Department of Biotechnology and Biomedicine, Technical University of Denmark, Kongens Lyngby, Denmark.
Department of Biotechnology and Biomedicine, Technical University of Denmark, Kongens Lyngby, Denmark
Appl Environ Microbiol. 2020 Jul 2;86(14). doi: 10.1128/AEM.00499-20.
The genus has been explored as probiotics in mariculture as a sustainable strategy for the prevention of bacterial infections. Its antagonistic effect against common fish pathogens is predominantly due to the production of the antibacterial compound tropodithietic acid (TDA), and TDA-producing strains have repeatedly been isolated from mariculture environments. Despite many trials targeting pathogens, little is known about its impact on host-associated microbiomes in mariculture. Hence, the purpose of this study was to investigate how the addition of a TDA-producing strain affects the microbiomes of live feed organisms and fish larvae. We used 16S rRNA gene sequencing to characterize the bacterial diversity associated with live feed microalgae (), live feed copepod nauplii (), and turbot () eggs/larvae. The microbial communities were unique to the three organisms investigated, and the addition of the probiotic bacterium had various effects on the diversity and richness of the microbiomes. The structure of the live feed microbiomes was significantly changed, while no effect was seen on the community structure associated with turbot larvae. The changes were seen primarily in particular taxa. The order was indigenous to all three microbiomes and decreased in relative abundance when was introduced in the copepod and turbot microbiomes, while it was unaffected in the microalgal microbiome. Altogether, the study demonstrates that the addition of in higher concentrations, as part of a probiotic regime, does not appear to cause major imbalances in the microbiome, but the effects were specific to closely related taxa. This work is an essential part of the risk assessment of the application of roseobacters as probiotics in mariculture. It provides insights into the impact of TDA-producing on the commensal bacteria related to mariculture live feed and fish larvae. Also, the study provides a sequencing-based characterization of the microbiomes related to mariculture-relevant microalga, copepods, and turbot larvae.
该属已被探索作为水产养殖中的益生菌,以作为预防细菌感染的可持续策略。它对常见鱼类病原体的拮抗作用主要归因于抗菌化合物 tropodithietic 酸(TDA)的产生,并且 TDA 产生菌株已反复从水产养殖环境中分离出来。尽管针对病原体进行了许多试验,但对其在水产养殖中对宿主相关微生物组的影响知之甚少。因此,本研究的目的是调查添加 TDA 产生菌株如何影响活饵料生物和鱼苗的微生物组。我们使用 16S rRNA 基因测序来描述与活饵料微藻()、活饵料桡足类无节幼体()和大菱鲆()卵/幼虫相关的细菌多样性。微生物群落与三种研究生物具有独特性,并且益生菌细菌的添加对微生物组的多样性和丰富度有各种影响。活饵料微生物组的结构发生了显著变化,而对大菱鲆幼虫相关群落结构没有影响。变化主要发生在特定的分类群上。目是所有三个微生物组的本土分类群,当它被引入桡足类和大菱鲆微生物组时,其相对丰度降低,而在微藻微生物组中不受影响。总的来说,该研究表明,作为益生菌方案的一部分,以较高浓度添加 不会导致微生物组出现重大失衡,但影响特定于密切相关的分类群。这项工作是评估玫瑰杆菌作为水产养殖益生菌应用的风险评估的重要组成部分。它提供了有关 TDA 产生的对与水产养殖活饵料和鱼苗相关的共生细菌的影响的见解。此外,该研究还提供了与水产养殖相关的微藻、桡足类和大菱鲆幼虫相关的微生物组的基于测序的特征描述。