Fan Jilian, Zhou Chao, Yu Linhui, Li Ping, Shanklin John, Xu Changcheng
Biology Department, Brookhaven National Laboratory, Upton, New York, NY 11933, USA.
College of Agriculture, Shanxi Agricultural University, Taigu 030801, Shanxi, China.
Plants (Basel). 2019 Jul 17;8(7):229. doi: 10.3390/plants8070229.
Inactivation of ADP-glucose pyrophosphorylase1 (ADG1) causes a starchless phenotype in Arabidopsis. Mutants defective in ADG1 show severe growth retardation in day/night conditions but exhibit similar growth to wild type under continuous light, implying that starch plays an important role in supporting respiration, metabolism and growth at night. In addition to carbohydrates, lipids and proteins can serve as alternative respiratory substrates for the energy production in mature plants. To test the role of lipids in plant growth, we generated transgenic plants overexpressing phospholipid:diacylglycerol acyltransferase1 (PDAT1) in . We found that PDAT1 overexpression caused an increase in both fatty acid synthesis and turnover and increased the accumulation of triacylglycerol (TAG) at the expense of sugars, and enhanced the growth of . We demonstrated that unlike sugars, which were metabolized within a few hours of darkness, TAG breakdown was slow, occurring throughout the entire dark period. The slow pace of TAG hydrolysis provided a sustained supply of fatty acids for energy production, thereby alleviating energy deficiency at night and thereby improving the growth of the starchless mutants. We conclude that lipids can contribute to plant growth by providing a constant supply of fatty acids as an alternative energy source in mature starchless mutant plants.
ADP - 葡萄糖焦磷酸化酶1(ADG1)的失活导致拟南芥出现无淀粉表型。ADG1缺陷型突变体在昼夜条件下表现出严重的生长迟缓,但在持续光照下与野生型表现出相似的生长,这意味着淀粉在支持夜间呼吸、代谢和生长中起重要作用。除了碳水化合物外,脂质和蛋白质可作为成熟植物中能量产生的替代呼吸底物。为了测试脂质在植物生长中的作用,我们构建了在[具体植物名称未给出]中过表达磷脂:二酰基甘油酰基转移酶1(PDAT1)的转基因植物。我们发现,PDAT1过表达导致脂肪酸合成和周转增加,以糖为代价增加了三酰甘油(TAG)的积累,并增强了[具体植物名称未给出]的生长。我们证明,与在黑暗中几小时内就被代谢的糖不同,TAG的分解缓慢,在整个黑暗期都在发生。TAG水解的缓慢速度为能量产生提供了持续的脂肪酸供应,从而缓解了夜间的能量不足,进而改善了无淀粉突变体的生长。我们得出结论,在成熟的无淀粉突变体植物中,脂质可以通过提供恒定的脂肪酸供应作为替代能源来促进植物生长。