Lu Junhao, Xu Yang, Wang Juli, Singer Stacy D, Chen Guanqun
Department of Agricultural, Food and Nutritional Science, University of Alberta, Edmonton, T6G 2P5 Alberta, Canada.
Agriculture and Agri-Food Canada, Lethbridge Research and Development Centre, Lethbridge, T1J 4B1 Alberta, Canada.
Plants (Basel). 2020 Apr 8;9(4):472. doi: 10.3390/plants9040472.
Vegetable oil is mainly composed of triacylglycerol (TAG), a storage lipid that serves as a major commodity for food and industrial purposes, as well as an alternative biofuel source. While TAG is typically not produced at significant levels in vegetative tissues, emerging evidence suggests that its accumulation in such tissues may provide one mechanism by which plants cope with abiotic stress. Different types of abiotic stress induce lipid remodeling through the action of specific lipases, which results in various alterations in membrane lipid composition. This response induces the formation of toxic lipid intermediates that cause membrane damage or cell death. However, increased levels of TAG under stress conditions are believed to function, at least in part, as a means of sequestering these toxic lipid intermediates. Moreover, the lipid droplets (LDs) in which TAG is enclosed also function as a subcellular factory to provide binding sites and substrates for the biosynthesis of bioactive compounds that protect against insects and fungi. Though our knowledge concerning the role of TAG in stress tolerance is expanding, many gaps in our understanding of the mechanisms driving these processes are still evident. In this review, we highlight progress that has been made to decipher the role of TAG in plant stress response, and we discuss possible ways in which this information could be utilized to improve crops in the future.
植物油主要由三酰甘油(TAG)组成,三酰甘油是一种储存脂质,是食品和工业用途的主要商品,也是一种替代生物燃料来源。虽然TAG通常不在营养组织中大量产生,但新出现的证据表明,其在这些组织中的积累可能是植物应对非生物胁迫的一种机制。不同类型的非生物胁迫通过特定脂肪酶的作用诱导脂质重塑,这导致膜脂组成发生各种变化。这种反应会诱导有毒脂质中间体的形成,从而导致膜损伤或细胞死亡。然而,人们认为,在胁迫条件下TAG水平的升高至少部分起到了隔离这些有毒脂质中间体的作用。此外,包裹TAG的脂滴也作为一个亚细胞工厂,为抵御昆虫和真菌的生物活性化合物的生物合成提供结合位点和底物。尽管我们对TAG在胁迫耐受性中的作用的认识正在不断扩展,但我们对驱动这些过程的机制的理解仍存在许多空白。在这篇综述中,我们强调了在破译TAG在植物应激反应中的作用方面所取得的进展,并讨论了这些信息在未来可用于改良作物的可能方式。