Biofloc culture system shapes the structure and function of environmental and intestinal bacterial communities in the river prawn Cryphiops caementarius

IF 3.2 2区 农林科学 Q1 FISHERIES Aquaculture Reports Pub Date : 2024-09-21 DOI:10.1016/j.aqrep.2024.102359
Elisa Torres-Lagos , Carlos Henríquez-Castillo , Carlos Méndez , María C. Morales , Claudia B. Cárcamo , Paola Navarrete , Paulina Schmitt , Katherina Brokordt
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Abstract

Biofloc technology (BFT) has emerged as a sustainable method for prawn cultivation, particularly for regions with limited freshwater resources. The freshwater prawn Cryphiops caementarius exhibit improved survival and growth rates when cultivated using BFT compared to traditional clear water (CW) systems. Despite the importance of bacterial microbiota in organismal health and performance, our study represents the first comprehensive investigation into the impact of BFT and CW culture systems on the composition, dynamics, stability, and functional potential of bacterial communities in both the rearing environment and intestines of C. caementarius. Utilizing deep amplicon 16S rRNA sequencing, we assessed the diversity and relative abundances of bacterial microbiota in CW and BFT water systems and in the intestines of prawns cultured in these systems over an extended period. Results revealed higher host-environment interaction in BFT, and higher bacterial diversity in BFT water systems and prawn intestines. The environment and prawn intestines from BFT were enriched with beneficial bacteria, while CW counterparts harbored potentially pathogenic bacteria. Planctomycetota was the dominant phylum in BFT, while Proteobacteria predominated in CW. Functional profiling indicated efficient support for chemoheterotrophic bacteria in both systems, with greater nitrogen processing in CW but greater nitrite detoxification in BFT system. Cellulolysis was higher in the intestines of prawns from BFT, potentially enhancing nutrient availability. Prawn intestine microbiota exhibited high plasticity post-immune challenge, with notable colonization by potentially pathogenic bacteria (Aeromonas and Pseudomonas) at the expense of a decrease in beneficial bacteria, in both systems. However, prawn intestines from BFT also showed high colonization by beneficial bacteria such as Shewanella, with potential for improving immune response. Overall, our study sheds light on the complex interplay between water and intestinal microbiota in BFT and CW systems during C. caementarius cultivation, offering insights into the potential for harnessing beneficial microbiota to improve prawn health and performance, particularly through the BFT system.

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生物絮凝培养系统塑造了河对虾环境和肠道细菌群落的结构和功能
生物絮团技术(BFT)已成为一种可持续的对虾养殖方法,尤其适用于淡水资源有限的地区。与传统的清水(CW)系统相比,淡水对虾(Cryphiops caementarius)在使用生物絮团技术(BFT)养殖时,存活率和生长率都有所提高。尽管细菌微生物群对生物体的健康和表现非常重要,但我们的研究是首次全面调查 BFT 和 CW 养殖系统对对虾饲养环境和肠道中细菌群落的组成、动态、稳定性和功能潜力的影响。利用深度扩增子 16S rRNA 测序,我们评估了 CW 和 BFT 水体系统以及在这些系统中长期养殖的对虾肠道中细菌微生物群的多样性和相对丰度。结果表明,BFT 的宿主-环境相互作用更高,BFT 水系统和对虾肠道中的细菌多样性更高。BFT 环境和对虾肠道中富含有益菌,而 CW 环境和对虾肠道中富含潜在致病菌。Planctomycetota 是 BFT 的主要菌门,而 Proteobacteria 则是 CW 的主要菌门。功能分析表明,两个系统中的趋化异养菌都能提供有效支持,CW 系统中的氮处理能力更强,而 BFT 系统中的亚硝酸盐解毒能力更强。BFT 对虾肠道中的纤维素分解率更高,这可能会提高营养物质的可用性。对虾肠道微生物群在免疫挑战后表现出很高的可塑性,在这两个系统中,潜在致病菌(气单胞菌和假单胞菌)的定殖效果显著,但有益菌却减少了。不过,BFT 的对虾肠道也显示出有益菌(如雪旺菌)的大量定植,这有可能改善免疫反应。总之,我们的研究揭示了在 BFT 和 CW 系统中养殖 C. caementarius 期间水和肠道微生物群之间复杂的相互作用,为利用有益微生物群改善对虾健康和表现的潜力提供了见解,特别是通过 BFT 系统。
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来源期刊
Aquaculture Reports
Aquaculture Reports Agricultural and Biological Sciences-Animal Science and Zoology
CiteScore
5.90
自引率
8.10%
发文量
469
审稿时长
77 days
期刊介绍: Aquaculture Reports will publish original research papers and reviews documenting outstanding science with a regional context and focus, answering the need for high quality information on novel species, systems and regions in emerging areas of aquaculture research and development, such as integrated multi-trophic aquaculture, urban aquaculture, ornamental, unfed aquaculture, offshore aquaculture and others. Papers having industry research as priority and encompassing product development research or current industry practice are encouraged.
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