Li Xianglai, Chen Zhenya, Wu Yifei, Yan Yajun, Sun Xinxiao, Yuan Qipeng
State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology , Beijing 100029, China.
College of Engineering, The University of Georgia , Athens, Georgia 30602, United States.
ACS Synth Biol. 2018 Feb 16;7(2):647-654. doi: 10.1021/acssynbio.7b00385. Epub 2018 Jan 10.
Hydroxytyrosol (HT) is a valuable natural phenolic compound with strong antioxidant activity and various physiological and pharmaceutical functions. In this study, we established an artificial pathway for HT biosynthesis. First, efficient enzymes were selected to construct a tyrosol biosynthetic pathway. Aro10 from Saccharomyces cerevisiae was shown to be a better ketoacid decarboxylase than Kivd from Lactococcus lactis for tyrosol production. While knockout of feaB significantly decreased accumulation of the byproduct 4-hydroxyphenylacetic acid, overexpression of alcohol dehydrogenase ADH6 further improved tyrosol production. The titers of tyrosol reached 1469 ± 56 mg/L from tyrosine and 620 ± 23 mg/L from simple carbon sources, respectively. The pathway was further extended for HT production by overexpressing Escherichia coli native hydroxylase HpaBC. To enhance transamination of tyrosine to 4-hydroxyphenylpyruvate, NHCl was removed from the culture media. To decrease oxidation of HT, ascorbic acid was added to the cell culture. To reduce the toxicity of HT, 1-dodecanol was selected as the extractant for in situ removal of HT. These efforts led to an additive increase in HT titer to 1243 ± 165 mg/L in the feeding experiment. Assembly of the full pathway resulted in 647 ± 35 mg/L of HT from simple carbon sources. This work provides a promising alternative for sustainable production of HT, which shows scale-up potential.
羟基酪醇(HT)是一种具有重要价值的天然酚类化合物,具有强大的抗氧化活性以及多种生理和药理功能。在本研究中,我们建立了一条用于HT生物合成的人工途径。首先,选择了高效的酶来构建酪醇生物合成途径。结果表明,来自酿酒酵母的Aro10作为一种酮酸脱羧酶,在酪醇生产方面比来自乳酸乳球菌的Kivd表现更好。敲除feaB显著降低了副产物4-羟基苯乙酸的积累,而过量表达乙醇脱氢酶ADH6进一步提高了酪醇的产量。分别从酪氨酸和简单碳源获得的酪醇产量达到了1469±56 mg/L和620±23 mg/L。通过过量表达大肠杆菌天然羟化酶HpaBC,进一步扩展该途径用于HT的生产。为了增强酪氨酸向4-羟基苯丙酮酸的转氨作用,从培养基中去除了氯化铵。为了减少HT的氧化,向细胞培养物中添加了抗坏血酸。为了降低HT的毒性,选择1-十二醇作为原位去除HT的萃取剂。这些努力使得在补料实验中HT产量增加到1243±165 mg/L。完整途径的组装使得从简单碳源获得的HT产量达到647±35 mg/L。这项工作为HT的可持续生产提供了一个有前景的替代方案,具有扩大规模的潜力。