Enhanced Accumulation of BiP in Transgenic Plants Confers Tolerance to Water Stress

衣霉素 内质网 生物 烟草 感应(电子) 转基因 细胞生物学 转基因作物 生物化学 未折叠蛋白反应 化学 基因 物理化学
作者
Fatima Cerqueira Alvim,Sônia M.B. Carolino,J.C.M. Cascardo,Cristiano C. Nunes,Carlos Augusto Real Martinez,Wagner Campos Otoni,Elizabeth P. B. Fontes
出处
期刊:Plant Physiology [Oxford University Press]
卷期号:126 (3): 1042-1054 被引量:213
标识
DOI:10.1104/pp.126.3.1042
摘要

The binding protein (BiP) is an important component of endoplasmic reticulum stress response of cells. Despite extensive studies in cultured cells, a protective function of BiP against stress has not yet been demonstrated in whole multicellular organisms. Here, we have obtained transgenic tobacco (Nicotiana tabacum L. cv Havana) plants constitutively expressing elevated levels of BiP or its antisense cDNA to analyze the protective role of this endoplasmic reticulum lumenal stress protein at the whole plant level. Elevated levels of BiP in transgenic sense lines conferred tolerance to the glycosylation inhibitor tunicamycin during germination and tolerance to water deficit during plant growth. Under progressive drought, the leaf BiP levels correlated with the maintenance of the shoot turgidity and water content. The protective effect of BiP overexpression against water stress was disrupted by expression of an antisense BiP cDNA construct. Although overexpression of BiP prevented cellular dehydration, the stomatal conductance and transpiration rate in droughted sense leaves were higher than in control and antisense leaves. The rate of photosynthesis under water deficit might have caused a degree of greater osmotic adjustment in sense leaves because it remained unaffected during water deprivation, which was in marked contrast with the severe drought-induced decrease in the CO(2) assimilation in control and antisense leaves. In antisense plants, the water stress stimulation of the antioxidative defenses was higher than in control plants, whereas in droughted sense leaves an induction of superoxide dismutase activity was not observed. These results suggest that overexpression of BiP in plants may prevent endogenous oxidative stress.

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