首页> 美国卫生研究院文献>Metabolic Engineering Communications >Overexpression of the primary sigma factor gene sigA improved carotenoid production by Corynebacterium glutamicum: Application to production of β-carotene and the non-native linear C50 carotenoid bisanhydrobacterioruberin
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Overexpression of the primary sigma factor gene sigA improved carotenoid production by Corynebacterium glutamicum: Application to production of β-carotene and the non-native linear C50 carotenoid bisanhydrobacterioruberin

机译:过度表达的主要西格玛因子基因sigA改善了谷氨酸棒状杆菌的类胡萝卜素生产:在生产β-胡萝卜素和非天然线性C50类胡萝卜素双氢双氢鸟苷中的应用

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摘要

Corynebacterium glutamicum shows yellow pigmentation due to biosynthesis of the C50 carotenoid decaprenoxanthin and its glycosides. This bacterium has been engineered for production of various non-native cyclic C40 and C50 carotenoids such as β-carotene, astaxanthin or sarcinaxanthin. In this study, the effect of modulating gene expression more broadly by overexpression of sigma factor genes on carotenoid production by C. glutamicum was characterized. Overexpression of the primary sigma factor gene sigA improved lycopene production by recombinant C. glutamicum up to 8-fold. In C. glutamicum wild type, overexpression of sigA led to 2-fold increased accumulation of the native carotenoid decaprenoxanthin in the stationary growth phase. Under these conditions, genes related to thiamine synthesis and aromatic compound degradation showed increased RNA levels and addition of thiamine and the aromatic iron chelator protocatechuic acid to the culture medium enhanced carotenoid production when sigA was overexpressed. Deletion of the gene for the alternative sigma factor SigB, which is expected to replace SigA in RNA polymerase holoenzymes during transition to the stationary growth phase, also increased carotenoid production. The strategy of sigA overexpression could be successfully transferred to production of the non-native carotenoids β-carotene and bisanhydrobacterioruberin (BABR). Production of the latter is the first demonstration that C. glutamicum may accumulate a non-native linear C50 carotenoid instead of the native cyclic C50 carotenoid decaprenoxanthin.
机译:谷氨酸棒杆菌由于C50类胡萝卜素去甲肾上腺素及其糖苷的生物合成而显示出黄色的色素沉着。该细菌经过工程改造,可生产各种非天然环状C40和C50类胡萝卜素,例如β-胡萝卜素,虾青素或sarcinaxanthin。在这项研究中,特征在于通过过度表达sigma因子基因来更广泛地调节基因表达对谷氨酸棒杆菌产生类胡萝卜素的影响。原始σ因子基因sigA的过表达将重组谷氨酸棒杆菌的番茄红素产量提高了8倍。在谷氨酸棒杆菌野生型中,sigA的过度表达导致天然类胡萝卜素去甲肾上腺素在固定生长期的积累增加了2倍。在这些条件下,与硫胺素合成和芳香族化合物降解有关的基因显示出RNA水平升高,硫胺素和芳香族铁螯合剂原儿茶酸的添加增加了sigA过表达时类胡萝卜素的产生。替代sigma因子SigB的基因缺失有望在过渡到平稳生长期的过程中替代RNA聚合酶全酶中的SigA,也增加了类胡萝卜素的产生。 sigA过表达的策略可以成功地转移到非天然类胡萝卜素β-胡萝卜素和双三氢尿酸前胸腺素(BABR)的生产中。后者的产生是谷氨酸棒杆菌可能积累非天然线性C50类胡萝卜素而不是天然环状C50类胡萝卜素去甲黄嘌呤的证据。

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