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拟南芥谷氧还蛋白 AtGRXS17 的异位表达增强了番茄的耐热性。

Ectopic expression of Arabidopsis glutaredoxin AtGRXS17 enhances thermotolerance in tomato.

机构信息

Department of Horticulture, Forestry and Recreation Resources, Kansas State University, Manhattan, KS, USA.

出版信息

Plant Biotechnol J. 2012 Oct;10(8):945-55. doi: 10.1111/j.1467-7652.2012.00723.x. Epub 2012 Jul 5.

DOI:10.1111/j.1467-7652.2012.00723.x
PMID:22762155
Abstract

While various signalling networks regulate plant responses to heat stress, the mechanisms regulating and unifying these diverse biological processes are largely unknown. Our previous studies indicate that the Arabidopsis monothiol glutaredoxin, AtGRXS17, is crucial for temperature-dependent postembryonic growth in Arabidopsis. In the present study, we further demonstrate that AtGRXS17 has conserved functions in anti-oxidative stress and thermotolerance in both yeast and plants. In yeast, AtGRXS17 co-localized with yeast ScGrx3 in the nucleus and suppressed the sensitivity of yeast grx3grx4 double-mutant cells to oxidative stress and heat shock. In plants, GFP-AtGRXS17 fusion proteins initially localized in the cytoplasm and the nuclear envelope but migrated to the nucleus during heat stress. Ectopic expression of AtGRXS17 in tomato plants minimized photo-oxidation of chlorophyll and reduced oxidative damage of cell membrane systems under heat stress. This enhanced thermotolerance correlated with increased catalase (CAT) enzyme activity and reduced H₂O₂ accumulation in AtGRXS17-expressing tomatoes. Furthermore, during heat stress, expression of the heat shock transcription factor (HSF) and heat shock protein (HSP) genes was up-regulated in AtGRXS17-expressing transgenic plants compared with wild-type controls. Thus, these findings suggest a specific protective role of a redox protein against temperature stress and provide a genetic engineering strategy to improve crop thermotolerance.

摘要

虽然各种信号转导网络调节植物对热应激的反应,但调节和统一这些不同生物学过程的机制在很大程度上仍是未知的。我们之前的研究表明,拟南芥单硫谷胱甘肽还原酶 AtGRXS17 对于拟南芥依赖于温度的胚胎后生长是至关重要的。在本研究中,我们进一步证明了 AtGRXS17 在酵母和植物中都具有保守的抗氧化应激和耐热功能。在酵母中,AtGRXS17 与酵母 ScGrx3 共定位于细胞核内,并抑制了酵母 grx3grx4 双突变细胞对氧化应激和热休克的敏感性。在植物中,GFP-AtGRXS17 融合蛋白最初定位于细胞质和核膜,但在热应激下迁移到细胞核内。在番茄植物中异位表达 AtGRXS17 可最小化叶绿素的光氧化作用,并减少热应激下细胞膜系统的氧化损伤。这种增强的耐热性与 CAT 酶活性的增加和表达 AtGRXS17 的番茄中 H₂O₂ 积累的减少相关。此外,在热应激下,与野生型对照相比,AtGRXS17 表达的热休克转录因子 (HSF) 和热休克蛋白 (HSP) 基因在转基因植物中上调表达。因此,这些发现表明一种氧化还原蛋白在应对温度胁迫方面具有特定的保护作用,并为提高作物耐热性提供了一种遗传工程策略。

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