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新型产 melatonin 芽孢杆菌 safensis EH143 缓解大豆盐和镉胁迫。

Novel melatonin-producing Bacillus safensis EH143 mitigates salt and cadmium stress in soybean.

机构信息

Department of Applied Biosciences, Kyungpook National University, Daegu, Republic of Korea.

Biosafety Division, National Institute of Agriculture Science, Rural Development Administration, Jeonju, South Korea.

出版信息

J Pineal Res. 2024 May;76(4):e12957. doi: 10.1111/jpi.12957.

Abstract

Recently, microorganism and exogenous melatonin application has been recognized as an efficient biological tool for enhancing salt tolerance and heavy metal detoxification in agriculture crops. Thus, the goal of this study was to isolate and evaluate a novel melatonin-producing plant growth promoting bacterium. With high-throughput whole genome sequencing, phytohormone measurements, expression profiling, and biochemical analysis, we can identify a novel PGPB that produces melatonin and unravel how it promotes soybean growth and development and protects against salt and Cd stress. We identify the melatonin synthesis pathway (tryptophan→tryptamine→serotonin melatonin) of the halotolerant (NaCl > 800 mM) and heavy metal-resistant (Cd >3 mM) rhizobacterium Bacillus safensis EH143 and use it to treat soybean plants subjected to Cd and NaCl stresses. Results show that EH143 will highly bioaccumulate heavy metals and significantly improve P and Ca uptake and the K/Na (93%↑under salt stress) ratio while reducing Cd uptake (49% under Cd stress) in shoots. This activity was supported by the expression of the ion regulator HKT1, MYPB67, and the calcium sensors CDPK5 and CaMK1 which ultimately led to increased plant growth. EH143 significantly decreased ABA content in shoots by 13%, 20%, and 34% and increased SA biosynthesis in shoots by 14.8%, 31%, and 48.2% in control, salt, and Cd-treated plants, upregulating CYP707A1 and CYP707A2 and PAL1 and ICS, respectively. The melatonin content significantly decreased along with a reduced expression of ASMT3 following treatment with EH143; moreover, reduced expression of peroxidase (POD) and superoxide dismutase (SOD) by 134.5% and 39% under salt+Cd stress, respectively and increased level of total amino acids were observed. Whole-genome sequencing and annotation of EH143 revealed the presence of the melatonin precursor tryptophan synthase (trpA, trpB, trpS), metal and other ion regulators (Cd: cadA, potassium: KtrA and KtrB, phosphate: glpT, calcium: yloB, the sodium/glucose cotransporter: sgIT, and the magnesium transporter: mgtE), and enzyme activators (including the siderophore transport proteins yfiZ and yfhA, the SOD sodA, the catalase katA1, and the glutathione regulator KefG) that may be involved in programming the plant metabolic system. As a consequence, EH143 treatment significantly reduced the contents of lipid peroxidation (O, MDA, and HO) up to 69%, 46%, and 29% in plants under salt+Cd stress, respectively. These findings suggest that EH143 could be a potent biofertilizer to alleviate NaCl and Cd toxicity in crops and serve as an alternative substitute for exogenous melatonin application.

摘要

最近,人们已经认识到微生物和外源性褪黑素的应用是提高农业作物耐盐性和重金属解毒能力的有效生物工具。因此,本研究的目的是分离和评估一种新的产生褪黑素的植物促生菌。通过高通量全基因组测序、植物激素测量、表达谱分析和生化分析,我们可以鉴定出一种新的产生褪黑素的植物促生菌,并揭示它如何促进大豆的生长和发育,以及如何抵御盐和 Cd 胁迫。我们确定了耐盐(NaCl>800mM)和耐重金属(Cd>3mM)根际细菌 Bacillus safensis EH143 的褪黑素合成途径(色氨酸→色胺→5-羟色胺→褪黑素),并利用它来处理受到 Cd 和 NaCl 胁迫的大豆植株。结果表明,EH143 能够高度富集重金属,并显著提高 P 和 Ca 的吸收,以及 K/Na(盐胁迫下增加 93%)的比例,同时降低 Cd 的吸收(Cd 胁迫下减少 49%)。这一活性得到了离子调节剂 HKT1、MYPB67 和钙传感器 CDPK5 和 CaMK1 的表达的支持,最终导致植物生长的增加。EH143 显著降低了植株中 ABA 的含量,分别减少了 13%、20%和 34%,并增加了植株中 SA 的生物合成,分别增加了 14.8%、31%和 48.2%,在对照、盐和 Cd 处理的植物中,分别上调了 CYP707A1 和 CYP707A2 以及 PAL1 和 ICS。EH143 处理后,ASMT3 的表达显著降低,导致褪黑素含量降低;此外,盐+Cd 胁迫下 POD 和 SOD 的表达分别减少了 134.5%和 39%,总氨基酸水平升高。EH143 的全基因组测序和注释表明,它含有褪黑素前体色氨酸合酶(trpA、trpB、trpS)、金属和其他离子调节剂(Cd:cadA、钾:KtrA 和 KtrB、磷:glpT、钙:yloB、钠/葡萄糖共转运蛋白:sgIT 和镁转运蛋白:mgtE)以及酶激活剂(包括铁载体转运蛋白 yfiZ 和 yfhA、SOD sodA、过氧化氢酶 katA1 和谷胱甘肽调节剂 KefG),这些可能参与了植物代谢系统的编程。因此,EH143 处理显著降低了盐+Cd 胁迫下植物中脂质过氧化(O、MDA 和 HO)的含量,分别降低了 69%、46%和 29%。这些发现表明,EH143 可以作为一种有效的生物肥料,减轻作物的 NaCl 和 Cd 毒性,并可作为外源性褪黑素应用的替代物。

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