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硅藻的混养:分子机制与工业潜力。

Mixotrophy in diatoms: Molecular mechanism and industrial potential.

机构信息

Department of Biological and Environmental Sciences, University of Gothenburg, Gothenburg, Sweden.

出版信息

Physiol Plant. 2021 Oct;173(2):603-611. doi: 10.1111/ppl.13471. Epub 2021 Jun 9.

Abstract

Diatoms are microalgae well known for their high variability and high primary productivity, being responsible for about 20% of the annual global carbon fixation. Moreover, they are interesting as potential feedstocks for the production of biofuels and high-value lipids and carotenoids. Diatoms exhibit trophic flexibility and, under certain conditions, they can grow mixotrophically by combing photosynthesis and respiration. So far, only a few species of diatoms have been tested for their mixotrophic metabolism; in some cases, they produced more biomass and with higher lipid content when grown under this condition. Phaeodactylum tricornutum is the most studied diatom species for its mixotrophic metabolism due to available genome sequence and molecular tools. However, studies in additional species are needed to better understand the conservation of this process in diatoms and its potential in industrial applications. Here, we describe the photosynthetic and respiratory pathways involved in mixotrophy and provide an overview of the trophic variability in diatoms. This review also highlights promising areas of industrial applications for diatoms when cultivated under mixotrophy.

摘要

硅藻是一种微藻,以其高度的变异性和高初级生产力而闻名,占全球每年碳固定量的约 20%。此外,它们作为生产生物燃料和高价值脂质和类胡萝卜素的潜在原料很有趣。硅藻表现出营养灵活性,在某些条件下,它们可以通过光合作用和呼吸作用的结合进行混合营养生长。到目前为止,只有少数几种硅藻的混合营养代谢已经过测试;在某些情况下,当在这种条件下生长时,它们产生更多的生物量和更高的脂质含量。菱形藻是研究混合营养代谢最广泛的硅藻物种,因为它具有可用的基因组序列和分子工具。然而,需要对其他物种进行研究,以更好地了解这一过程在硅藻中的保守性及其在工业应用中的潜力。在这里,我们描述了混合营养中涉及的光合作用和呼吸途径,并概述了硅藻的营养变异性。本综述还强调了在混合营养条件下培养硅藻时在工业应用方面有希望的领域。

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