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植物促生、抗病及植物促生内生芽孢杆菌 Fcl1 元素调节效应。

Plant Growth Enhancement, Disease Resistance, and Elemental Modulatory Effects of Plant Probiotic Endophytic Bacillus sp. Fcl1.

机构信息

School of Biosciences, Mahatma Gandhi University, PD Hills (PO), Kottayam, Kerala, 686 560, India.

Sree Narayana Arts and Science College, Kumarakom, India.

出版信息

Probiotics Antimicrob Proteins. 2019 Jun;11(2):526-534. doi: 10.1007/s12602-018-9417-8.

Abstract

Endophytic bacteria have already been studied for their beneficial support to plants to manage both biotic and abiotic stress through an array of well-established mechanisms. They have either direct or indirect impact on mobilizing diverse nutrients and elements from soil to plants. However, detailed insight into the fine-tuning of plant elemental composition by associated microorganism is very limited. In this study, endophytic Bacillus Fcl1 characterized from the rhizome of Curcuma longa was found to have broad range of plant growth-promoting and biocontrol mechanisms. The organism was found to have indole acetic acid and 1-aminocyclopropane-1-carboxylate deaminase production properties along with nitrogen fixation. The Bacillus Fcl1 could also inhibit diverse phytopathogens as confirmed by dual culture and well diffusion. By LC-MS/MS analysis, chemical basis of its antifungal activity has been proved to be due to the production of iturin A and a blend of surfactin compounds. Moreover, the organism was found to induce both plant growth and disease resistance in vivo in model plant system. Because of these experimentally demonstrated multiple plant probiotic features, Bacillus Fcl1 was selected as a candidate organism to study its role in modulation of plant elemental composition. ICP-MS analysis of Bacillus Fcl1-treated plants provided insight into relation of bacterial interaction with elemental composition of plants.

摘要

内生细菌已经通过一系列成熟的机制被研究其对植物的有益支持,以管理生物和非生物胁迫。它们直接或间接地影响从土壤中向植物移动各种养分和元素。然而,与相关微生物一起微调植物元素组成的详细见解非常有限。在这项研究中,从姜黄根茎中分离出的内生芽孢杆菌 Fcl1 具有广泛的植物生长促进和生物防治机制。该生物被发现具有吲哚乙酸和 1-氨基环丙烷-1-羧酸脱氨酶的产生特性以及固氮作用。芽孢杆菌 Fcl1 还可以通过双培养和良好扩散来抑制多种植物病原体。通过 LC-MS/MS 分析,其抗真菌活性的化学基础已被证明是由于iturin A 和表面活性剂化合物混合物的产生。此外,该生物在模式植物系统中被发现能够在体内诱导植物生长和抗病性。由于这些经过实验证明的多种植物益生菌特性,芽孢杆菌 Fcl1 被选为候选生物来研究其在调节植物元素组成中的作用。对芽孢杆菌 Fcl1 处理的植物进行 ICP-MS 分析,深入了解了细菌与植物元素组成之间的相互作用关系。

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