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微藻-细菌共生在微藻生长和生物燃料生产中的作用:综述。

Microalgae-bacteria symbiosis in microalgal growth and biofuel production: a review.

机构信息

Microbiology Group, College of Biological Science and Technology, Shenyang Agricultural University, Shenyang, China.

Section for Microbiology, Department of Bioscience, Aarhus University, Aarhus C, Denmark.

出版信息

J Appl Microbiol. 2019 Feb;126(2):359-368. doi: 10.1111/jam.14095. Epub 2018 Oct 3.

Abstract

Photosynthetic microalgae can capture solar energy and convert it to bioenergy and biochemical products. In nature or industrial processes, microalgae live together with bacterial communities and may maintain symbiotic relationships. In general interactions, microalgae exude dissolved organic carbon that becomes available to bacteria. In return, the bacteria remineralize sulphur, nitrogen and phosphorous to support the further growth of microalgae. In specific interactions, heterotrophic bacteria supply B vitamins as organic cofactors or produce siderophores to bind iron, which could be utilized by microalgae, while the algae supply fixed carbon to the bacteria in return. In this review, we focus on mutualistic relationship between microalgae and bacteria, summarizing recent studies on the mechanisms involved in microalgae-bacteria symbiosis. Symbiotic bacteria on promoting microalgal growth are described and the relevance of microalgae-bacteria interactions for biofuel production processes is discussed. Symbiotic microalgae-bacteria consortia could be utilized to improve microalgal biomass production and to enrich the biomass with valuable chemical and energy compounds. The suitable control of such biological interactions between microalgae and bacteria will help to improve the microalgae-based biomass and biofuel production in the future.

摘要

光合微藻可以捕获太阳能,并将其转化为生物能源和生化产品。在自然界或工业过程中,微藻与细菌群落共存,并可能维持共生关系。在一般的相互作用中,微藻释放出溶解的有机碳,这些碳可供细菌利用。作为回报,细菌将硫、氮和磷再矿化,以支持微藻的进一步生长。在特定的相互作用中,异养细菌提供 B 族维生素作为有机辅因子,或产生铁载体来结合铁,这些铁可以被微藻利用,而藻类则将固定碳返还给细菌。在这篇综述中,我们专注于微藻和细菌之间的互利关系,总结了微藻-细菌共生关系中涉及的机制的最新研究。描述了促进微藻生长的共生细菌,并讨论了微藻-细菌相互作用对生物燃料生产过程的相关性。共生的微藻-细菌联合体可以用来提高微藻生物质的产量,并使生物质富含有价值的化学和能源化合物。适当控制微藻和细菌之间的这种生物相互作用将有助于未来提高基于微藻的生物质和生物燃料的产量。

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