首页> 外文期刊>Turkish Journal of Botany >Soil bacteria conferred a positive relationship and improved salt stress tolerance in transgenic pea (Pisum sativum L.) harboring Na+/H+ antiporter
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Soil bacteria conferred a positive relationship and improved salt stress tolerance in transgenic pea (Pisum sativum L.) harboring Na+/H+ antiporter

机译:土壤细菌与携带Na + / H +反转运蛋白的转基因豌豆(Pisum sativum L.)呈正相关关系并改善了耐盐性

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Among grain legumes, peas (Pisum sativum L.) are highly sensitive to salt stress. Acclimatization of plants to such conditions is mandatory. We provide improved salt stress tolerance response of transgenic pea plants overexpressing the Na+/H+ gene from Arabidopsis thaliana and a positive association with salt-tolerant plant growth-promoting rhizobacteria (PGPR). In addition to salt stress tolerance and phosphate solubilization, the selected rhizobacterial isolates were identified for indole acetic acid and proline production ability. Seed germination percentage in transgenic pea plants was significantly higher under NaCl challenge. The wild-type (WT) pea plants inoculated with known numbers of viable cells of salt-tolerant PGPR and transgenic pea plants without any inoculation showed better growth performance under salt stress. However, the PGPR-inoculated transgenic plants showed significant increase in growth and biomass compared to the WT counterpart. An increase in antioxidant enzymes, i.e. Superoxide dismutase and peroxidases, was observed in PGPR-inoculated transgenic plants under salt stress. We could not see any negative effect of the transgene in pea plants on the growth of associated PGPR. The overall impact of microbe-mediated elicitation responses in transgenic plants, whether at the biochemical or molecular level, may lead to protection against salt stress.
机译:在豆类谷物中,豌豆(Pisum sativum L.)对盐胁迫高度敏感。使植物适应这种条件是强制性的。我们提供了过量表达拟南芥Na + / H + 基因的转基因豌豆植物的改良盐胁迫耐受性响应,并且与耐盐植物生长的根际细菌呈正相关( PGPR)。除了耐盐胁迫和磷酸盐增溶作用外,还鉴定了所选的根瘤菌分离株的吲哚乙酸和脯氨酸生产能力。在NaCl胁迫下,转基因豌豆植物的种子发芽率明显更高。接种已知数量的耐盐PGPR活细胞的野生型(WT)豌豆植物和未接种的转基因豌豆植物在盐胁迫下表现出更好的生长性能。然而,与WT对应物相比,PGPR接种的转基因植物显示出生长和生物量的显着增加。在盐胁迫下,接种PGPR的转基因植物中观察到抗氧化酶,即超氧化物歧化酶和过氧化物酶的增加。我们看不到豌豆植物中转基因对相关PGPR生长的任何负面影响。微生物介导的诱导反应在转基因植物中的总体影响,无论是在生物化学还是分子水平上,都可能导致针对盐胁迫的保护作用。

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