Decoding the Genetic Basis of Salinity Tolerance in Tomatoes through Ion Transport and Stress Regulation

IF 2.9 Q1 AGRICULTURE, MULTIDISCIPLINARY
Devinder Sandhu*, Emmanuel Pudussery, Tammar Haitham Akel, Luis Alfredo Cendan, Amir Ali Khoddamzadeh and Jorge F. S. Ferreira, 
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Abstract

Salinity remains a major obstacle to tomato production; yet, the interplay between ion accumulation and gene expression in conferring salinity tolerance is not fully understood. In this study, the cultivars ‘Sanibel’ and ‘Tasti-Lee’ were subjected to four salinity treatments [1.5 (T0), 4 (T1), 8 (T2), and 12 (T3) dS m–1] to examine morphological, ionic, and molecular responses. Elevated salinity led to significant declines in shoot and root dry weight, plant height, root length, and leaf number, with the steepest reduction observed at 12 dS m–1 (T3). Ion profiling revealed increasing Na and Cl concentrations in roots and shoots. However, ‘Tasti-Lee’ appeared to reach its highest Na and Cl accumulation in leaves at 8 dS m–1. Both cultivars also showed diminished K in leaves and stems; yet root K unexpectedly rebounded at the highest salinity. Gene expression analysis revealed that SOS1, SOS2, and NHX1─key mediators of Na+ extrusion and sequestration─were upregulated in the roots of both cultivars, while HKT1 was downregulated, suggesting decreased Na+ retrieval under severe stress. In leaves, genes such as SAL1, CLCg, NPF2.4, and NPF2.5 were downregulated, likely limiting the additional ion influx into photosynthetically active tissues. Variety-specific regulation also emerged. In ‘Sanibel’, NHX2 and CCC were upregulated in roots, indicating reliance on vacuolar Na+ compartmentalization and enhanced Cl regulation, while ‘Tasti-Lee’ downregulated NPF2.4, suggesting a different route for restricting Cl movement. In leaves, AKT1 and HSP90.7 were induced under T3 in ‘Tasti-Lee’ but not in ‘Sanibel’, whereas CCC and CLCc were upregulated in ‘Sanibel’ only. These different mechanisms of controlling Na+ and Cl underscore both shared and cultivar-specific salinity-tolerance strategies, providing crucial insights for developing salt-tolerant tomato lines.

Abstract Image

通过离子转运和胁迫调控解读番茄耐盐性的遗传基础
盐碱化仍然是番茄生产的主要障碍;然而,离子积累和基因表达在赋予耐盐性中的相互作用尚未完全了解。本研究以‘Sanibel’和‘tasi - lee’为研究对象,分别进行了1.5 (T0)、4 (T1)、8 (T2)和12 (T3) dS m-1的4种盐度处理,观察其形态、离子和分子反应。盐度升高导致地上部和根部干重、株高、根长和叶片数显著下降,在12 dS m-1 (T3)时下降幅度最大。离子谱分析显示根和芽中Na和Cl浓度增加。而在8 dS - m-1时,“塔斯蒂-李”叶片Na和Cl积累量最高。两个品种的叶片和茎中钾含量均降低;然而,在最高盐度下,根系K出乎意料地反弹。基因表达分析结果显示,SOS1、SOS2和NHX1在两个品种的根中表达上调,而HKT1表达下调,表明在严重胁迫下Na+的提取减少。在叶片中,SAL1、CLCg、NPF2.4和NPF2.5等基因下调,可能限制了额外的离子流入光合活性组织。针对不同品种的监管也出现了。在‘ Sanibel ’中,NHX2和CCC在根中上调,表明依赖于液泡Na+区隔和Cl -调控增强,而‘ Tasti-Lee ’下调NPF2.4,表明限制Cl -运动的途径不同。在叶片中,T3诱导的AKT1和HSP90.7在‘tasi - lee’中被诱导,而在‘Sanibel’中没有,而CCC和CLCc仅在‘Sanibel’中被上调。这些不同的控制Na+和Cl -的机制强调了共同的和品种特有的耐盐策略,为培育耐盐番茄品系提供了重要的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
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