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通过光生物反应器设计和培养策略提高本土微藻普通小球藻FSP-E的蛋白质产量。

Improving protein production of indigenous microalga Chlorella vulgaris FSP-E by photobioreactor design and cultivation strategies.

作者信息

Chen Chun-Yen, Lee Po-Jen, Tan Chung Hong, Lo Yung-Chung, Huang Chieh-Chen, Show Pau Loke, Lin Chih-Hung, Chang Jo-Shu

机构信息

University Center of Bioscience and Biotechnology, National Cheng Kung University, Tainan, Taiwan.

Department of Chemical Engineering, National Cheng Kung University, Tainan, Taiwan.

出版信息

Biotechnol J. 2015 Jun;10(6):905-14. doi: 10.1002/biot.201400594. Epub 2015 May 5.

Abstract

Fish meal is currently the major protein source for commercial aquaculture feed. Due to its unstable supply and increasing price, fish meal is becoming more expensive and its availability is expected to face significant challenges in the near future. Therefore, feasible alternatives to fish meal are urgently required. Microalgae have been recognized as the most promising candidates to replace fish meal because the protein composition of microalgae is similar to fish meal and the supply of microalgae-based proteins is sustainable. In this study, an indigenous microalga (Chlorella vulgaris FSP-E) with high protein content was selected, and its feasibility as an aquaculture protein source was explored. An innovative photobioreactor (PBR) utilizing cold cathode fluorescent lamps as an internal light source was designed to cultivate the FSP-E strain for protein production. This PBR could achieve a maximum biomass and protein productivity of 699 and 365 mg/L/day, respectively, under an optimum urea and iron concentration of 12.4 mM and 90 μM, respectively. In addition, amino acid analysis of the microalgal protein showed that up to 70% of the proteins in this microalgal strain consist of indispensable amino acids. Thus, C. vulgaris FSP-E appears to be a viable alternative protein source for the aquaculture industry.

摘要

鱼粉是目前商业水产养殖饲料的主要蛋白质来源。由于其供应不稳定且价格不断上涨,鱼粉正变得越来越昂贵,预计在不久的将来其可得性将面临重大挑战。因此,迫切需要可行的鱼粉替代品。微藻已被认为是最有希望替代鱼粉的候选者,因为微藻的蛋白质组成与鱼粉相似,且基于微藻的蛋白质供应具有可持续性。在本研究中,选择了一种高蛋白含量的本土微藻(普通小球藻FSP-E),并探索了其作为水产养殖蛋白质来源的可行性。设计了一种利用冷阴极荧光灯作为内部光源的创新型光生物反应器(PBR)来培养FSP-E菌株以生产蛋白质。在尿素和铁的最佳浓度分别为12.4 mM和90 μM的条件下,该PBR的最大生物量和蛋白质生产率分别可达699和365 mg/L/天。此外,对微藻蛋白质的氨基酸分析表明,该微藻菌株中高达70%的蛋白质由必需氨基酸组成。因此,普通小球藻FSP-E似乎是水产养殖业一种可行的替代蛋白质来源。

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