Department of Genetics, Development and Cell Biology, Iowa State University, Ames, IA 50011, USA.
Plant Physiol Biochem. 2010 Apr;48(4):232-8. doi: 10.1016/j.plaphy.2010.01.004. Epub 2010 Jan 21.
Periods of carbohydrate deprivation are commonly encountered by plant cells. Plants respond to this nutrient stress by the mobilization of stored carbohydrates and the reallocation of other cellular macromolecules to degradative pathways. Previously we identified a number of metabolic genes that are upregulated in Arabidopsis thaliana cells during sucrose starvation. One of the genes identified encodes acyl-CoA oxidase-4 (ACX4, EC 1.3.3.6), a peroxisomal acyl-CoA oxidase that is unique to plants and involved in beta-oxidation of short-chain fatty acids. Here we demonstrate that ACX4 activity increases during sucrose starvation, indicating a shift to a catabolic breakdown of fatty acids as a source of available carbon. This suggests a role for degradation of short-chain fatty acids in the response to sucrose starvation, leading in turn to the production of toxic H2O2. Catalase-3 (CAT3, EC 1.11.1.6) activity also increases during starvation as a direct response to the increase in oxidative stress caused by the rapid activation of alternative catabolic pathways, including a specific increase in ACX4 activity. Any disruption in ACX4 expression or in beta-oxidation of fatty acids in general prevents this increase in catalase activity and expression. We hypothesize that CAT3 activity increases to remove the H2O2 produced by alternative catabolic processes induced during the carbohydrate shortages caused by extended periods of low-light conditions.
碳水化合物缺乏期是植物细胞经常遇到的情况。植物通过动员储存的碳水化合物和将其他细胞大分子重新分配到降解途径来应对这种营养胁迫。以前,我们在拟南芥细胞中鉴定出了一些在蔗糖饥饿时上调的代谢基因。鉴定出的基因之一编码酰基辅酶 A 氧化酶 4(ACX4,EC 1.3.3.6),这是一种独特存在于植物中的过氧化物酶体酰基辅酶 A 氧化酶,参与短链脂肪酸的β氧化。在这里,我们证明 ACX4 活性在蔗糖饥饿期间增加,表明脂肪酸的分解代谢发生了转变,成为可用碳的来源。这表明在蔗糖饥饿的反应中,短链脂肪酸的降解起作用,进而导致有毒的 H2O2 的产生。过氧化氢酶 3(CAT3,EC 1.11.1.6)的活性也在饥饿期间增加,这是对替代分解代谢途径快速激活引起的氧化应激增加的直接反应,包括 ACX4 活性的特异性增加。ACX4 表达或脂肪酸的β氧化的任何中断都会阻止过氧化氢酶活性和表达的增加。我们假设 CAT3 活性的增加是为了去除由于长时间低光照条件导致的碳水化合物短缺期间诱导的替代分解代谢过程产生的 H2O2。