对黄腐酸芽孢杆菌 HS1 介导的系统耐受性的深入研究:对增强植物耐受非生物胁迫的多功能影响。

IF 5.4 2区 生物学 Q1 PLANT SCIENCES Physiologia plantarum Pub Date : 2024-07-01 DOI:10.1111/ppl.14458
Anahita Barghi, Ho Won Jung
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引用次数: 0

摘要

非生物胁迫严重影响农业生产率和粮食安全。要提高植物的抗逆性,就必须采取创新策略,包括使用植物源化合物和植物生长促进根瘤菌(PGPR)。本研究深入探讨了枯草芽孢杆菌 HS1(BzaHS1)和 BzaHS1 衍生的挥发性有机化合物(VOC)如何赋予卷心菜和黄瓜植物对盐和热胁迫的系统耐受性。白菜和黄瓜植株直接施用 BzaHS1 菌株或接触 BzaHS1 衍生的挥发性有机化合物可促进幼苗在胁迫条件下的生长。这种诱导的系统耐受性与超氧化物歧化酶(EC 1.15.1.1)、过氧化氢酶(EC 1.11.1.6)或抗坏血酸过氧化物酶(EC 1.11.1.1)的 mRNA 表达和酶活性的增加有关,从而导致卷心菜和黄瓜植株的氧化应激减少。与 BzaHS1 共同培养的植物暴露于 BzaHS1 衍生的挥发性有机化合物后,会引发胼胝质的积累,并在应对高盐和高温胁迫时将气孔开放程度降至最低。相比之下,外源处理的壬二酸(一种特征明显的植物防御引物)对在非生物胁迫条件下生长的白菜和黄瓜植株的幼苗生长没有显著影响。综上所述,BzaHS1 及其 VOC 具有通过调节渗透胁迫调控网络增强植物对盐胁迫和热胁迫耐受性反应的潜力。
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Insights into Bacillus zanthoxyli HS1-mediated systemic tolerance: multifunctional implications for enhanced plant tolerance to abiotic stresses.

Abiotic stresses significantly impact agricultural productivity and food security. Innovative strategies, including the use of plant-derived compounds and plant growth-promoting rhizobacteria (PGPR), are necessary to enhance plant resilience. This study delved into how Bacillus zanthoxyli HS1 (BzaHS1) and BzaHS1-derived volatile organic compounds (VOC) conferred systemic tolerance against salt and heat stresses in cabbage and cucumber plants. Direct application of a BzaHS1 strain or exposure of BzaHS1-derived VOC to cabbage and cucumber plants promoted seedling growth under stressed conditions. This induced systemic tolerance was associated with increased mRNA expression and enzymatic activities of superoxide dismutase (EC 1.15.1.1), catalase (EC 1.11.1.6), or ascorbate peroxidase (EC 1.11.1.1), leading to a reduction in oxidative stress in cabbage and cucumber plants. Plants co-cultured with BzaHS1 and exposed to BzaHS1-derived VOC triggered the accumulation of callose and minimized stomatal opening in response to high salt and temperature stresses, respectively. In contrast, exogenous treatment of azelaic acid, a well-characterized plant defense primer, had no significant impact on the seedling growth of cabbage and cucumber plants grown under abiotic stress conditions. Taken together, BzaHS1 and its VOC show potential for enhancing plant tolerance responses to salt and heat stresses through modulation of osmotic stress-regulatory networks.

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来源期刊
Physiologia plantarum
Physiologia plantarum 生物-植物科学
CiteScore
11.00
自引率
3.10%
发文量
224
审稿时长
3.9 months
期刊介绍: Physiologia Plantarum is an international journal committed to publishing the best full-length original research papers that advance our understanding of primary mechanisms of plant development, growth and productivity as well as plant interactions with the biotic and abiotic environment. All organisational levels of experimental plant biology – from molecular and cell biology, biochemistry and biophysics to ecophysiology and global change biology – fall within the scope of the journal. The content is distributed between 5 main subject areas supervised by Subject Editors specialised in the respective domain: (1) biochemistry and metabolism, (2) ecophysiology, stress and adaptation, (3) uptake, transport and assimilation, (4) development, growth and differentiation, (5) photobiology and photosynthesis.
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