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建立艳丽枝孢作为防治根致病性线虫剑线虫的生物防治剂。

Establishment of Arthrobotrys flagrans as biocontrol agent against the root pathogenic nematode Xiphinema index.

机构信息

Department of Microbiology, Institute for Applied Biosciences, Karlsruhe, Germany.

出版信息

Environ Microbiol. 2023 Feb;25(2):283-293. doi: 10.1111/1462-2920.16282. Epub 2022 Nov 20.

DOI:10.1111/1462-2920.16282
PMID:36354014
Abstract

Plant-parasitic nematodes cause devastating agricultural damage worldwide. Only a few synthetic nematicides can be used and their application is limited in fields. Therefore, there is a need for sustainable and environment-friendly alternatives. Nematode-trapping fungi (NTF) are natural predators of nematodes. They capture and digest them with their hyphae and are starting to being used as bio-control agents. In this study, we applied the NTF Arthrobotrys flagrans (Duddingtonia flagrans) against the wine pathogenic nematode Xiphinema index. A. flagrans reduced the number of X. index juveniles in pot cultures of Ficus carica, an alternative host plant for X. index, significantly. Sodium-alginate pellets with A. flagrans spores were produced for vineyard soil inoculation under laboratory conditions. The NTF A. conoides, A. musiformis and A. superba were enriched from several soil samples, showing their natural presence. Trap formation is an energy-consuming process and depends upon various biotic and abiotic stimuli. Here, we show that bacteria of the genus Delftia, Bacillus, Pseudomonas, Enterobacter and Serratia induced trap formation in NTF like A. conoides and A. oligospora but not in A. flagrans in the absence of nematodes. The application of NTF along with such bacteria could be a combinatorial way of efficient biocontrol in nematode-infested soil.

摘要

植物寄生线虫在全球范围内造成严重的农业损害。只有少数几种合成杀线虫剂可用,其应用在田间受到限制。因此,需要可持续和环保的替代品。线虫诱捕真菌(NTF)是线虫的天然捕食者。它们用菌丝捕获并消化线虫,并开始被用作生物防治剂。在这项研究中,我们应用了线虫诱捕真菌(Duddingtonia flagrans)来防治葡萄酒致病线虫 Xiphinema index。A. flagrans 显著减少了替代宿主植物榕树上 X. index 幼虫的数量。在实验室条件下,用含有 A. flagrans 孢子的海藻酸钠丸剂对葡萄园土壤进行接种。从几个土壤样本中富集了 A. conoides、A. musiformis 和 A. superba 等 NTF,表明它们的自然存在。捕器的形成是一个耗能过程,取决于各种生物和非生物刺激。在这里,我们表明,属 Delftia、芽孢杆菌、假单胞菌、肠杆菌和沙雷氏菌的细菌在没有线虫的情况下诱导了 NTF 如 A. conoides 和 A. oligospora 的捕器形成,但不诱导 A. flagrans。将 NTF 与这些细菌一起应用可能是线虫侵染土壤中高效生物防治的组合方式。

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