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Comparison of active biofilm carriers and commercially available inoculum for activation of biofilters in marine recirculating aquaculture systems (RAS)

机译:活性生物膜载体和市售接种用于激活海洋再循环水产养殖系统中的生物过滤器(RAS)

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A recirculating aquaculture system (RAS) for rearing Atlantic salmon requires nitrifying microorganisms in the biofilter in order to be fully functional. These microorganisms play a crucial role in water quality improvement by removing ammonia, but the nitrifying population is time-consuming to establish in the biofilter due to their slow growth rates. An efficient biofilter activation strategy is therefore necessary for an improved and short maturation period of biofilters in new RAS. In this study, microbial growth cultures added two different inoculums for RAS were compared. The observed biofilm establishment on clean biofilm carriers and quantified nitrification in the cultures simulated activation of new RAS biofilters. The inoculums used in the experiments included commercial inoculum for marine RAS and transferred biofilm carriers from a marine RAS biofilter operated 1.5 years after activation. The growth experiments revealed that the enrichment cultures inoculated with biofilm carriers from RAS initiated nitrite and nitrate production from ammonia on day 4, which is much earlier than in enrichment cultures with commercial inoculum where nitrite and nitrate production were detectable on day 15 and 18, respectively. The concentration of nitrite and nitrate measured at the end of the experimental period was also substantially higher in enrichment cultures inoculated with biofilm carriers. These results were supported by microbial community analyses of the enrichment cultures, showing that the populations in cultures added biofilm carriers had the highest relative abundance of Nitrosococcus and Nitrospira. Overall, our study shows that biofilm carriers from an established RAS were applicable as inoculum for biofilter activation. However, more knowledge on optimized growth conditions for nitrifying bacteria in RAS could benefit the colonization efficiency and the enrichment of these microorganisms during biofilter activation. In addition, methodical screening for pathogenic bacteria or viruses is needed before biofilter material can be successfully transferred between RAS without risk for disease transfer.
机译:用于饲养大西洋鲑鱼的再循环水产养殖系统(RAS)需要在生物过滤器中硝化微生物,以便完全正常。这些微生物通过去除氨而在水质改善中发挥着至关重要的作用,但由于增长率缓慢,硝化群体在生物过滤器中建立耗时。因此,在新RAS中的生物过滤器的改善和短期成熟时期需要一种有效的生物过滤器活化策略。在这项研究中,微生物生长培养物在比较了两种不同的RAS中的两种不同的接种物。在清洁生物膜载体上观察到的生物膜建立,并在培养物中定量硝化模拟新Ras生物过滤器的激活。实验中使用的接种物包括用于海洋RA的商业接种物,并从激活后的1.5年后从海洋RAS生物过滤器转移生物膜载体。增长实验表明,从Ras的富含生物膜载体接种的富集培养物在第4天开始从氨的亚硝酸盐和硝酸盐产生,这比在第15天和第18天可检测到亚硝酸盐和硝酸盐产生的富集培养物中的富集培养物。在实验期结束时测量的亚硝酸盐和硝酸盐的浓度在用生物膜载体接种的富集培养物中也基本上更高。这些结果得到了富集培养物的微生物群落分析的支持,表明培养物中的群体添加生物膜载体具有最高的亚硝基菌和氮气的相对丰度。总体而言,我们的研究表明,来自已建立的RAS的生物膜载体适用于Inoculum用于生物滤波激活。然而,对RAS中硝化细菌的优化生长条件的更多了解可以使殖民化效率和在生物过滤活化期间的富集这些微生物的富集。另外,在生物滤光器材料可以在没有疾病转移的风险的情况下成功转移生物过滤材料之前需要用于致病细菌或病毒的方法筛查。

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