Department of Plant Pathology, University of California Davis, Davis, CA, USA.
Novozymes Inc, 1445 Drew Avenue, Davis, CA, USA.
Microb Biotechnol. 2021 Jul;14(4):1367-1384. doi: 10.1111/1751-7915.13716. Epub 2020 Dec 21.
In greenhouse and field trials, a bacterial mixture of Collimonas arenae Cal35 and Bacillus velezensis FZB42, but not Cal35 alone or FZB42 alone, was able to protect tomato plants from challenge with the soilborne fungal pathogen Fusarium oxysporum f.sp. lycopersici (Fol). To identify genes and mechanisms underlying this property in Cal35, we screened a random transposon insertion library for loss of function and identified two mutants that were impaired completely or partially in their ability to halt the growth of a wide range of fungal species. In mutant 46A06, the transposon insertion was located in a biosynthetic gene cluster that was predicted to code for a hybrid polyketide synthase-non-ribosomal peptide synthetase, while mutant 60C09 was impacted in a gene cluster for the synthesis and secretion of sugar repeat units. Our data are consistent with a model in which both gene clusters are necessary for the production of an antifungal compound we refer to as carenaemins. We also show that the ability to produce carenaemin contributed significantly to the observed synergy between Cal35 and FZB42 in protecting tomato plants from Fol. We discuss the potential for supplementing Bacillus-based biocontrol products with Collimonas bacteria to boost efficacy of such products.
在温室和田间试验中,混合了 Collimonas arenae Cal35 和 Bacillus velezensis FZB42 的细菌混合物,但不是单独的 Cal35 或 FZB42,能够保护番茄植物免受土壤真菌病原体 Fusarium oxysporum f.sp. lycopersici (Fol) 的侵害。为了确定 Cal35 中具有这种特性的基因和机制,我们筛选了一个随机转座子插入文库,以寻找功能丧失的突变体,并鉴定出两个完全或部分丧失抑制多种真菌生长能力的突变体。在突变体 46A06 中,转座子插入位于一个生物合成基因簇中,该基因簇预测编码一个混合聚酮合酶-非核糖体肽合酶,而突变体 60C09 则受到合成和分泌糖重复单元的基因簇的影响。我们的数据与这样一个模型一致,即两个基因簇对于产生我们称之为 carenaemins 的抗真菌化合物都是必需的。我们还表明,产生 carenaemin 的能力显著促进了 Cal35 和 FZB42 之间在保护番茄植物免受 Fol 侵害方面的协同作用。我们讨论了在 Bacillus 为基础的生物防治产品中补充 Collimonas 细菌以提高此类产品功效的潜力。