Beisson Fred, Li Yonghua, Bonaventure Gustavo, Pollard Mike, Ohlrogge John B
Department of Plant Biology, Michigan State University, East Lansing, Michigan 48824, USA.
Plant Cell. 2007 Jan;19(1):351-68. doi: 10.1105/tpc.106.048033. Epub 2007 Jan 26.
Suberin and cutin are fatty acid- and glycerol-based plant polymers that act as pathogen barriers and function in the control of water and solute transport. However, despite important physiological roles, their biosynthetic pathways, including the acyl transfer reactions, remain hypothetical. We report the characterization of two suberin mutants (gpat5-1 and gpat5-2) of Arabidopsis thaliana GPAT5, encoding a protein with acyl-CoA:glycerol-3-phosphate acyltransferase activity. RT-PCR and beta-glucuronidase-promoter fusion analyses demonstrated GPAT5 expression in seed coat, root, hypocotyl, and anther. The gpat5 plants showed a 50% decrease in aliphatic suberin in young roots and produced seed coats with a severalfold reduction in very long chain dicarboxylic acid and omega-hydroxy fatty acids typical of suberin but no change in the composition or content of membrane or storage glycerolipids or surface waxes. Consistent with their altered suberin, seed coats of gpat5 mutants had a steep increase in permeability to tetrazolium salts compared with wild-type seed coats. Furthermore, the germination rate of gpat5 seeds under high salt was reduced, and gpat5 seedlings had lower tolerance to salt stress. These results provide evidence for a critical role of GPAT5 in polyester biogenesis in seed coats and roots and for the importance of lipid polymer structures in the normal function of these organs.
木栓质和角质是基于脂肪酸和甘油的植物聚合物,它们作为病原体屏障,并在控制水分和溶质运输中发挥作用。然而,尽管它们具有重要的生理作用,但其生物合成途径,包括酰基转移反应,仍然只是假说。我们报道了拟南芥GPAT5的两个木栓质突变体(gpat5-1和gpat5-2)的特征,该基因编码一种具有酰基辅酶A:甘油-3-磷酸酰基转移酶活性的蛋白质。逆转录聚合酶链反应(RT-PCR)和β-葡萄糖醛酸酶启动子融合分析表明,GPAT5在种皮、根、下胚轴和花药中表达。gpat5植株幼根中的脂肪族木栓质减少了50%,其种皮中木栓质典型的超长链二羧酸和ω-羟基脂肪酸减少了几倍,但膜脂、储存甘油脂或表面蜡质的组成或含量没有变化。与木栓质改变一致,与野生型种皮相比,gpat5突变体种皮对四唑盐的通透性急剧增加。此外,gpat5种子在高盐条件下的发芽率降低,gpat5幼苗对盐胁迫的耐受性较低。这些结果证明了GPAT5在种皮和根中聚酯生物合成中的关键作用,以及脂质聚合物结构在这些器官正常功能中的重要性。