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Population Dynamics and Diversity of Viruses Bacteria and Phytoplankton in a Shallow Eutrophic Lake

机译:浅水富营养化湖泊中病毒细菌和浮游植物的种群动态和多样性

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摘要

We have studied the temporal variation in viral abundances and community assemblage in the eutrophic Lake Loosdrecht through epifluorescence microscopy and pulsed field gel electrophoresis (PFGE). The virioplankton community was a dynamic component of the aquatic community, with abundances ranging between 5.5 × 107 and 1.3 × 108 virus-like particles ml−1 and viral genome sizes ranging between 30 and 200 kb. Both viral abundances and community composition followed a distinct seasonal cycle, with high viral abundances observed during spring and summer. Due to the selective and parasitic nature of viral infection, it was expected that viral and host community dynamics would covary both in abundances and community composition. The temporal dynamics of the bacterial and cyanobacterial communities, as potential viral hosts, were studied in addition to a range of environmental parameters to relate these to viral community dynamics. Cyanobacterial and bacterial communities were studied applying epifluorescence microscopy, flow cytometry, and denaturing gradient gel electrophoresis (DGGE). Both bacterial and cyanobacterial communities followed a clear seasonal cycle. Contrary to expectations, viral abundances were neither correlated to abundances of the most dominant plankton groups in Lake Loosdrecht, the bacteria and the filamentous cyanobacteria, nor could we detect a correlation between the assemblage of viral and bacterial or cyanobacterial communities during the overall period. Only during short periods of strong fluctuations in microbial communities could we detect viral community assemblages to covary with cyanobacterial and bacterial communities. Methods with a higher specificity and resolution are probably needed to detect the more subtle virus–host interactions. Viral abundances did however relate to cyanobacterial community assemblage and showed a significant positive correlation to Chl-a as well as prochlorophytes, suggesting that a significant proportion of the viruses in Lake Loosdrecht may be phytoplankton and more specific cyanobacterial viruses. Temporal changes in bacterial abundances were significantly related to viral community assemblage, and vice versa, suggesting an interaction between viral and bacterial communities in Lake Loosdrecht.
机译:我们通过落射荧光显微镜和脉冲场凝胶电泳(PFGE)研究了富营养化的Loosdrecht湖中病毒丰度和群落组成的时间变化。浮游动物群落是水生群落的动态组成部分,其丰度范围在5.5×10 7 和1.3×10 8 病毒样颗粒ml -1 < / sup>,病毒基因组大小介于30到200 kb之间。病毒的丰度和群落组成均遵循不同的季节周期,在春季和夏季观察到高的病毒丰度。由于病毒感染具有选择性和寄生性,因此预期病毒和宿主社区的动态会在数量和社区组成方面有所变化。除了潜在的环境参数以外,还研究了作为潜在病毒宿主的细菌和蓝细菌群落的时间动态,以将这些参数与病毒群落动态相关联。应用落射荧光显微镜,流式细胞仪和变性梯度凝胶电泳(DGGE)研究了蓝藻和细菌群落。细菌和蓝细菌群落均遵循明显的季节性周期。与预期相反,病毒的丰度既没有与Loosdrecht湖中最主要的浮游生物种群,细菌和丝状蓝细菌的丰度相关,也没有发现整个时期病毒与细菌或蓝细菌群落的组合之间的相关性。只有在微生物群落剧烈波动的短时间内,我们才能检测到与蓝细菌和细菌群落共存的病毒群落组合。为了检测更微妙的病毒与宿主之间的相互作用,可能需要具有更高特异性和分辨率的方法。但是,病毒的丰度确实与蓝细菌群落的组合有关,并且与Chl-a和原绿藻类呈显着正相关,这表明Loosdrecht湖中很大比例的病毒可能是浮游植物和更特定的蓝细菌病毒。细菌丰度的时间变化与病毒群落组成显着相关,反之亦然,表明Loosdrecht湖病毒和细菌群落之间存在相互作用。

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