Department of Biochemistry and Molecular Biophysics, Kansas State University, Manhattan, KS, 66506, USA.
Plant J. 2021 May;106(4):953-964. doi: 10.1111/tpj.15210. Epub 2021 Mar 22.
Acetyl-triacylglycerols (acetyl-TAG) contain an acetate group in the sn-3 position instead of the long-chain fatty acid present in regular triacylglycerol (TAG). The acetate group confers unique physical properties such as reduced viscosity and a lower freezing point to acetyl-TAG, providing advantages for use as emulsifiers, lubricants, and 'drop-in' biofuels. Previously, the synthesis of acetyl-TAG in the seeds of the oilseed crop camelina (Camelina sativa) was achieved through the heterologous expression of the diacylglycerol acetyltransferase gene EaDAcT, isolated from Euonymus alatus seeds that naturally accumulate high levels of acetyl-TAG. Subsequent work identified a similar acetyltransferase, EfDAcT, in the seeds of Euonymus fortunei, that possesses higher in vitro activity compared to EaDAcT. In this study, the seed-specific expression of EfDAcT in camelina led to a 20 mol% increase in acetyl-TAG levels over that of EaDAcT. Coupling EfDAcT expression with suppression of the endogenous competing enzyme DGAT1 further enhanced acetyl-TAG accumulation, up to 90 mol% in the best transgenic lines. Accumulation of high levels of acetyl-TAG was stable over multiple generations, with minimal effect on seed size, weight, and fatty acid content. Slight delays in germination were noted in transgenic seeds compared to the wild type. EfDAcT transcript and protein levels were correlated during seed development with a limited window of EfDAcT protein accumulation. In high acetyl-TAG producing lines, EfDAcT protein expression in developing seeds did not reflect the eventual acetyl-TAG levels in mature seeds, suggesting that other factors limit acetyl-TAG accumulation.
乙酰三酰基甘油(acetyl-TAG)在 sn-3 位含有一个乙酸基,而不是在普通三酰基甘油(TAG)中存在的长链脂肪酸。乙酸基赋予乙酰-TAG独特的物理性质,如降低粘度和降低冰点,使其成为乳化剂、润滑剂和“替代”生物燃料的优势。此前,通过异源表达从卫矛种子中分离出的二酰基甘油乙酰转移酶基因 EaDAcT,在油籽作物荠蓝(Camelina sativa)的种子中实现了乙酰-TAG 的合成,卫矛种子天然积累高水平的乙酰-TAG。随后的工作在卫矛属植物 Euonymus fortunei 的种子中鉴定出一种类似的乙酰转移酶 EfDAcT,其体外活性高于 EaDAcT。在这项研究中,EfDAcT 在荠蓝种子中的特异性表达使乙酰-TAG 水平比 EaDAcT 增加了 20 mol%。将 EfDAcT 表达与内源竞争酶 DGAT1 的抑制相结合,进一步提高了乙酰-TAG 的积累,在最佳转基因系中高达 90 mol%。高水平乙酰-TAG 的积累在多个世代中是稳定的,对种子大小、重量和脂肪酸含量的影响最小。与野生型相比,转基因种子的发芽略有延迟。在种子发育过程中,EfDAcT 转录本和蛋白水平与 EfDAcT 蛋白积累的有限窗口相关。在高乙酰-TAG 产生的系中,发育种子中 EfDAcT 蛋白的表达并不能反映成熟种子中最终的乙酰-TAG 水平,这表明其他因素限制了乙酰-TAG 的积累。