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干旱锻炼可在生理、生化和分子水平上提高烟草的耐旱性。

Drought-hardening improves drought tolerance in Nicotiana tabacum at physiological, biochemical, and molecular levels.

机构信息

Tobacco Research Institute, Chinese Academy of Agricultural Sciences, Key Laboratory of Tobacco Biology and Processing, Ministry of Agriculture, Qingdao, 266101, China.

Graduate School of Chinese Academy of Agricultural Sciences, Beijing, 100081, China.

出版信息

BMC Plant Biol. 2020 Oct 23;20(1):486. doi: 10.1186/s12870-020-02688-7.

Abstract

BACKGROUND

Drought stress is the most harmful one among other abiotic stresses with negative impacts on crop growth and development. Drought-hardening is a feasible and widely used method in tobacco seedlings cultivation. It has gained extensive interests due to its role in improving drought tolerance. This research aimed to investigate the role of drought-hardening and to unravel the multiple mechanisms underlying tobacco drought tolerance and adaptation.

RESULTS

This study was designed in which various drought-hardening treatments (CK (no drought-hardening), T1 (drought-hardening for 24 h), T2 (drought-hardening for 48 h), and T3 (drought-hardening for 72 h)) were applied to two tobacco varieties namely HongHuaDaJinYuan (H) and Yun Yan-100 (Y). The findings presented a complete framework of drought-hardening effect at physiological, biochemical, and gene expression levels of the two tobacco varieties under drought stress. The results showed that T2 and T3 significantly reduced the growth of the two varieties under drought stress. Similarly, among the various drought-hardening treatments, T3 improved both the enzymatic (POD, CAT, APX) and non-enzymatic (AsA) defense systems along with the elevated levels of proline and soluble sugar to mitigate the negative effects of oxidative damage and bringing osmoregulation in tobacco plants. Finally, the various drought-hardening treatments (T1, T2, and T3) showed differential regulation of genes expressed in the two varieties, while, particularly T3 drought-hardening treatment-induced drought tolerance via the expression of various stress-responsive genes by triggering the biosynthesis pathways of proline (P5CS1), polyamines (ADC2), ABA-dependent (SnRK2, AREB1), and independent pathways (DREB2B), and antioxidant defense-related genes (CAT, APX1, GR2) in response to drought stress.

CONCLUSIONS

Drought-hardening made significant contributions to drought tolerance and adaptation in two tobacco variety seedlings by reducing its growth and, on the other hand, by activating various defense mechanisms at biochemical and molecular levels. The findings of the study pointed out that drought-hardening is a fruitful strategy for conferring drought tolerance and adaptations in tobacco. It will be served as a useful method in the future to understand the drought tolerance and adaptation mechanisms of other plant species. Drought-hardening improved drought tolerance and adaptation of the two tobacco varieties. T1 indicates drought-hardening for 24 h, T2 indicates drought-hardening for 48 h, T3 indicates drought-hardening for 72 h.

摘要

背景

干旱胁迫是除其他非生物胁迫之外对作物生长和发育危害最大的一种胁迫。干旱锻炼是一种在烟草幼苗培育中广泛应用且可行的方法。由于其在提高耐旱性方面的作用,该方法引起了广泛关注。本研究旨在探究干旱锻炼的作用,并揭示烟草耐旱性和适应性的多种机制。

结果

本研究设计了不同的干旱锻炼处理(CK(不进行干旱锻炼)、T1(干旱锻炼 24 小时)、T2(干旱锻炼 48 小时)和 T3(干旱锻炼 72 小时))应用于两个烟草品种,即红花大金元和云烟 100。研究结果在生理、生化和基因表达水平上呈现了完整的干旱锻炼对两种烟草品种在干旱胁迫下的影响框架。结果表明,T2 和 T3 显著降低了两种品种在干旱胁迫下的生长。同样,在各种干旱锻炼处理中,T3 提高了两种品种的酶(POD、CAT、APX)和非酶(AsA)防御系统,并提高了脯氨酸和可溶性糖的水平,以减轻氧化损伤的负面影响,并在烟草植株中实现渗透调节。最后,各种干旱锻炼处理(T1、T2 和 T3)显示了两种品种中表达基因的差异调节,特别是 T3 干旱锻炼处理通过触发脯氨酸(P5CS1)、多胺(ADC2)、ABA 依赖(SnRK2、AREB1)和独立途径(DREB2B)以及抗氧化防御相关基因(CAT、APX1、GR2)的生物合成途径,在应对干旱胁迫时诱导各种应激响应基因的表达,从而导致耐旱性。

结论

干旱锻炼通过降低烟草幼苗的生长,同时在生化和分子水平上激活各种防御机制,为烟草的耐旱性和适应性做出了重要贡献。研究结果表明,干旱锻炼是赋予烟草耐旱性和适应性的一种富有成效的策略。它将成为未来理解其他植物物种耐旱性和适应性机制的有用方法。干旱锻炼提高了两个烟草品种的耐旱性和适应性。T1 表示干旱锻炼 24 小时,T2 表示干旱锻炼 48 小时,T3 表示干旱锻炼 72 小时。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/00e2/7584104/009efcfa70ff/12870_2020_2688_Fig1_HTML.jpg

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