Sun Li, Bai Zijia, Yang Quan, Fu Ruiyao, Li Huixue, Li Xianhui
Tianjin Key Laboratory of Clean Energy and Pollution Control, School of Energy and Environmental Engineering, Hebei University of Technology, Tianjin, China.
Tianjin Key Laboratory of Clean Energy and Pollution Control, School of Energy and Environmental Engineering, Hebei University of Technology, Tianjin, China.
Water Res. 2024 Apr 1;253:121283. doi: 10.1016/j.watres.2024.121283. Epub 2024 Feb 6.
The initial start-up attachment stage that dominates biofilm formation is an unstable process and is time-consuming. In the present study, Chlorella sp. was introduced into a general aerobic biofilm system to explore whether the addition of algae improved the initial attachment phase of biofilm. Compared with those of the bacterial biofilms, the initial algal-bacterial biofilms were more stable and had a thicker, denser, and rougher surface. Further investigation suggested that the concentration of extracellular polymeric substances (EPSs) in the algal-bacterial biofilm was 31.33 % greater than that in the bacterial biofilm. Additionally, the algal-bacterial flocs had greater free energies of absolute cohesion (ΔG) and adhesion energy (∆G) than did the bacterial flocs. These phenomena contribute to the speediness and stabilization of initial algal-bacterial start-up biofilms. Specifically, algae inoculation increased microbial community diversity and promoted the growth of bacterial members related to biofilm development. In conclusion, both physicochemical interactions and biological processes strongly influence microbial attachment during the initial biofilm formation process and further promote strengthening.
主导生物膜形成的初始启动附着阶段是一个不稳定且耗时的过程。在本研究中,将小球藻引入到一个普通的好氧生物膜系统中,以探究藻类的添加是否改善了生物膜的初始附着阶段。与细菌生物膜相比,初始藻菌生物膜更稳定,表面更厚、更致密且更粗糙。进一步研究表明,藻菌生物膜中胞外聚合物(EPSs)的浓度比细菌生物膜中的高31.33%。此外,藻菌絮体比细菌絮体具有更大的绝对内聚自由能(ΔG)和粘附能(∆G)。这些现象有助于初始藻菌启动生物膜的快速形成和稳定。具体而言,接种藻类增加了微生物群落多样性,并促进了与生物膜发育相关的细菌成员的生长。总之,物理化学相互作用和生物过程在初始生物膜形成过程中都强烈影响微生物附着,并进一步促进强化作用。