School of Civil Engineering & Architecture, Wuhan University of Technology, Wuhan 430070, PR China.
School of Civil Engineering & Architecture, Wuhan University of Technology, Wuhan 430070, PR China.
Bioresour Technol. 2025 Jan;416:131796. doi: 10.1016/j.biortech.2024.131796. Epub 2024 Nov 10.
To assess the inherent effects of light-dark cycle on the aniline degradation and nitrogen removal in algal-bacterial symbiotic system, three groups with different photoperiods (0L:12D;6L:6D;12L:0D) were set up. The results revealed that the aniline degradation rate of the three systems all surpassed 99 %, the total nitrogen removal rate of Z2-6L:6D was approximately 36 % higher than Z1-0L:12D eventually, the Z1-0L:12D was restrained by NH-N assimilation and nitrification while anoxic denitrification in Z3-12L:0D. The disappearance of microalgae biomass was accompanied by the sharp decreased of polysaccharide in Z1 and longer illumination suppressed the secretion of extracellular polymeric substances, the Z3 yielded slightly superior biomass production despite the double illumination compared with Z2. Moreover, high throughput sequencing analysis illustrated that the microbial community structure in Z2 was more abundant and even than Z3, the TM7a, norank_f__norank_o__Saccharimonadales, Ellin6067 and Scenedesmus proliferated wildly and the photoinhibition to functional genus was effectively alleviated in Z2.
为了评估光暗周期对藻类-细菌共生系统中苯胺降解和脱氮的内在影响,设置了三组不同的光周期(0L:12D;6L:6D;12L:0D)。结果表明,三组系统的苯胺降解率均超过 99%,Z2-6L:6D 的总氮去除率最终比 Z1-0L:12D 高约 36%,Z1-0L:12D 受到 NH-N 同化和硝化作用的限制,而在 Z3-12L:0D 中进行缺氧反硝化。微藻生物量的消失伴随着 Z1 中多糖的急剧下降,较长的光照抑制了胞外聚合物的分泌,尽管与 Z2 相比,Z3 接受了双倍的光照,但仍产生了稍高的生物量。此外,高通量测序分析表明,Z2 中的微生物群落结构比 Z3 更加丰富和均匀,TM7a、norank_f__norank_o__Saccharimonadales、Ellin6067 和 Scenedesmus 大量繁殖,并且在 Z2 中有效缓解了对功能属的光抑制。