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首页> 外文期刊>Acta Physiologiae Plantarum >Cotton (Gossypium hirsutum L.) genotypes with contrasting K+/Na+ ion homeostasis: implications for salinity tolerance
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Cotton (Gossypium hirsutum L.) genotypes with contrasting K+/Na+ ion homeostasis: implications for salinity tolerance

机译:棉花(Gossypium hirsutum L.)基因型,具有对比的k + / na +离子稳态:对盐度耐受的影响

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Cotton (Gossypium hirsutum L.) possesses notable inter- and intraspecific salt tolerance variation, but the mechanisms underlying this variation are, more or less, unclear. To explore salt stress responses, Na+/K+ transport and the transcriptional profiles of salinity tolerance candidate genes (e.g., GhSOS1, GhNHX1, and GhAKT1) were evaluated in four cotton cultivars (differing in salt sensitivities) using electrophysiological and qRT-PCR assays. Physiology and lipid peroxidation assays revealed the following pattern of salt tolerance, in decreasing order: CZ91 > CCRI44 > CCRI49 > Z571. Salinity caused ion imbalances in plants, but ion homeostasis was more pronounced in Z571, which accumulated more Na+ and less K+ in leaves. In contrast, salt-tolerant cultivars, especially CZ91, retained less Na+, but more K+ under salt stress. The non-invasive micro-test technique revealed that Z571 exhibited a higher capacity to transport Na+ from roots to shoots, but a lower capacity to extrude Na+ and retain K+ in leaves under salinity. Meanwhile, NaCl-induced changes in Na+ and K+ ion homeostasis were less pronounced in salt-tolerant cultivars, increasing leaf K+/Na+ ratios under salinity. Additionally, NaCl increased the GhSOS1 transcript abundance in hypocotyls, but this increase was more pronounced in salt-sensitive Z571. On the other hand, NaCl significantly enhanced the transcript abundances of GhSOS1 in leaves and/or GhAKT1 in hypocotyls of salt-tolerant cultivars. NaCl also increased the GhNHX1 transcript abundance, but there was no strong correlation between GhNHX1 expression level and salt resistance. The present findings provided an explanation for salt tolerance variation in cotton, illuminating the transcriptional regulation of K+/Na+ transport and the maintenance of the K+/Na+ ratio as underlying attributes.
机译:棉花(Gossypium hirsutum L.)具有显着的含有和有型耐盐性的耐受性变异,但是这种变化的机制或多或少不清楚。为了探索盐应激反应,使用电生理学和QRT-PCR测定,在四种棉栽培品种(盐敏感度不同)中评估盐度耐受候选基因的Na + / k + + +运输和转录谱。生理学和脂质过氧化测定揭示了下列耐盐模式,下降顺序:CZ91> CCRI44> CCRI49> Z571。盐度导致植物中的离子不平衡,但在Z571中更明显的离子稳态,叶片中的含量更多的Na +和更少的K +。相比之下,耐盐品种,特别是CZ91,保留较少的Na +,但在盐胁迫下更高的K +。非侵袭性微试验技术揭示Z571表现出较高的输送Na +从根部射击的能力,但在盐度下叶片挤出并保留k +的较低能力。同时,Na +和K +离子稳态的NaCl诱导的变化在耐盐品种中不那么明显,盐度下的叶k + / na +比例较小。此外,NaCl在幼杆子中增加了GHSOS1转录物丰度,但在盐敏感的Z571中,这种增加更加明显。另一方面,NaCl显着增强了耐盐品种的叶片和/或Ghakt1中GHSOS1的转录性丰度。 NACL还增加了GHNHX1转录性丰度,但GHNHX1表达水平与耐盐性之间没有强烈相关性。本发明的研究结果提供了棉花耐盐变异的说明,照明K + / Na +的转录调节和作为基本属性的k + / na +比的维持。

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