实现可持续生物控制:恶劣环境中的微藻对土壤真菌的抑制作用

Dikla Eckstien, Noga Maximov, Nofet Margolis, Hagai Raanan
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引用次数: 0

摘要

利用微生物作为生物控制剂来防治土壤中的植物病原体,是替代化学农药的一种很有前途的方法。然而,只有一些生物控制剂在田间条件下被证明是有效的。本研究探索了从半干旱地区的生物土壤结壳和农田等恶劣环境中分离出来的高弹性微藻作为一种新型和可持续的生物控制方法的潜力。研究人员分离并鉴定了 59 株微藻类,包括 13 株蓝藻和 46 株绿藻。对微藻生长培养基进行了双培养平板试验和毒性试验,以评估分离菌株对八种代表性土传病原体的抗真菌活性。结果表明,许多微藻菌株对特定真菌病原体的生长具有显著的抑制作用,但不同微藻菌株和病原体种类之间的活性存在差异。有些菌株甚至能促进某些真菌的生长。抗真菌活性缺乏明确的模式,这凸显了微藻与土传病原体之间相互作用的复杂性和特异性。根据对真菌生长的抑制作用,开发了一种 "抑制效果 "指标来量化生物防治潜力。绿藻属 Desmodesmus,特别是 Desmodesmus subspicatus 分离物的抗真菌效力高于其他属。虽然抑制机制尚不清楚,但研究结果表明,来自 BSCs 等极端环境的微藻具有良好的生物控制能力。通过利用特定的微藻菌株或针对土传病原体的协同菌株组合,进一步的研究可以为可持续病害管理提供新的机遇。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards sustainable biocontrol: inhibition of soil borne fungi by microalgae from harsh environments
Using microorganisms as biocontrol agents against soilborne plant pathogens is a promising alternative to chemical pesticides. However, only some biocontrol agents have proven effective under field conditions. This study explores the potential of highly resilient microalgae isolated from harsh environments, such as Biological Soil Crusts and agricultural fields in semi-arid regions, as a novel and sustainable approach to biocontrol. Fifty-nine microalgal strains, including thirteen cyanobacteria and forty-six green algae, were isolated and identified. Dual-culture plate assays and toxicity tests of microalgal growth media were conducted to evaluate the antifungal activity of the isolates against eight representative soilborne pathogens. The results showed that many microalgae strains exhibited significant inhibitory effects on the growth of specific fungal pathogens, although the activity varied among different microalgal strains and pathogen species. Some strains even promoted the growth of certain fungi. The lack of a clear pattern in the antifungal activity highlights the complexity and specificity of the interactions between microalgae and soilborne pathogens. An “Inhibition Effectiveness” metric was developed to quantify biocontrol potential based on fungal growth inhibition. The green algal genus Desmodesmus, particularly Desmodesmus subspicatus isolates, showed higher antifungal efficacy than other genera. While the inhibitory mechanisms remain unclear, the results demonstrate the promising biocontrol capabilities of microalgae from extreme environments like BSCs. Further research could unlock novel opportunities for sustainable disease management by harnessing specific microalgal strains or synergistic strain combinations targeting soilborne pathogens.
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