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Protein Synthesis Inhibition Activity by Strawberry Tissue Protein Extracts during Plant Life Cycle and under Biotic and Abiotic Stresses

机译:草莓组织蛋白质提取物在植物生命周期以及生物和非生物胁迫下的蛋白质合成抑制活性

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Ribosome-inactivating proteins (RIPs), enzymes that are widely distributed in the plant kingdom, inhibit protein synthesis by depurinating rRNA and many other polynucleotidic substrates. Although RIPs show antiviral, antifungal, and insecticidal activities, their biological and physiological roles are not completely understood. Additionally, it has been described that RIP expression is augmented under stressful conditions. In this study, we evaluated protein synthesis inhibition activity in partially purified basic proteins (hereafter referred to as RIP activity) from tissue extracts of Fragaria × ananassa (strawberry) cultivars with low (Dora) and high (Record) tolerance to root pathogens and fructification stress. Association between the presence of RIP activity and the crop management (organic or integrated soil), growth stage (quiescence, flowering, and fructification), and exogenous stress (drought) were investigated. RIP activity was found in every tissue tested (roots, rhizomes, leaves, buds, flowers, and fruits) and under each tested condition. However, significant differences in RIP distribution were observed depending on the soil and growth stage, and an increase in RIP activity was found in the leaves of drought-stressed plants. These results suggest that RIP expression and activity could represent a response mechanism against biotic and abiotic stresses and could be a useful tool in selecting stress-resistant strawberry genotypes.
机译:核糖体失活蛋白(RIPs)是一种在植物界广泛分布的酶,通过使rRNA和许多其他多核苷酸底物脱嘌呤来抑制蛋白质合成。尽管RIP具有抗病毒,抗真菌和杀虫活性,但它们的生物学和生理作用尚未完全了解。另外,已经描述了在压力条件下RIP表达增加。在这项研究中,我们评估了草莓(Foraaria×ananassa)(草莓)品种的组织提取物对根病原体和果糖的耐受性低(Dora)和高(Record)耐受性高的部分纯化的碱性蛋白中的蛋白质合成抑制活性(以下称为RIP活性)。强调。研究了RIP活性与作物管理(有机或整合土壤),生长阶段(静止,开花和结实)和外源胁迫(干旱)之间的关联。在每个测试的组织(根,根茎,叶,芽,花和果实)中以及在每种测试条件下均发现RIP活性。但是,根据土壤和生长期的不同,观察到了RIP分布的显着差异,并且在干旱胁迫下的植物叶片中发现了RIP活性增加。这些结果表明,RIP的表达和活性可能代表了针对生物和非生物胁迫的响应机制,并且可能是选择抗胁迫草莓基因型的有用工具。

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