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首页> 外文期刊>MicrobiologyOpen >Microbial dynamics during harmful dinoflagellate Ostreopsis cf. ovata growth: Bacterial succession and viral abundance pattern
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Microbial dynamics during harmful dinoflagellate Ostreopsis cf. ovata growth: Bacterial succession and viral abundance pattern

机译:有害鞭毛鞭毛骨症期间的微生物动力学cf.卵子生长:细菌演替和病毒丰度模式

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摘要

Algal–bacterial interactions play a major role in shaping diversity of algal associated bacterial communities. Temporal variation in bacterial phylogenetic composition reflects changes of these complex interactions which occur during the algal growth cycle as well as throughout the lifetime of algal blooms. Viruses are also known to cause shifts in bacterial community diversity which could affect algal bloom phases. This study investigated on changes of bacterial and viral abundances, bacterial physiological status, and on bacterial successional pattern associated with the harmful benthic dinoflagellate Ostreopsis cf. ovata in batch cultures over the algal growth cycle. Bacterial community phylogenetic structure was assessed by 16S rRNA gene ION torrent sequencing. A comparison between bacterial community retrieved in cultures and that one co‐occurring in situ during the development of the O .?cf. ovata bloom from where the algal strain was isolated was also reported. Bacterial community growth was characterized by a biphasic pattern with the highest contributions (~60%) of highly active bacteria found at the two bacterial exponential growth steps. An alphaproteobacterial consortium composed by the Rhodobacteraceae Dinoroseobacter (22.2%–35.4%) and Roseovarius (5.7%–18.3%), together with Oceanicaulis (14.2‐40.3%), was strongly associated with O .?cf. ovata over the algal growth. The Rhodobacteraceae members encompassed phylotypes with an assessed mutualistic‐pathogenic bimodal behavior. Fabibacter (0.7%–25.2%), Labrenzia (5.6%–24.3%), and Dietzia (0.04%–1.7%) were relevant at the stationary phase. Overall, the successional pattern and the metabolic and functional traits of the bacterial community retrieved in culture mirror those ones underpinning O .?cf. ovata bloom dynamics in field. Viral abundances increased synoptically with bacterial abundances during the first bacterial exponential growth step while being stationary during the second step. Microbial trends also suggest that viruses induced some shifts in bacterial community composition.
机译:藻类与细菌的相互作用在塑造藻类相关细菌群落的多样性中起着重要作用。细菌系统发生组成的时间变化反映了这些复杂相互作用的变化,这些变化发生在藻类生长周期以及藻类大量繁殖的整个生命周期中。还已知病毒会引起细菌群落多样性的改变,这可能会影响藻类开花期。这项研究调查了细菌和病毒丰度的变化,细菌的生理状态以及与有害底栖鞭毛藻鞭毛虫相关的细菌演替模式。藻类生长周期中分批培养的卵形卵。通过16S rRNA基因ION洪流测序评估细菌群落的系统发育结构。在培养物中获得的细菌群落与O.cf发育过程中原位同时存在的细菌群落之间的比较。还报道了从那里分离出藻株的卵形花。细菌群落生长的特征是在两个细菌指数生长步骤中发现的高活性细菌的最高贡献(〜60%)的双相模式。由红红景天科Dinoroseobacter(22.2%–35.4%)和Roseovarius(5.7%–18.3%)以及Oceanicaulis(14.2–40.3%)组成的α-蛋白菌群与O。?cf密切相关。卵过藻生长。红景天科成员包括系统型,其评估的病原性双峰行为。在固定期,Fabibacter(0.7%–25.2%),Labrenzia(5.6%–24.3%)和Dietzia(0.04%–1.7%)相关。总体而言,从培养物中获得的细菌群落的演替模式以及新陈代谢和功能特征反映了那些支持O.cf的特征。卵形花在田间的动态。在第一个细菌指数生长步骤中,病毒的丰度与细菌的丰度呈同义增加,而在第二个步骤中则保持稳定。微生物趋势还表明,病毒引起细菌群落组成的某些转变。

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