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一种同时具有增强生长和脂质产生能力的突变体的开发与表征。

Development and characterization of a mutant with simultaneously enhanced growth and lipid production.

作者信息

Ryu Ae Jin, Kang Nam Kyu, Jeon Seungjib, Hur Dong Hoon, Lee Eun Mi, Lee Do Yup, Jeong Byeong-Ryool, Chang Yong Keun, Jeong Ki Jun

机构信息

1Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141 Republic of Korea.

2Advanced Biomass R&D Center (ABC), KAIST, 291 Daehak-ro, Yuseong-gu, Daejeon, 34141 Republic of Korea.

出版信息

Biotechnol Biofuels. 2020 Mar 5;13:38. doi: 10.1186/s13068-020-01681-4. eCollection 2020.

Abstract

BACKGROUND

The necessity to develop high lipid-producing microalgae is emphasized for the commercialization of microalgal biomass, which is environmentally friendly and sustainable. are one of the best industrial microalgae and have been widely studied for their lipids, including high-value polyunsaturated fatty acids (PUFAs). Many reports on the genetic and biological engineering of to improve their growth and lipid contents have been published.

RESULTS

We performed insertional mutagenesis in , and screened mutants with high lipid contents using fluorescence-activated cell sorting (FACS). We isolated a mutant, Mut68, which showed improved growth and a concomitant increase in lipid contents. Mut68 exhibited 53% faster growth rate and 34% higher fatty acid methyl ester (FAME) contents after incubation for 8 days, resulting in a 75% increase in FAME productivity compared to that in the wild type (WT). By sequencing the whole genome, we identified the disrupted gene in Mut68 that encoded trehalose-6-phosphate (T6P) synthase (TPS). TPS is composed of two domains: TPS domain and T6P phosphatase (TPP) domain, which catalyze the initial formation of T6P and dephosphorylation to trehalose, respectively. Mut68 was disrupted at the TPP domain in the C-terminal half, which was confirmed by metabolic analyses revealing a great reduction in the trehalose content in Mut68. Consistent with the unaffected N-terminal TPS domain, Mut68 showed moderate increase in T6P that is known for regulation of sugar metabolism, growth, and lipid biosynthesis. Interestingly, the metabolic analyses also revealed a significant increase in stress-related amino acids, including proline and glutamine, which may further contribute to the Mut68 phenotypes.

CONCLUSION

We have successfully isolated an insertional mutant showing improved growth and lipid production. Moreover, we identified the disrupted gene encoding TPS. Consistent with the disrupted TPP domain, metabolic analyses revealed a moderate increase in T6P and greatly reduced trehalose. Herein, we provide an excellent proof of concept that the selection of insertional mutations via FACS can be employed for the isolation of mutants with improved growth and lipid production. In addition, trehalose and genes encoding TPS will provide novel targets for chemical and genetic engineering, in other microalgae and organisms as well as .

摘要

背景

为实现微藻生物质的商业化,开发高产脂质微藻的必要性得到了强调,微藻生物质具有环境友好和可持续的特点。[具体微藻名称]是最佳的工业微藻之一,其脂质,包括高价值的多不饱和脂肪酸(PUFAs),已得到广泛研究。关于[具体微藻名称]的遗传和生物工程以改善其生长和脂质含量的许多报道已经发表。

结果

我们在[具体微藻名称]中进行了插入诱变,并使用荧光激活细胞分选(FACS)筛选了高脂质含量的突变体。我们分离出一个突变体Mut68,其生长得到改善,脂质含量随之增加。培养8天后,Mut68的生长速率提高了53%,脂肪酸甲酯(FAME)含量提高了34%,与野生型(WT)相比,FAME生产力提高了75%。通过对全基因组进行测序,我们确定了Mut68中被破坏的基因,该基因编码海藻糖-6-磷酸(T6P)合酶(TPS)。TPS由两个结构域组成:TPS结构域和T6P磷酸酶(TPP)结构域,它们分别催化T6P的初始形成和去磷酸化生成海藻糖。Mut68在C端的TPP结构域处被破坏,代谢分析证实Mut68中海藻糖含量大幅降低,这一点得到了证实。与未受影响的N端TPS结构域一致,Mut68中已知参与糖代谢、生长和脂质生物合成调节的T6P适度增加。有趣的是,代谢分析还显示与应激相关的氨基酸,包括脯氨酸和谷氨酰胺,显著增加,这可能进一步导致了Mut68的表型。

结论

我们成功分离出一个生长和脂质产量得到改善的插入突变体。此外,我们确定了编码TPS的被破坏基因。与被破坏的TPP结构域一致,代谢分析显示T6P适度增加,海藻糖大幅减少。在此,我们提供了一个极好的概念验证,即通过FACS选择插入突变可用于分离生长和脂质产量得到改善的突变体。此外,海藻糖和编码TPS的基因将为其他微藻和生物以及[具体微藻名称]的化学和基因工程提供新的靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f858/7057510/0e0aa9393338/13068_2020_1681_Fig1_HTML.jpg

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