中链羧酸,如 -己酸和 -辛酸。这种生物反应既能扩大有价值生化物质的资源,又能拓宽可持续生物炼制中低品位有机残渣的利用。 被传统认为是碳链延长的模式微生物,它使用反向β-氧化途径。然而,对于混合培养(或开放培养)中其他丰富微生物的详细微生物结构和功能知之甚少。我们对碳链延长微生物组进行了比较宏基因组和宏转录组分析,以阐明潜在的功能微生物和替代途径。

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本文引用的文献

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