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Overexpression of wheat alpha-mannosidase gene TaMP impairs salt tolerance in transgenic Brachypodium distachyon

机译:小麦α-甘露糖苷酶基因棉花的过度表达损害转基因Broachymium distachyon中的耐盐耐受性

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Key message The TaMP gene from wheat encodes an alpha-mannosidase induced by salt stress that functions as negative regulator of salt tolerance in plants. Salt stress significantly affects growth and yield of crop plants. The alpha-mannosidases function in protein folding, trafficking, and endoplasmic reticulum-associated degradation in eukaryotic cells, and they are involved in abiotic stress tolerance in plants. Previously, we identified the alpha-mannosidase gene TaMP in wheat (Triticum aestivum). In this study, we investigated the function of TaMP in salt stress tolerance. TaMP expression was induced in wheat leaves by salt, drought, abscisic acid, and H2O2 treatments. Overexpressing TaMP in Brachypodium distachyon was associated with a salt-sensitive phenotype. Under salt stress, the overexpressing plants had reduced height, delayed growth status, low photosynthetic rate, decreased survival rate, and diminished yield. Moreover, the overexpression of TaMP aggravated the tendency for ions to become toxic under salt stress by significantly affecting the Na+ and K+ contents in cells. In addition, TaMP could negatively regulate salt tolerance by affecting the antioxidant enzyme system capacity and increasing the reactive oxygen species accumulation. Our study was helpful to understand the underlying physiological and molecular mechanisms of salt stress tolerance in plants.
机译:关键消息来自小麦的棉花基因编码由盐应激诱导的α-甘氨酸酶,其用作植物中耐盐性的负调节剂。盐胁迫显着影响作物植物的生长和产量。在真核细胞中蛋白质折叠,贩运和内质网相关降解的α-甘核酸酶功能,它们参与植物中的非生物胁迫耐受性。以前,我们鉴定了小麦(Triticum aestivum)的α-甘露糖苷酶基因夯。在这项研究中,我们研究了棉花胁迫耐受性的夯实功能。通过盐,干旱,脱落酸和H2O2处理在小麦叶中诱导夯实表达。在沸腾的Distachyon中过表达夯实与盐敏感表型相关。在盐胁迫下,过表达植物的高度降低,延迟生长状态,低光合速率,降低的存活率,产量减少。此外,通过显着影响细胞中的Na +和K +含量,夯实的过度表达会加剧离子在盐胁迫下变得毒性毒性。此外,通过影响抗氧化酶系统容量并增加反应性氧物质积累,夯实可以对耐盐性产生负面调节耐盐性。我们的研究有助于了解植物中盐胁迫耐受性的潜在生理和分子机制。

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