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Overexpression of Superoxide Dismutase Protects Plants from Oxidative Stress (Induction of Ascorbate Peroxidase in Superoxide Dismutase-Overexpressing Plants).

机译:超氧化物歧化酶的过表达保护植物免受氧化胁迫(超氧化物歧化酶过表达植物中抗坏血酸过氧化物酶的诱导)。

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摘要

Photosynthesis of leaf discs from transgenic tobacco plants (Nicotiana tabacum) that express a chimeric gene that encodes chloroplast-localized Cu/Zn superoxide dismutase (SOD+) was protected from oxidative stress caused by exposure to high light intensity and low temperature. Under the same conditions, leaf discs of plants that did not express the pea SOD isoform (SOD-) had substantially lower photosynthetic rates. Young plants of both genotypes were more sensitive to oxidative stress than mature plants, but SOD+ plants retained higher photosynthetic rates than SOD- plants at all developmental stages tested. Not surprisingly, SOD+ plants had approximately 3-fold higher SOD specific activity than SOD- plants. However, SOD+ plants also exhibited a 3- to 4-fold increase in ascorbate peroxidase (APX) specific activity and had a corresponding increase in levels of APX mRNA. Dehydroascorbate reductase and glutathione reductase specific activities were the same in both SOD+ and SOD- plants. These results indicate that transgenic tobacco plants that overexpress pea Cu/Zn SOD II can compensate for the increased levels of SOD with increased expression of the H2O2-scavenging enzyme APX. Therefore, the enhancement of the active oxygen-scavenging system that leads to increased oxidative stress protection in SOD+ plants could result not only from increased SOD levels but from the combined increases in SOD and APX activity.
机译:转基因烟草植物(Nicotiana tabacum)的叶圆片的光合作用受到保护,以防止暴露于高光强度和低温引起的氧化胁迫,该嵌合基因编码叶绿体定位的Cu / Zn超氧化物歧化酶(SOD +)。在相同条件下,不表达豌豆SOD亚型(SOD-)的植物的叶圆片的光合速率大大降低。两种基因型的年轻植物比成熟植物对氧化胁迫更敏感,但是在所有测试的发育阶段,SOD +植物的光合速率都比SOD-植物高。毫不奇怪,SOD +植物的SOD比活性比SOD-植物高约3倍。但是,SOD +植物在抗坏血酸过氧化物酶(APX)的比活性上也表现出3到4倍的增加,并且APX mRNA的水平也相应增加。在SOD +和SOD-植物中,脱氢抗坏血酸还原酶和谷胱甘肽还原酶的比活性相同。这些结果表明,过表达豌豆Cu / Zn SOD II的转基因烟草植物可以通过增加H2O2清除酶APX的表达来补偿SOD的增加。因此,活性除氧系统的增强导致SOD +植物中氧化应激保护的增强,这不仅可以归因于SOD含量的增加,还可以归因于SOD和APX活性的共同提高。

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