Shanxi Agricultural University, Taigu 030801, China.
Prog Lipid Res. 2012 Oct;51(4):340-9. doi: 10.1016/j.plipres.2012.05.001. Epub 2012 May 29.
Palmitoleate (cis-Δ9-16:1) shows numerous health benefits such as increased cell membrane fluidity, reduced inflammation, protection of the cardiovascular system, and inhibition of oncogenesis. Plant oils containing this unusual fatty acid can also be sustainable feedstocks for producing industrially important and high-demand 1-octene. Vegetable oils rich in palmitoleate are the ideal candidates for biodiesel production. Several wild plants are known that can synthesize high levels of palmitoleate in seeds. However, low yields and poor agronomic characteristics of these plants limit their commercialization. Metabolic engineering has been developed to create oilseed crops that accumulate high levels of palmitoleate or other unusual fatty acids, and significant advances have been made recently in this field, particularly using the model plant Arabidopsis as the host. The engineered targets for enhancing palmitoleate synthesis include overexpression of Δ9 desaturase from mammals, yeast, fungi, and plants, down-regulating KASII, coexpression of an ACP-Δ9 desaturase in plastids and CoA-Δ9 desaturase in endoplasmic reticulum (ER), and optimizing the metabolic flux into triacylglycerols (TAGs). This review will mainly describe the recent progress towards producing palmitoleate in transgenic plants by metabolic engineering along with our current understanding of palmitoleate biosynthesis and its regulation, as well as highlighting the bottlenecks that require additional investigation by combining lipidomics, transgenics and other "-omics" tools. A brief review of reported health benefits and non-food uses of palmitoleate will also be covered.
棕榈油酸(顺式-Δ9-16:1)具有诸多健康益处,如增加细胞膜流动性、减少炎症、保护心血管系统和抑制致癌作用。含有这种不寻常脂肪酸的植物油脂也可以作为可持续的原料,用于生产工业上重要且需求量大的 1-辛烯。富含棕榈油酸的植物油是生物柴油生产的理想原料。有几种野生植物已知可以在种子中合成高水平的棕榈油酸。然而,这些植物的产量低和农艺特性差限制了它们的商业化。代谢工程已被开发用于创造能够积累高水平棕榈油酸或其他不寻常脂肪酸的油籽作物,并且在这一领域最近取得了重大进展,特别是使用模式植物拟南芥作为宿主。用于增强棕榈油酸合成的工程目标包括过表达来自哺乳动物、酵母、真菌和植物的 Δ9 去饱和酶,下调 KASII,在质体中共表达 ACP-Δ9 去饱和酶和内质网中的 CoA-Δ9 去饱和酶,以及优化代谢流进入三酰基甘油(TAGs)。本文综述了通过代谢工程在转基因植物中生产棕榈油酸的最新进展,以及我们对棕榈油酸生物合成及其调控的现有认识,同时强调了需要通过脂质组学、转基因等其他“-omics”工具进一步研究的瓶颈。还简要回顾了棕榈油酸的报道的健康益处和非食品用途。