He Zhi-Qiang, Wang Li-Jun, Wang Yu-Jing, Chen Yong-Hong, Wen Ya, Zhang Ke-Qin, Niu Xue-Mei
State Key Laboratory for Conservation and Utilization of Bio-Resources & Key Laboratory for Microbial Resources of the Ministry of Education, School of life Sciences, Yunnan University, Kunming, 650091, People's Republic of China.
J Agric Food Chem. 2021 Apr 21;69(15):4464-4479. doi: 10.1021/acs.jafc.1c00771. Epub 2021 Apr 6.
Polyketide synthase-terpenoid synthase (PKS-TPS) hybrid pathways for biosynthesis of unique sesquiterpenyl epoxy-cyclohexenoids (SECs) have been found to be widely distributed in plant pathogenic fungi. However, the natural and ecological functions of these pathways and their metabolites still remain cryptic. In this study, the whole PKS-TPS hybrid pathway in the predominant nematode-trapping fungus was first proposed according to all the intermediates and their derivatives from all the mutants with a deficiency in each gene involved in SEC biosynthesis. Most mutants displayed significantly increased trap formation which was correlated with alteration of the ammonia level. Further analysis revealed that the main metabolites involved in ammonia metabolism were largely increased in most mutants. However, significantly retarded colonization in soil were observed in most mutants compared to the wild-type strain due to significantly decreased antibacterial activities. Our results suggested that used the PKS-TPS hybrid pathway for fungal soil colonization via decreasing fungal nematode-capturing ability. This also provided solid evidence that boosting fungal colonization in soil was the secondary metabolite whose biosynthesis depended on a PKS-TPS hybrid pathway.
已发现聚酮合酶 - 萜类合酶(PKS - TPS)杂合途径用于生物合成独特的倍半萜环氧环己烯类化合物(SEC),该途径广泛分布于植物病原真菌中。然而,这些途径及其代谢产物的自然和生态功能仍不清楚。在本研究中,根据参与SEC生物合成的每个基因缺失的所有突变体的所有中间体及其衍生物,首次提出了主要线虫捕捉真菌中的完整PKS - TPS杂合途径。大多数突变体显示陷阱形成显著增加,这与氨水平的改变相关。进一步分析表明,大多数突变体中参与氨代谢的主要代谢产物大量增加。然而,与野生型菌株相比,大多数突变体在土壤中的定殖明显延迟,这是由于抗菌活性显著降低。我们的结果表明,[具体真菌名称未给出]通过降低真菌对线虫的捕捉能力,利用PKS - TPS杂合途径进行真菌在土壤中的定殖。这也提供了确凿的证据,即促进真菌在土壤中的定殖是其生物合成依赖于PKS - TPS杂合途径的次生代谢产物。