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ITRI-G1的活性细胞外物质诱导微藻自裂解以生产微藻生物燃料。

Active extracellular substances of ITRI-G1 induce microalgae self-disruption for microalgal biofuel.

作者信息

Bai Ming-Der, Wu Shao-I, Chen Chun-Yen, Chen Jen-Chih, Lu Wen-Chang, Wan Hou-Peng

机构信息

Green Energy and Environmental Laboratories Industrial Technology Research Institute Taiwan Republic of China.

Biotechnology Center National Cheng Kung University Taiwan Republic of China.

出版信息

Eng Life Sci. 2016 Dec 21;17(5):561-566. doi: 10.1002/elsc.201600194. eCollection 2017 May.

Abstract

Microalgal cultures are a clean and sustainable means to use solar energy for CO fixation and fuel production. Microalgae grow efficiently and are rich in oil, but recovering that oil is typically expensive and consumes much energy. Therefore, effective and low-cost techniques for microalgal disruption and oil or lipid extraction are required by the algal biofuel industry. This study introduces a novel technique that uses active extracellular substances to induce microalgal cell disruption. A bacterium indigenous to Taiwan, , was used to produce the active extracellular substances, which were volatile compounds with high thermal stability. Approximately 74% of fresh microalgal cells were disrupted after a 12-h treatment with the active extracellular substances. Algal lipid extraction efficiency was improved and the oil extraction time was decreased by approximately 37.5% compared with the control treatment. The substances effectively disrupted fresh microalgal cells but not dehydrated microalgal cells. An analysis of microalgal DNA from fresh cells after disruption treatment demonstrated typical DNA laddering, indicating that disruption may have resulted from programmed cell death. This study revealed that biological treatments are environmentally friendly methods for increasing microalgal lipid extraction efficiency, and introduced a microalgal cell self-disruption mechanism.

摘要

微藻培养是利用太阳能进行二氧化碳固定和燃料生产的一种清洁且可持续的方式。微藻生长高效且富含油脂,但提取这些油脂通常成本高昂且能耗巨大。因此,藻类生物燃料产业需要有效且低成本的微藻破壁及油脂提取技术。本研究介绍了一种利用活性胞外物质诱导微藻细胞破壁的新技术。使用一种台湾本土细菌来产生活性胞外物质,这些物质是具有高热稳定性的挥发性化合物。用活性胞外物质处理12小时后,约74%的新鲜微藻细胞被破壁。与对照处理相比,藻类油脂提取效率得到提高,油脂提取时间缩短了约37.5%。这些物质能有效破坏新鲜微藻细胞,但对脱水微藻细胞无效。对破壁处理后的新鲜细胞中的微藻DNA进行分析,显示出典型的DNA梯状条带,表明破壁可能是由程序性细胞死亡导致的。本研究表明,生物处理是提高微藻油脂提取效率的环保方法,并介绍了一种微藻细胞自我破壁机制。

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