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Phospholipid: diacylglycerol acyltransferase contributes to the conversion of membrane lipids into triacylglycerol in Myrmecia incisa during the nitrogen starvation stress

机译:磷脂:二酰基甘油酰基转移酶有助于氮饥饿胁迫下桃金娘科中膜脂转化为三酰基甘油

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摘要

In addition to the Kennedy pathway for de novo biosynthesis, triacylglycerol (TAG), the most important stock for microalgae-based biodiesel production, can be synthesized by phospholipid: diacylglycerol acyltransferase (PDAT) that transfers an acyl group from phospholipids (PLs) to diacylglycerol (DAG). This study presents a novel gene that encodes PDAT from the green microalga Myrmecia incisa Reisigl H4301 (designated MiPDAT ). MiPDAT is localized on the plasma membrane (PM) via the agroinfiltration of tobacco leaves with a green fluorescent protein-fused construct. MiPDAT synthesizes TAG based on functional complementary experiments in the mutant yeast strain H1246 and the membrane lipid phosphatidylcholine (PC) is preferentially used as substrates as revealed by in vitro enzyme activity assay. The gradually increased transcription levels of MiPDAT in M. incisa during the cultivation under nitrogen starvation conditions is proposed to be responsible for the decrease and increase of the PC and TAG levels, respectively, as detected by liquid chromatography-mass spectrometry after 4 d of nitrogen starvation. In addition, the mechanism by which MiPDAT in this microalga uses PC to yield TAG is discussed. Accordingly, it is concluded that this PM-located PDAT contributes to the conversion of membrane lipids into TAG in M. incisa during the nitrogen starvation stress.
机译:除了用于从头进行生物合成的肯尼迪途径外,三酰基甘油(TAG)是微藻类生物柴油生产中最重要的原料,还可以通过磷脂合成:二酰基甘油酰基转移酶(PDAT),可将酰基基团从磷脂(PLs)转移至二酰基甘油(DAG)。这项研究提出了一个编码绿色微藻Myrmecia incisa Reisigl H4301(称为MiPDAT1)的PDAT的新基因。通过绿色荧光蛋白融合构建物的烟叶农杆菌浸润,MiPDAT位于质膜(PM)上。 MiPDAT基于突变酵母菌株H1246中的功能互补实验合成TAG,并且如体外酶活性测定所揭示的,膜脂质磷脂酰胆碱(PC)优先用作底物。建议在氮饥饿条件下培养过程中,印度鹦鹉螺中MiPDAT的转录水平逐渐升高,这分别导致PC和TAG水平的降低和升高,这是在氮气流4 d后通过液相色谱-质谱法检测到的。饥饿。此外,还讨论了该微藻中的MiPDAT利用PC产生TAG的机理。因此,可以得出结论,在氮饥饿胁迫期间,这种位于PM处的PDAT有助于在膜隐孢子虫中将膜脂转化为TAG。

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