首页> 外文期刊>Current Genetics >Use of a non-homologous end-joining-deficient strain (delta-ku70) of the biocontrol fungus Trichoderma virens to investigate the function of the laccase gene lcc1 in sclerotia degradation
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Use of a non-homologous end-joining-deficient strain (delta-ku70) of the biocontrol fungus Trichoderma virens to investigate the function of the laccase gene lcc1 in sclerotia degradation

机译:使用非同源末端连接缺陷菌株(delta-ku70)的生防真菌木霉属菌研究漆酶基因lcc1在菌核降解中的功能

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The aim of this study was to apply a generated Δtku70 strain with increased homologous recombination efficiency from the mycoparasitic fungus Trichoderma virens for studying the involvement of laccases in the degradation of sclerotia of plant pathogenic fungi. Inactivation of the non-homologous end-joining pathway has become a successful tool in filamentous fungi to overcome poor targeting efficiencies for genetic engineering. Here, we applied this principle to the biocontrol fungus T. virens, strain I10, by deleting its tku70 gene. This strain was subsequently used to delete the laccase gene lcc1, which we found to be expressed after interaction of T. virens with sclerotia of the plant pathogenic fungi Botrytis cinerea and Sclerotinia sclerotiorum. Lcc1 was strongly upregulated at early colonization of B. cinerea sclerotia and steadily induced during colonization of S. sclerotiorum sclerotia. The Δtku70Δlcc1 mutant was altered in its ability to degrade the sclerotia of B. cinerea and S. sclerotiorum. Interestingly, while the decaying ability for B. cinerea sclerotia was significantly decreased, that to degrade S. sclerotiorum sclerotia was even enhanced, suggesting the operation of different mechanisms in the mycoparasitism of these two types of sclerotia by the laccase LCC1.
机译:这项研究的目的是将产自真菌寄生木霉的木霉属木霉产生的具有更高同源重组效率的Δtku70菌株用于研究漆酶与植物病原性真菌的菌核降解的关系。非同源末端连接途径的灭活已成为丝状真菌克服基因工程靶向性差的成功工具。在这里,我们通过删除其tku70基因,将此原理应用于生防真菌T. virens菌株I10。该菌株随后被用于删除漆酶基因lcc1,我们发现该漆酶基因在vir。T. virens与植物病原性真菌灰葡萄孢菌和核盘菌核盘菌的菌核相互作用后表达。 Lcc1在灰质芽孢杆菌菌核早期定殖时强烈上调,并在菌核盘菌菌核定殖过程中稳定诱导。 Δtku70Δlcc1突变体的降解灰质芽孢杆菌和核盘菌的菌核能力发生了变化。有趣的是,尽管灰葡萄孢菌菌核的衰减能力显着降低,但降解葡萄球菌菌核菌的能力甚至增强了,这表明漆酶LCC1在这两种菌核的支原体炎中具有不同机制。

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