Arcobacteraceae are ubiquitous mixotrophic bacteria playing important roles in carbon, nitrogen, and sulfur cycling in global oceans.

IF 5 2区 生物学 Q1 MICROBIOLOGY mSystems Pub Date : 2024-07-23 Epub Date: 2024-06-21 DOI:10.1128/msystems.00513-24
Jianyang Li, Shizheng Xiang, Yufei Li, Ruolin Cheng, Qiliang Lai, Liping Wang, Guizhen Li, Chunming Dong, Zongze Shao
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Abstract

Mixotrophy is an important trophic strategy for bacterial survival in the ocean. However, the global relevance and identity of the major mixotrophic taxa remain largely elusive. Here, we combined phylogenetic, metagenomic, and metatranscriptomic analyses to characterize ubiquitous Arcobacteraceae based on our deep-sea in situ incubations and the global data. The phylogenomic tree of Arcobacteraceae is divided into three large clades, among which members of clades A and B are almost all from terrestrial environments, while those of clade C are widely distributed in various marine habitats in addition to some terrestrial origins. All clades harbor genes putatively involved in chitin degradation, sulfide oxidation, hydrogen oxidation, thiosulfate oxidation, denitrification, dissimilatory nitrate reduction to ammonium, microaerophilic respiration, and metal (iron/manganese) reduction. Additionally, in clade C, more unique pathways were retrieved, including thiosulfate disproportionation, ethanol fermentation, methane oxidation, fatty acid oxidation, cobalamin synthesis, and dissimilatory reductions of sulfate, perchlorate, and arsenate. Within this clade, two mixotrophic Candidatus genera represented by UBA6211 and CAIJNA01 harbor genes putatively involved in the reverse tricarboxylic acid pathway for carbon fixation. Moreover, the metatranscriptomic data in deep-sea in situ incubations indicated that the latter genus is a mixotroph that conducts carbon fixation by coupling sulfur oxidation and denitrification and metabolizing organic matter. Furthermore, global metatranscriptomic data confirmed the ubiquitous distribution and global relevance of Arcobacteraceae in the expression of those corresponding genes across all oceanic regions and depths. Overall, these results highlight the contribution of previously unrecognized Arcobacteraceae to carbon, nitrogen, and sulfur cycling in global oceans.IMPORTANCEMarine microorganisms exert a profound influence on global carbon cycling and ecological relationships. Mixotrophy, characterized by the simultaneous utilization of both autotrophic and heterotrophic nutrition, has a significant impact on the global carbon cycling. This report characterizes a group of uncultivated bacteria Arcobacteraceae that thrived on the "hot time" of bulky particulate organic matter and exhibited mixotrophic strategy during the in situ organic mineralization. Compared with clades A and B, more unique metabolic pathways were retrieved in clade C, including the reverse tricarboxylic acid pathway for carbon fixation, thiosulfate disproportionation, methane oxidation, and fatty acid oxidation. Global metatranscriptomic data from the Tara Oceans expeditions confirmed the ubiquitous distribution and extensive transcriptional activity of Arcobacteraceae with the expression of genes putatively involved in carbon fixation, methane oxidation, multiple sulfur compound oxidation, and denitrification across all oceanic regions and depths.

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Arcobacteraceae 是一种无处不在的混养细菌,在全球海洋的碳、氮和硫循环中发挥着重要作用。
混养是细菌在海洋中生存的一种重要营养策略。然而,主要混养类群的全球相关性和特征在很大程度上仍然难以确定。在此,我们根据深海原位培养和全球数据,结合系统发生学、元基因组学和元转录组学分析,描述了无处不在的 Arcobacteraceae 的特征。弯曲杆菌科的系统发生树分为三个大支系,其中支系 A 和支系 B 的成员几乎全部来自陆地环境,而支系 C 的成员除部分来自陆地外,还广泛分布于各种海洋栖息地。所有支系都含有可能参与甲壳素降解、硫化物氧化、氢氧化、硫代硫酸盐氧化、反硝化、异嗜硝酸盐还原成铵、微嗜气呼吸和金属(铁/锰)还原的基因。此外,在支系 C 中,还发现了更多独特的途径,包括硫代硫酸盐歧化、乙醇发酵、甲烷氧化、脂肪酸氧化、钴胺合成以及硫酸盐、高氯酸盐和砷酸盐的异嗜性还原。在这一支系中,以 UBA6211 和 CAIJNA01 为代表的两个混养念珠菌属含有可能参与碳固定的反向三羧酸途径的基因。此外,深海原位培养的元转录组数据表明,CAIJNA01 属是一种通过硫氧化和反硝化耦合以及有机物代谢进行碳固定的混合营养体。此外,全球元转录组数据证实,在所有大洋区域和深度的相应基因表达中,Arcobacteraceae 的分布无处不在,具有全球相关性。总之,这些结果凸显了以前未被认识到的分支杆菌科对全球海洋碳、氮和硫循环的贡献。混养(Mixotrophy)的特点是同时利用自养和异养营养,对全球碳循环有重大影响。本报告描述了一组未培养的细菌(Arcobacteraceae)的特征,它们在大颗粒有机物的 "热时间 "中茁壮成长,并在原位有机矿化过程中表现出混养策略。与支系 A 和支系 B 相比,支系 C 发现了更多独特的代谢途径,包括碳固定的反向三羧酸途径、硫代硫酸歧化、甲烷氧化和脂肪酸氧化。塔拉海洋探险队的全球元转录组数据证实了弯曲杆菌科动物分布广泛,转录活性强,在所有大洋区域和深度都有可能参与碳固定、甲烷氧化、多种硫化合物氧化和反硝化的基因表达。
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来源期刊
mSystems
mSystems Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
10.50
自引率
3.10%
发文量
308
审稿时长
13 weeks
期刊介绍: mSystems™ will publish preeminent work that stems from applying technologies for high-throughput analyses to achieve insights into the metabolic and regulatory systems at the scale of both the single cell and microbial communities. The scope of mSystems™ encompasses all important biological and biochemical findings drawn from analyses of large data sets, as well as new computational approaches for deriving these insights. mSystems™ will welcome submissions from researchers who focus on the microbiome, genomics, metagenomics, transcriptomics, metabolomics, proteomics, glycomics, bioinformatics, and computational microbiology. mSystems™ will provide streamlined decisions, while carrying on ASM''s tradition of rigorous peer review.
期刊最新文献
Announcing the mSystems special collection on microbial dormancy L-tryptophan and copper interactions linked to reduced colibactin genotoxicity in pks+ Escherichia coli Characterization of the carbapenem-resistant Acinetobacter baumannii clinical reference isolate BAL062 (CC2:KL58:OCL1): resistance properties and capsular polysaccharide structure The occurrence of Aerococcus urinaeequi and non-aureus staphylococci in raw milk negatively correlates with Escherichia coli clinical mastitis The predicted secreted proteome of activated sludge microorganisms indicates distinct nutrient niches
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