首页> 外文期刊>Plant Cell Reports >Constitutive expression of CaXTH3, a hot pepper xyloglucan endotransglucosylase/hydrolase, enhanced tolerance to salt and drought stresses without phenotypic defects in tomato plants (Solanum lycopersicum cv. Dotaerang)
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Constitutive expression of CaXTH3, a hot pepper xyloglucan endotransglucosylase/hydrolase, enhanced tolerance to salt and drought stresses without phenotypic defects in tomato plants (Solanum lycopersicum cv. Dotaerang)

机译:CaXTH3(辣椒木葡聚糖内切葡糖基化酶/水解酶)的组成型表达增强了番茄植物对盐和干旱胁迫的耐受性,而没有表型缺陷(Solanum lycopersicum cv。Dotaerang)

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摘要

The hot pepper xyloglucan endo-trans-gluco-sylase/hydrolase (CaXTH3) gene that was inducible by a broad spectrum of abiotic stresses in hot pepper has been reported to enhance tolerance to drought and high salinity in transgenic Arabidopsis. To assess whether CaXTH3 is a practically useful target gene for improving the stress tolerance of crop plants, we ectopically over-expressed the full-length CaXTH3 cDNA in tomato (Solanum lycopersicum cv. Dotaerang) and found that the 35S:CaXTH3 transgenic tomato plants exhibited a markedly increased tolerance to salt and drought stresses. Transgenic tomato plants exposed to a salt stress of 100 mM NaCl retained the chlorophyll in their leaves and showed normal root elongation. They also remained green and unwithered following exposure to 2 weeks of dehydration. A high proportion of stomatal closures in 35S:CaXTH3 was likely to be conferred by increased cell-wall remodeling activity of CaXTH3 in guard cell, which may reduce transpirational water loss in response to dehydration stress. Despite this increased stress tolerance, the transgenic tomato plants showed no detectable phenotype defects, such as abnormal morphology and growth retardation, under normal growth conditions. These results raise the possibility that CaXTH3 gene is appropriate for application in genetic engineering strategies aimed at improving abiotic stress tolerance in agriculturally and economically valuable crop plants.
机译:据报道,辣椒中多种非生物胁迫诱导的辣椒木葡聚糖内切-葡糖基化酶/水解酶(CaXTH3)基因可提高转基因拟南芥对干旱和高盐度的耐受性。为了评估CaXTH3是否是提高作物抗逆性的实用靶基因,我们在番茄(Solanum lycopersicum cv。Dotaerang)中异位过量表达了全长CaXTH3 cDNA,并发现了35S:CaXTH3转基因番茄植株对盐和干旱胁迫的耐受性显着提高。暴露于100 mM NaCl盐胁迫下的转基因番茄植株的叶中保留了叶绿素,并显示出正常的根伸长。暴露于脱水2周后,它们也保持绿色且不会枯萎。 CaSTH3在保卫细胞中增加的细胞壁重塑活性可能赋予35S:CaXTH3很大比例的气孔关闭,这可能减少响应脱水胁迫的蒸腾失水。尽管增加了胁迫耐受性,但是在正常生长条件下,转基因番茄植株未显示出可检测到的表型缺陷,例如异常形态和生长迟缓。这些结果增加了CaXTH3基因适合用于旨在提高农业和经济上有价值的作物植物的非生物胁迫耐受性的基因工程策略中的可能性。

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