Department of Botany II, University of Cologne, Koeln, Germany.
Plant Cell. 2009 Sep;21(9):2733-49. doi: 10.1105/tpc.108.064857. Epub 2009 Sep 30.
Fatty acid beta-oxidation is essential for seedling establishment of oilseed plants, but little is known about its role in leaf metabolism of adult plants. Arabidopsis thaliana plants with loss-of-function mutations in the peroxisomal ABC-transporter1 (PXA1) or the core beta-oxidation enzyme keto-acyl-thiolase 2 (KAT2) have impaired peroxisomal beta-oxidation. pxa1 and kat2 plants developed severe leaf necrosis, bleached rapidly when returned to light, and died after extended dark treatment, whereas the wild type was unaffected. Dark-treated pxa1 plants showed a decrease in photosystem II efficiency early on and accumulation of free fatty acids, mostly alpha-linolenic acid [18:3(n-3)] and pheophorbide a, a phototoxic chlorophyll catabolite causing the rapid bleaching. Isolated wild-type and pxa1 chloroplasts challenged with comparable alpha-linolenic acid concentrations both showed an 80% reduction in photosynthetic electron transport, whereas intact pxa1 plants were more susceptible to the toxic effects of alpha-linolenic acid than the wild type. Furthermore, starch-free mutants with impaired PXA1 function showed the phenotype more quickly, indicating a link between energy metabolism and beta-oxidation. We conclude that the accumulation of free polyunsaturated fatty acids causes membrane damage in pxa1 and kat2 plants and propose a model in which fatty acid respiration via peroxisomal beta-oxidation plays a major role in dark-treated plants after depletion of starch reserves.
脂肪酸β-氧化对于油料作物的幼苗建立是必不可少的,但对于其在成年植物叶片代谢中的作用知之甚少。拟南芥中过氧化物酶体 ABC 转运蛋白 1(PXA1)或核心β-氧化酶酮酰-硫解酶 2(KAT2)的功能丧失突变体,其过氧化物酶体β-氧化受损。pxa1 和 kat2 植物表现出严重的叶片坏死,当返回光照时迅速变白,并在延长的黑暗处理后死亡,而野生型不受影响。黑暗处理的 pxa1 植物在早期表现出光系统 II 效率降低,游离脂肪酸积累,主要是α-亚麻酸[18:3(n-3)]和脱镁叶绿酸 a,一种引起快速白化的光毒性叶绿素分解产物。用可比浓度的α-亚麻酸挑战分离的野生型和 pxa1 叶绿体,均显示光合作用电子传递减少 80%,而完整的 pxa1 植物比野生型更容易受到α-亚麻酸的毒性影响。此外,功能受损的 PXA1 淀粉缺陷突变体表现出更快的表型,表明能量代谢和β-氧化之间存在联系。我们得出结论,游离多不饱和脂肪酸的积累导致 pxa1 和 kat2 植物的膜损伤,并提出了一个模型,即在淀粉储备耗尽后,通过过氧化物酶体β-氧化进行脂肪酸呼吸在黑暗处理的植物中起主要作用。