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Metabolic engineering to enhance biosynthesis of both docosahexaenoic acid and odd-chain fatty acids in Schizochytrium sp. S31

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      1. 건강보조식품
논문

Metabolic engineering to enhance biosynthesis of both docosahexaenoic acid and odd-chain fatty acids in Schizochytrium sp. S31

학술지

Biotechnology for biofuels

저자명

Wang, Fangzhong; Bi, Yali; Diao, Jinjin; Lv, Mingming; Cui, Jinyu; Chen, Lei; Zhang, Weiwen

초록

<P><B>Background</B></P><P>Docosahexaenoic acid (DHA, C22:6) and odd-chain fatty acids (OCFAs, C15:0 and C17:0) have attracted great interest, since they have been widely used in food and therapeutic industries, as well as chemical industry, such as biodiesel production and improvement. The oil-producing heterotrophic microalgae <I>Schizochytrium</I> sp. 31 is one of main DHA-producing strains. Recently, it was found that <I>Schizochytrium</I> can also synthesize OCFAs; however, contents and titers of DHA and OCFAs in <I>Schizochytrium</I> are still low, which limit its practical application.</P><P><B>Results</B></P><P>In this study, we found that acetyl-CoA carboxylase suffered from a feedback inhibition by C16-CoA in <I>Schizochytrium</I>, and relief of the inhibition resulted in improved both lipid content and the ratio of OCFAs in total fatty acids. Based on this finding, a novel strategy for elevating both DHA and OCFAs contents was established. First, the total lipid accumulation was increased by overexpressing a malic enzyme from <I>Crypthecodinium cohnii</I> to elevate NADPH supply. Second, the inhibition effect on acetyl-CoA carboxylase was relieved by overexpressing a codon-optimized <I>ELO3</I> gene from <I>Mortierella alpina</I>, which encodes an elongase enzyme responsible for converting C16 into C18 fatty acids. After the above two-step engineering, contents of DHA and OCFAs were increased by 1.39- and 3.30-fold, reaching a level of 26.70 and 25.08% of dry cell weight, respectively, which are the highest contents reported so far for <I>Schizochytrium</I>. The titers of DHA and OCFAs were elevated by 1.08- and 2.57-fold, reaching a level of 3.54 and 3.32&nbsp;g/L, respectively. Notably, the OCFAs titer achieved was 2.66-fold higher than the highest reported in <I>Escherichia coli</I> (1.25&nbsp;g/L), implying potential value for industry application. To reveal the potential metabolic mechanism for the enhanced biosynthesis of both DHA and OCFAs, LC&#x2013;MS metabolomic analysis was employed and the results showed that the pentose phosphate pathway and the glycolysis pathway were strengthened and intracellular propionyl-CoA concentration were also significantly increased in the engineered <I>Schizochytrium</I>, suggesting an increased supply of NADPH, acetyl-CoA, and propionyl-CoA for DHA and OCFAs accumulation.</P><P><B>Conclusions</B></P><P>The discovery provides a new source of OCFAs production, and proposes a new strategy to improve contents and titers of both DHA and OCFAs in <I>Schizochytrium</I>. These will be valuable for improving commercial potential of <I>Schizochytrium</I> and guiding the engineering strategy in other fatty acids producing heterotrophic microalga.</P><P><B>Electronic supplementary material</B></P><P>The online version of this article (10.1186/s13068-019-1484-x) contains supplementary material, which is available to authorized users.</P>

발행연도

2019

발행기관

BioMed Central

라이선스

cc-by

ISSN

1754-6834

12

페이지

pp.141

주제어

Docosahexaenoic acid; Odd-chain fatty acids; Malic enzyme; Acetyl-CoA carboxylase; Schizochytrium sp. S31

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논문; 2019-06-08

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