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首页> 外文期刊>mSphere >Component Microenvironments and System Biogeography Structure Microorganism Distributions in Recirculating Aquaculture and Aquaponic Systems
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Component Microenvironments and System Biogeography Structure Microorganism Distributions in Recirculating Aquaculture and Aquaponic Systems

机译:循环水产养殖和水培系统中的组分微环境和系统生物地理结构微生物分布

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摘要

Flowthrough and pond aquaculture system microbiome management practices aim to mitigate fish disease and stress. However, the operational success of recirculating aquaculture systems (RAS) depends directly on system microbial community activities. In RAS, each component environment is engineered for a specific microbial niche for waste management, as the water continuously flowing through the system must be processed before returning to the rearing tank. In this study, we compared waste management component microbiomes (rearing tank water, pH correction tank, solid-waste clarifier, biofilter, and degassing tower) within a commercial-scale freshwater RAS by high-throughput 16S rRNA gene sequencing. To assess consistency among freshwater RAS microbiomes, we also compared the microbial community compositions of six aquaculture and aquaponic farms. Community assemblages reflected site and source water relationships, and the presence of a hydroponic subsystem was a major community determinant. In contrast to the facility-specific community composition, some sequence variants, mainly classified into Flavobacterium , Cetobacterium , the family Sphingomonadaceae , and nitrifying guilds of ammonia-oxidizing archaea and Nitrospira , were common across all facilities. The findings of this study suggest that, independently of system design, core taxa exist across RAS rearing similar fish species but that system design informs the individual aquatic microbiome assemblages. Future RAS design would benefit from understanding the roles of these core taxa and then capitalizing on their activities to further reduce system waste/added operational controls. IMPORTANCE Recirculating aquaculture systems (RAS) are agroecosystems for intensive on-land cultivation of products of fisheries. Practitioners that incorporate edible plant production into RAS refer to these facilities as aquaponic systems (AP). RAS have the potential to offset declining production levels of wild global fisheries while reducing waste and product distance to market, but system optimization is needed to reduce costs. Both RAS and AP rely on microbial consortia for maintaining water quality and promoting fish/plant health, but little is known about the microorganisms actually present. This lack of knowledge prevents optimization of designs and operational controls to target the growth of beneficial microbial species or consortia. The significance of our research is in identifying the common microorganisms that inhabit production RAS and AP and the operational factors that influence which microorganisms colonize and become abundant. Identifying these organisms is a first step toward advanced control of microbial activities that improve reproducibility and reduce costs.
机译:流水和池塘水产养殖系统微生物组管理实践旨在减轻鱼类疾病和压力。然而,循环水产养殖系统(RAS)的运行成功直接取决于系统微生物群落的活动。在RAS中,每个组件的环境都针对特定的微生物生态环境进行了废物管理,因为连续流过系统的水必须经过处理后才能返回饲养箱。在这项研究中,我们通过高通量16S rRNA基因测序比较了商业规模淡水RAS中的废物管理成分微生物组(饲养槽水,pH校正槽,固体废物澄清池,生物滤池和脱气塔)。为了评估淡水RAS微生物群之间的一致性,我们还比较了六个水产养殖场和水产养殖场的微生物群落组成。社区集合反映了地点和水源之间的关系,而水培子系统的存在是社区的主要决定因素。与特定于设施的群落组成相比,在所有设施中共有一些序列变体,这些变体主要分为黄杆菌属,Cetobacterium,Sphingomonadaceae科以及氨氧化古细菌和硝化螺菌的硝化行会。这项研究的发现表明,与系统设计无关,在养殖相似鱼类的RAS中存在核心类群,但是系统设计为单个水生微生物组提供了信息。未来的RAS设计将受益于理解这些核心分类单元的作用,然后利用它们的活动来进一步减少系统浪费/增加的操作控制。重要信息循环水产养殖系统(RAS)是用于在陆上进行渔业产品集约化养殖的农业生态系统。将食用植物生产纳入RAS的从业人员将这些设施称为水培系统(AP)。 RAS有可能抵消全球野生渔业产量下降的趋势,同时减少浪费和产品到市场的距离,但是需要系统优化以降低成本。 RAS和AP都依靠微生物群落来维持水质并促进鱼类/植物健康,但对实际存在的微生物知之甚少。知识的缺乏阻碍了针对有益微生物物种或财团的增长而设计和操作控制的优化。我们研究的意义在于确定居住在生产RAS和AP中的常见微生物以及影响哪些微生物定殖并变得丰富的操作因素。识别这些生物体是迈向微生物活动高级控制的第一步,以提高可重复性并降低成本。

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