Salicylic acid modulates ACS, NHX1, sos1 and HKT1;2 expression to regulate ethylene overproduction and Na+ ions toxicity that leads to improved physiological status and enhanced salinity stress tolerance in tomato plants cv. Pusa Ruby.

IF 2.8 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Plant Signaling & Behavior Pub Date : 2021-11-02 Epub Date: 2021-07-12 DOI:10.1080/15592324.2021.1950888
Yalaga Rama Rao, Mohammad Wahid Ansari, Ranjan Kumar Sahoo, Ratnum Kaul Wattal, Narendra Tuteja, Vellanki Ravi Kumar
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引用次数: 11

Abstract

Tomato is an important crop for its high nutritional and medicinal properties. The role of salicylic acid (SA) in 1-aminocyclopropane-1-carboxylate synthase (ACS), sodium-hydrogen exchanger (NHX1), salt overly sensitive 1 (sos1) and high-affinity K+ transporter (HKT1;2) transcripts, and ACS enzyme activity and ethylene (ET) production, and growth and physiological attributes was evaluated in tomato cv. Pusa Ruby under salinity stress. Thirty days-old seedlings treated with 0 mM NaCl, 250 mM NaCl, 250 mM NaCl plus 100 µM SA were assessed for different growth and physiological parameters at 45 DAS. Results showed ACS, NHX1, sos1 and HKT1;2 transcripts were significantly changed in SA treated plants. The ACS enzyme activity and ET content were considerably decreased in SA treated plants. Shoot length (SL), root length (RL), number of leaves (NL), leaf area per plant (LA), shoot fresh weight (SFW) and root fresh weight (RFW) were also improved under SA treatment. Conversely, the electrolyte leakage and sodium ion (Na+) content were significantly reduced in SA treated plants. In addition, the endogenous proline and potassium ion (K+) content, and K+/Na+ ratio were considerably increased under SA treatment. Likewise, antioxidant enzymes (SOD, CAT, APX and GR) profile were better in SA treated plant. The present findings suggest that SA reverse the negative effects of salinity stress and stress induced ET production by modulating ACS, NHX, sos1 and HKT1;2 transcript level, and improving various growth and physiological parameters, and antioxidants enzymes profile. This will contribute to a better understanding of salinity stress tolerance mechanisms of tomato plants involving SA and ET cross talk and ions homeostasis to develop more tolerant plant.

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水杨酸通过调节ACS、NHX1、sos1和HKT1;2的表达,调控乙烯过剩和Na+离子毒性,从而改善番茄植株的生理状态,增强其耐盐性。天Ruby。
番茄具有很高的营养价值和药用价值,是一种重要的农作物。研究了水杨酸(SA)在1-氨基环丙烷-1-羧酸合成酶(ACS)、钠氢交换器(NHX1)、盐过敏1 (sos1)和高亲和K+转运体(HKT1;2)转录物中的作用,以及ACS酶活性和乙烯(ET)的产生、生长和生理特性。盐胁迫下的Pusa Ruby。用0 mM NaCl、250 mM NaCl、250 mM NaCl加100µM SA处理30 d的幼苗,在45 DAS条件下对不同的生长和生理参数进行评估。结果表明,在SA处理下,ACS、NHX1、sos1和HKT1;2转录本发生了显著变化。经SA处理的植株ACS酶活性和ET含量均显著降低。SA处理也提高了植株的茎长(SL)、根长(RL)、叶片数(NL)、单株叶面积(LA)、茎鲜重(SFW)和根鲜重(RFW)。相反,经SA处理的植株电解质泄漏量和钠离子(Na+)含量显著降低。此外,SA处理显著提高了内源脯氨酸和钾离子(K+)含量以及K+/Na+比值。同样,抗氧化酶(SOD、CAT、APX和GR)谱在SA处理下表现较好。上述研究结果表明,SA通过调节ACS、NHX、sos1和HKT1;2转录本水平,改善各种生长生理参数和抗氧化酶谱,逆转盐胁迫和应激诱导的ET产生的负面影响。这将有助于更好地了解番茄植物的盐胁迫抗性机制,包括SA和ET的串扰和离子稳态,以开发更具耐盐性的植物。
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来源期刊
Plant Signaling & Behavior
Plant Signaling & Behavior Agricultural and Biological Sciences-Plant Science
CiteScore
6.00
自引率
3.40%
发文量
111
期刊介绍: Plant Signaling & Behavior, a multidisciplinary peer-reviewed journal published monthly online, publishes original research articles and reviews covering the latest aspects of signal perception and transduction, integrative plant physiology, and information acquisition and processing.
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