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Aerobic Granules: Microbial Landscape and Architecture, Stages, and Practical Implications

机译:有氧颗粒:微生物景观和建筑,阶段和实际意义。

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For the successful application of aerobic granules in wastewater treatment, granules containing an appropriate microbial assembly able to remove contaminants should be retained and propagated within the reactor. To manipulate and/or optimize this process, a good understanding of the formation and dynamic architecture of the granules is desirable. Models of granules often assume a spherical shape with an outer layer and an inner core, but limited information is available regarding the extent of deviations from such assumptions. We report on new imaging approaches to gain detailed insights into the structural characteristics of aerobic granules. Our approach stained all components of the granule to obtain a high quality contrast in the images; hence limitations due to thresholding in the image analysis were overcome. A three-dimensional reconstruction of the granular structure was obtained that revealed the mesoscopic impression of the cavernlike interior of the structure, showing channels and dead-end paths in detail. In “old” granules, large cavities allowed for the irrigation and growth of dense microbial colonies along the path of the channels. Hence, in some areas, paradoxically higher biomass content was observed in the inner part of the granule compared to the outer part. Microbial clusters “rooting” from the interior of the mature granule structure indicate that granules mainly grow via biomass outgrowth and not by aggregation of small particles. We identify and discuss phenomena contributing to the life cycle of aerobic granules. With our approach, volumetric tetrahedral grids are generated that may be used to validate complex models of granule formation.
机译:为了成功地将好氧颗粒应用于废水处理,应保留含有能够去除污染物的合适微生物组件的颗粒,并将其在反应器内繁殖。为了操纵和/或优化该过程,需要对颗粒的形成和动态结构有良好的了解。颗粒模型通常假定为具有外层和内芯的球形,但是关于这种假设的偏差程度,可获得的信息有限。我们报告了新的成像方法,以获得对有氧颗粒的结构特征的详细见解。我们的方法对颗粒的所有成分进行染色,以在图像中获得高质量的对比度。因此克服了由于图像分析中的阈值引起的限制。对颗粒结构进行了三维重建,揭示了该结构的洞穴状内部的介观印象,详细显示了通道和死角路径。在“旧”颗粒中,大的孔洞允许沿着通道的路径灌溉和繁殖致密的微生物菌落。因此,在某些区域中,与外部相比,颗粒的内部观察到较高的生物量含量。从成熟颗粒结构内部“生根”的微生物簇表明,颗粒主要通过生物量的生长而不是通过小颗粒的聚集来生长。我们确定并讨论有助于好氧颗粒生命周期的现象。使用我们的方法,可以生成体积四面体网格,可用于验证颗粒形成的复杂模型。

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