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通过代谢和酶工程在[具体内容缺失]中高效生产虾青素。

Efficient production of astaxanthin in through metabolic and enzyme engineering.

作者信息

Abdullah Chalak Najat, Liu Mengsu, Chen Qihang, Gao Song, Zhang Changtai, Liu Shike, Zhou Jingwen

机构信息

School of Biotechnology, Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu, 214122, China.

Department of Biology, College of Science, University of Sulaimani, 46001, Sulaimaniyah, Kurdistan region, Iraq.

出版信息

Synth Syst Biotechnol. 2025 Feb 28;10(3):737-750. doi: 10.1016/j.synbio.2025.02.014. eCollection 2025 Sep.

Abstract

Astaxanthin is a natural red carotenoid, commonly used as an additive in the pharmaceutical industry and as a nutritional supplement owing to its notable antioxidant benefits. However, a complex biosynthetic pathway poses a challenge to biosynthesis of astaxanthin. Here, was engineered through multiple strategies for high level production of astaxanthin using a cheap mineral medium. For the production of β-carotene, a platform strain was constructed in which 411.7 mg/L of β-carotene was produced at a shake-flask level. Integration of algal β-carotene ketolase and β-carotene hydroxylase led to the production of 12.3 mg/L of astaxanthin. Furthermore, construction of and as a single enzyme complex along with the enhanced catalytic activity of the enzymes led to the accumulation of 41.0 mg/L of astaxanthin. Iterative gene integration into the genome and direction of the astaxanthin production pathway into sub-organelles substantially increased astaxanthin production (172.1 mg/L). Finally, restoration of the auxotrophic markers and medium optimization further improved astaxanthin production to 237.3 mg/L. The aforementioned approaches were employed in fed-batch fermentation to produce 2820 mg/L of astaxanthin (229-fold improvement regarding the starter strain), with an average productivity of 434 mg/L/d and a yield of 5.6 mg/g glucose, which is the highest reported productivity in .

摘要

虾青素是一种天然的红色类胡萝卜素,由于其显著的抗氧化益处,常用于制药行业作为添加剂和营养补充剂。然而,复杂的生物合成途径对虾青素的生物合成构成了挑战。在此,通过多种策略对其进行工程改造,以使用廉价的矿物培养基高水平生产虾青素。为了生产β-胡萝卜素,构建了一个平台菌株,在摇瓶水平上可生产411.7mg/L的β-胡萝卜素。整合藻类β-胡萝卜素酮酶和β-胡萝卜素羟化酶可产生12.3mg/L的虾青素。此外,构建作为单一酶复合物的[具体内容缺失]以及增强酶的催化活性导致积累了41.0mg/L的虾青素。将基因迭代整合到基因组中并将虾青素生产途径引导至亚细胞器中,显著提高了虾青素的产量(172.1mg/L)。最后,恢复营养缺陷型标记并优化培养基进一步将虾青素产量提高到237.3mg/L。上述方法用于分批补料发酵,以生产2820mg/L的虾青素(相对于起始菌株提高了229倍),平均生产力为434mg/L/天,葡萄糖产率为5.6mg/g,这是[具体范围缺失]中报道的最高生产力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a974/12002715/db31df1fb6f7/ga1.jpg

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