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针对叶部病原菌的非芽孢形成细菌制剂开发的逐步流程图:以辣椒溶杆菌AZ78为例。

Stepwise flow diagram for the development of formulations of non spore-forming bacteria against foliar pathogens: The case of Lysobacter capsici AZ78.

作者信息

Segarra Guillem, Puopolo Gerardo, Giovannini Oscar, Pertot Ilaria

机构信息

Department of Sustainable Agro-Ecosystems and Bioresources, Research and Innovation Centre, Fondazione Edmund Mach (FEM), Via Edmund Mach 1, 38010 San Michele all'Adige, Trento, Italy.

Department of Sustainable Agro-Ecosystems and Bioresources, Research and Innovation Centre, Fondazione Edmund Mach (FEM), Via Edmund Mach 1, 38010 San Michele all'Adige, Trento, Italy.

出版信息

J Biotechnol. 2015 Dec 20;216:56-64. doi: 10.1016/j.jbiotec.2015.10.004. Epub 2015 Oct 20.

Abstract

The formulation is a significant step in biopesticide development and is an efficient way to obtain consistency in terms of biological control under field conditions. Nonetheless, there is still a lack of information regarding the processes needed to achieve efficient formulation of non spore-forming bacterial biological control agents. In response to this, we propose a flow diagram made up of six steps including selection of growth parameters, checking of minimum shelf life, selection of protective additives, checking that the additives have no adverse effects, validation of the additive mix under field conditions and choosing whether to use additives as co-formulants or tank mix additives. This diagram is intended to provide guidance and decision-making criteria for the formulation of non spore-forming bacterial biological control agents against foliar pathogens. The diagram was then validated by designing an efficient formulation for a Gram-negative bacterium, Lysobacter capsici AZ78, to control grapevine downy mildew caused by Plasmopara viticola. A harvest of 10(10)L. capsici AZ78cellsml(-1) was obtained in a bench top fermenter. The viability of cells decreased by only one order of magnitude after one year of storage at 4°C. The use of a combination of corn steep liquor, lignosulfonate, and polyethyleneglycol in the formulation improved the survival of L. capsici AZ78 cells living on grapevine leaves under field conditions by one order of magnitude. Furthermore, the use of these additives also guaranteed a reduction of 71% in P. viticola attacks. In conclusion, this work presents a straightforward stepwise flow diagram to help researchers develop formulations for biological control agents that are easy to prepare, stable, not phytotoxic and able to protect the microorganims under field conditions.

摘要

该制剂是生物农药开发中的重要一步,也是在田间条件下实现生物防治一致性的有效途径。尽管如此,关于实现非芽孢形成细菌生物防治剂高效制剂所需的过程仍缺乏信息。对此,我们提出了一个由六个步骤组成的流程图,包括生长参数的选择、最短保质期的检查、保护性添加剂的选择、检查添加剂有无不良影响、在田间条件下验证添加剂混合物以及选择是将添加剂用作共制剂还是桶混添加剂。该图旨在为针对叶部病原体的非芽孢形成细菌生物防治剂的制剂提供指导和决策标准。然后通过为革兰氏阴性细菌辣椒溶杆菌AZ78设计一种高效制剂来验证该图,以控制由葡萄生单轴霉引起的葡萄霜霉病。在台式发酵罐中收获了10(10)个辣椒溶杆菌AZ78细胞/毫升。在4°C下储存一年后,细胞活力仅下降了一个数量级。在制剂中使用玉米浆、木质素磺酸盐和聚乙二醇的组合,可使田间条件下生活在葡萄叶片上的辣椒溶杆菌AZ78细胞的存活率提高一个数量级。此外,使用这些添加剂还保证了葡萄生单轴霉的侵染减少71%。总之,这项工作提出了一个简单的逐步流程图,以帮助研究人员开发易于制备、稳定、无植物毒性且能在田间条件下保护微生物的生物防治剂制剂。

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