Horváth Edit, Kulman Kitti, Tompa Bernát, Hajnal Ádám Barnabás, Pelsőczi Alina, Bela Krisztina, Gallé Ágnes, Csiszár Jolán
Department of Plant Biology, Faculty of Sciences and Informatics, University of Szeged, H-6726 Szeged, Hungary.
Agricultural Institute, Centre for Agricultural Research, Eötvös Lóránd Research Network, H-2462 Martonvásár, Hungary.
Antioxidants (Basel). 2023 Aug 28;12(9):1682. doi: 10.3390/antiox12091682.
Glutathione transferases (GSTs) are one of the most versatile multigenic enzyme superfamilies. In our experiments, the involvement of the genotype-specific induction of genes and glutathione- or redox-related genes in pathways regulating salt-stress tolerance was examined in tomato cultivars ( Moneymaker, Mobil, and Elán F1). The growth of the Mobil plants was adversely affected during salt stress (100 mM of NaCl), which might be the result of lowered glutathione and ascorbate levels, a more positive glutathione redox potential (), and reduced glutathione reductase (GR) and GST activities. In contrast, the Moneymaker and Elán F1 cultivars were able to restore their growth and exhibited higher GR and inducible GST activities, as well as elevated, non-enzymatic antioxidant levels, indicating their enhanced salt tolerance. Furthermore, the expression patterns of , selected , and transcription factor genes differed significantly among the three cultivars, highlighting the distinct regulatory mechanisms of the tomato genotypes during salt stress. The correlations between and gene expression data revealed several robust, cultivar-specific associations, underscoring the complexity of the stress response mechanism in tomatoes. Our results support the cultivar-specific roles of distinct genes during the salt-stress response, which, along with , , , and , are important players in shaping the redox status and the development of a more efficient stress tolerance in tomatoes.
谷胱甘肽转移酶(GSTs)是最多功能的多基因酶超家族之一。在我们的实验中,研究了番茄品种(MoneyMaker、Mobil和Elán F1)中基因及谷胱甘肽或氧化还原相关基因的基因型特异性诱导在调节耐盐性途径中的作用。在盐胁迫(100 mM NaCl)期间,Mobil植株的生长受到不利影响,这可能是由于谷胱甘肽和抗坏血酸水平降低、谷胱甘肽氧化还原电位更正()以及谷胱甘肽还原酶(GR)和GST活性降低所致。相比之下,MoneyMaker和Elán F1品种能够恢复生长,并表现出更高的GR和诱导型GST活性,以及升高的非酶抗氧化剂水平,表明它们的耐盐性增强。此外,三个品种之间,、选定的和转录因子基因的表达模式存在显著差异,突出了番茄基因型在盐胁迫期间不同的调控机制。和基因表达数据之间的相关性揭示了几个稳健的、品种特异性的关联,强调了番茄应激反应机制的复杂性。我们的结果支持了不同基因在盐胁迫反应中的品种特异性作用,这些基因与、、和一起,是塑造番茄氧化还原状态和发展更有效的耐盐性的重要参与者。