Center of Plant, Soil Interaction and Natural Resources Biotechnology, Scientific and Technological Bioresource Nucleus, Universidad de La Frontera, Av. Francisco Salazar 01145, Temuco, Chile.
Plant Physiol Biochem. 2011 Sep;49(9):1005-12. doi: 10.1016/j.plaphy.2011.04.009. Epub 2011 May 1.
Aluminium (Al) stress is an important factor limiting crop yields in acid soils. Despite this, very little is known about the mechanisms of resistance to this stress in woody plants. To understand the mechanisms of Al-toxicity and response in blueberries, we compared the impact of Al-stress in Al-resistant and Al-sensitive genotypes using Vaccinium corymbosum L. (Ericaceae) as a plant model. We investigated the effect of Al-stress on the physiological performance, oxidative metabolism and expression of genes that encode antioxidant enzymes in two V. corymbosum cultivars maintained hydroponically with AlCl(3) (0 and 100 μM). Microscopic analyses of Al-treated root tips suggested a higher degree of Al-induced morphological injury in Bluegold (sensitive genotype) compared to Brigitta (resistant genotype). Furthermore, the results indicated that Brigitta had a greater ability to control oxidative stress under Al-toxicity, as reflected by enhancement of several antioxidative and physiological properties (radical scavenging activity: RSA, superoxide dismutase: SOD and catalase: CAT; maximum quantum yield: Fv/Fm, effective quantum yield: ФPSII, electron transport rate: ETR and non-photochemical quenching: NPQ). Finally, we analyzed the expression of genes homologous to GST and ALDH, which were identified in a global expression analysis. In the resistant genotype, the expression of these genes in response to Al-stress was greater in leaves than in roots.
铝(Al)胁迫是酸性土壤中作物产量的一个重要限制因素。尽管如此,对于木本植物对这种胁迫的抗性机制却知之甚少。为了了解蓝莓对 Al 胁迫的适应机制和响应机制,我们使用 Vaccinium corymbosum L.(杜鹃花科)作为植物模型,比较了 Al 抗性和 Al 敏感基因型在 Al 胁迫下的影响。我们研究了 Al 胁迫对两种 V. corymbosum 品种在含 AlCl3(0 和 100 μM)的水培条件下的生理性能、氧化代谢和编码抗氧化酶基因表达的影响。Al 处理的根尖的显微镜分析表明,与 Brigitta(抗性基因型)相比,Bluegold(敏感基因型)的 Al 诱导形态损伤程度更高。此外,结果表明,Brigitta 在 Al 毒性下控制氧化应激的能力更强,表现在增强了几种抗氧化和生理特性(自由基清除活性:RSA、超氧化物歧化酶:SOD 和过氧化氢酶:CAT;最大光化学量子产量:Fv/Fm、有效光化学量子产量:ФPSII、电子传递速率:ETR 和非光化学猝灭:NPQ)。最后,我们分析了在全基因表达分析中鉴定的 GST 和 ALDH 同源基因的表达。在抗性基因型中,这些基因在叶片中的表达对 Al 胁迫的响应大于在根部的表达。