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利用工程化大肠杆菌从脂质提取后的微藻生物质残渣中生产类异戊二烯

Isoprenoids Production from Lipid-Extracted Microalgal Biomass Residues Using Engineered E. coli.

作者信息

Wang Sumeng, Yang Jianming

机构信息

Key Lab of Applied Mycology, College of Life Sciences, Qingdao Agricultural University, Qingdao 266109, China.

出版信息

Molecules. 2017 Jun 9;22(6):960. doi: 10.3390/molecules22060960.

Abstract

Microalgae are recognized as a third generation feedstock for biofuel production due to their rapid growth rates and lignin-free characteristics. In this study, a lipid extracted microalgal biomass residues was used as the raw material to produce isoprene, α-pinene and β-pinene with an engineered strain. We adopted an optimal sulfuric acid hydrolysis method (1:7 ratio of solid to acid solution, 32% () concentration of sulfuric acid solution at 90 °C for 90 min) to efficiently convert holocellulose into glucose efficiently (6.37 g/L). Futhermore, we explored a novel detoxification strategy (phosphoric acid/calcium hydroxide) to remove inhibitors and notably acetic acid, furfural and 5-hydroxymethylfurfural (5-HMF) were reduced by 5.32%, different number given later 99.19% and 98.22%, respectively. Finally, the fermentation concentrations of isoprene (223.23 mg/L), α-pinene (382.21 μg/L) and β-pinene (17.4 mg/L) were achieved using the detoxified hydrolysate as the carbon source, equivalent to approximately 86.02%, 90.16% and 88.32% of those produced by the engineered strain fermented on pure glucose, respectively.

摘要

微藻因其生长速度快且无木质素的特性,被认为是第三代生物燃料生产原料。在本研究中,以脂质提取后的微藻生物质残渣为原料,利用工程菌株生产异戊二烯、α-蒎烯和β-蒎烯。我们采用了一种优化的硫酸水解方法(固液比为1:7,硫酸溶液浓度为32%,在90℃下反应90分钟),以高效地将全纤维素转化为葡萄糖(6.37克/升)。此外,我们探索了一种新型解毒策略(磷酸/氢氧化钙)来去除抑制剂,显著地将乙酸、糠醛和5-羟甲基糠醛(5-HMF)分别降低了5.32%、99.19%和98.22%(此处“different number given later”表述有误,应忽略)。最后,以解毒后的水解产物为碳源,异戊二烯、α-蒎烯和β-蒎烯的发酵浓度分别达到了223.23毫克/升、382.21微克/升和17.4毫克/升,分别相当于工程菌株在纯葡萄糖上发酵所产生浓度的约86.02%、90.16%和88.32%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a13/6152769/571c335175e0/molecules-22-00960-g001.jpg

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