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微藻油脂的生物化学与生物技术展望。

Microalgal lipids biochemistry and biotechnological perspectives.

机构信息

Division of Genetics, Cell & Development Biology, Department of Biology, University of Patras, Patras 26504, Greece.

Department of Biological Sciences, King Abdulaziz University, Jeddah 21589, Saudi Arabia.

出版信息

Biotechnol Adv. 2014 Dec;32(8):1476-93. doi: 10.1016/j.biotechadv.2014.10.003. Epub 2014 Oct 14.

Abstract

In the last few years, there has been an intense interest in using microalgal lipids in food, chemical and pharmaceutical industries and cosmetology, while a noteworthy research has been performed focusing on all aspects of microalgal lipid production. This includes basic research on the pathways of solar energy conversion and on lipid biosynthesis and catabolism, and applied research dealing with the various biological and technical bottlenecks of the lipid production process. In here, we review the current knowledge in microalgal lipids with respect to their metabolism and various biotechnological applications, and we discuss potential future perspectives. The committing step in fatty acid biosynthesis is the carboxylation of acetyl-CoA to form malonyl-CoA that is then introduced in the fatty acid synthesis cycle leading to the formation of palmitic and stearic acids. Oleic acid may also be synthesized after stearic acid desaturation while further conversions of the fatty acids (i.e. desaturations, elongations) occur after their esterification with structural lipids of both plastids and the endoplasmic reticulum. The aliphatic chains are also used as building blocks for structuring storage acylglycerols via the Kennedy pathway. Current research, aiming to enhance lipogenesis in the microalgal cell, is focusing on over-expressing key-enzymes involved in the earlier steps of the pathway of fatty acid synthesis. A complementary plan would be the repression of lipid catabolism by down-regulating acylglycerol hydrolysis and/or β-oxidation. The tendency of oleaginous microalgae to synthesize, apart from lipids, significant amounts of other energy-rich compounds such as sugars, in processes competitive to lipogenesis, deserves attention since the lipid yield may be considerably increased by blocking competitive metabolic pathways. The majority of microalgal production occurs in outdoor cultivation and for this reason biotechnological applications face some difficulties. Therefore, algal production systems need to be improved and harvesting systems need to be more effective in order for their industrial applications to become more competitive and economically viable. Besides, a reduction of the production cost of microalgal lipids can be achieved by combining lipid production with other commercial applications. The combined production of bioactive products and lipids, when possible, can support the commercial viability of both processes. Hydrophobic compounds can be extracted simultaneously with lipids and then purified, while hydrophilic compounds such as proteins and sugars may be extracted from the defatted biomass. The microalgae also have applications in environmental biotechnology since they can be used for bioremediation of wastewater and to monitor environmental toxicants. Algal biomass produced during wastewater treatment may be further valorized in the biofuel manufacture. It is anticipated that the high microalgal lipid potential will force research towards finding effective ways to manipulate biochemical pathways involved in lipid biosynthesis and towards cost effective algal cultivation and harvesting systems, as well.

摘要

在过去的几年中,人们对将微藻脂质应用于食品、化学和制药行业以及化妆品行业产生了浓厚的兴趣,同时也对微藻脂质生产的各个方面进行了大量的研究。这包括对太阳能转化途径以及脂质生物合成和分解代谢的基础研究,以及对脂质生产过程中各种生物和技术瓶颈的应用研究。在这里,我们回顾了微藻脂质在代谢和各种生物技术应用方面的现有知识,并讨论了潜在的未来前景。脂肪酸生物合成的关键步骤是乙酰辅酶 A 的羧化形成丙二酰辅酶 A,然后将其引入脂肪酸合成循环,形成棕榈酸和硬脂酸。油酸也可以在硬脂酸去饱和后合成,而脂肪酸的进一步转化(即去饱和、延伸)则发生在它们与质体和内质网的结构脂质酯化之后。脂肪链还可以通过 Kennedy 途径用作构建储存酰基甘油的构建块。目前旨在增强微藻细胞中脂生成的研究集中在过表达参与脂肪酸合成途径早期步骤的关键酶上。一个互补的方案是通过下调甘油三酯水解和/或β-氧化来抑制脂质分解代谢。除了脂质外,产油微藻还会合成大量其他富含能量的化合物,如糖,这一过程与脂生成竞争,值得关注,因为通过阻断竞争性代谢途径,可以显著提高脂质产量。大多数微藻的生产都是在户外进行的,因此生物技术应用面临一些困难。因此,需要改进藻类生产系统,提高收获系统的效率,以便其工业应用更具竞争力和经济可行性。此外,通过将脂质生产与其他商业应用相结合,可以降低微藻脂质的生产成本。如果可能的话,生物活性产物和脂质的联合生产可以支持两个过程的商业可行性。疏水性化合物可以与脂质同时提取,然后进行纯化,而亲水性化合物,如蛋白质和糖,可以从脱脂生物质中提取。微藻还可以应用于环境生物技术,因为它们可以用于废水的生物修复和监测环境毒物。在废水处理过程中产生的藻类生物质可以进一步用于生物燃料的制造。预计微藻的高脂质潜力将迫使研究人员寻找有效方法来操纵参与脂质生物合成的生化途径,并寻找具有成本效益的藻类培养和收获系统。

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