Dai Chenming, Wang Feifei
School of Modern Industry for Selenium Science and Engineering, Wuhan Polytechnic University, Wuhan 430023, China; School of Bioscience and Bioengineering, South China University of Technology, Guangzhou 510006, China.
School of Modern Industry for Selenium Science and Engineering, Wuhan Polytechnic University, Wuhan 430023, China.
Bioresour Technol. 2024 Feb;393:130019. doi: 10.1016/j.biortech.2023.130019. Epub 2023 Nov 23.
The use of microalgae-bacteria consortia (MBC) for wastewater treatment has garnered attention as their interactions impart greater environmental adaptability and stability compared with that obtained by only microalgae or bacteria use, thereby improving the efficiency of pollutant removal and bio-product productivity. Additionally, the value-added bio-products produced via biorefineries can improve economic competitiveness and environmental sustainability. Therefore, this review focuses on the interaction between microalgae and bacteria that leads to nutrient exchange, gene transfer and signal transduction to comprehensively understand the interaction mechanisms underlying their strong adaptability. In addition, it includes recent research in which MBC has been efficiently used to treat various wastewater. Moreover, the review summarizes the use of MBC-produced biomass in a biorefining context to produce biofuel, biomaterial, high-value bio-products and bio-fertilizer. Overall, more effort is needed to identify the symbiotic mechanism in MBC to provide a foundation for circular bio-economy and environmentally friendly development programmes.
利用微藻-细菌联合体(MBC)进行废水处理已受到关注,因为与仅使用微藻或细菌相比,它们之间的相互作用赋予了更强的环境适应性和稳定性,从而提高了污染物去除效率和生物产品生产率。此外,通过生物精炼厂生产的增值生物产品可以提高经济竞争力和环境可持续性。因此,本综述重点关注微藻与细菌之间导致营养物质交换、基因转移和信号转导的相互作用,以全面了解其强大适应性背后的相互作用机制。此外,它还包括最近关于MBC已被有效用于处理各种废水的研究。此外,该综述总结了在生物精炼背景下利用MBC产生的生物质生产生物燃料、生物材料、高价值生物产品和生物肥料的情况。总体而言,需要付出更多努力来确定MBC中的共生机制,为循环生物经济和环境友好型发展计划提供基础。