Department of Natural Resources Management and Agricultural Engineering, Agricultural University of Athens, Iera Odos 75, 11855 Athens, Greece.
Biotechnol Adv. 2013 Dec;31(8):1532-42. doi: 10.1016/j.biotechadv.2013.07.011. Epub 2013 Aug 6.
Microalgal biomass as feedstock for biofuel production is an attracting alternative to terrestrial plant utilization for biofuels production. However, today the microalgal cultivation systems for energy production purposes seem not yet to be economically feasible. Microalgae, though cultivated under stress conditions, such as nutrient starvation, high salinity, high temperature etc. accumulate considerable amounts (up to 60-65% of dry weight) of lipids or carbohydrates along with several secondary metabolites. Especially some of the latter are valuable compounds with an enormous range of industrial applications. The simultaneous production of lipids or carbohydrates for biofuel production and of secondary metabolites in a biorefinery concept might allow the microalgal production to be economically feasible. This paper aims to provide a review on the available literature about the cultivation of microalgae for the accumulation of high-value compounds along with lipids or carbohydrates focusing on stress cultivation conditions.
以微藻生物质作为生物燃料生产的原料,是一种有吸引力的替代方案,可替代用于生物燃料生产的陆生植物。然而,目前用于能源生产的微藻培养系统似乎还不具有经济可行性。微藻在营养饥饿、高盐度、高温等胁迫条件下培养时,会积累大量(高达干重的 60-65%)的脂类或碳水化合物,以及几种次生代谢产物。特别是其中一些次生代谢产物是具有广泛工业应用价值的化合物。在生物炼制概念中,同时生产生物燃料所需的脂类或碳水化合物以及次生代谢产物,可能使微藻生产具有经济可行性。本文旨在综述关于在胁迫培养条件下,为了积累高价值化合物而培养微藻的相关文献,重点介绍了一些胁迫培养条件。