Hilgers Fabienne, Habash Samer S, Loeschcke Anita, Ackermann Yannic Sebastian, Neumann Stefan, Heck Achim, Klaus Oliver, Hage-Hülsmann Jennifer, Grundler Florian M W, Jaeger Karl-Erich, Schleker A Sylvia S, Drepper Thomas
Institute of Molecular Enzyme Technology, Heinrich-Heine-University Düsseldorf, Forschungszentrum Jülich, Wilhelm-Johnen-Straße, 52428 Jülich, Germany.
INRES-Molecular Phytomedicine, University of Bonn, Karlrobert-Kreiten-Str. 13, 53115 Bonn, Germany.
Microorganisms. 2021 Jan 14;9(1):168. doi: 10.3390/microorganisms9010168.
Terpenoids constitute one of the largest and most diverse groups within the class of secondary metabolites, comprising over 80,000 compounds. They not only exhibit important functions in plant physiology but also have commercial potential in the biotechnological, pharmaceutical, and agricultural sectors due to their promising properties, including various bioactivities against pathogens, inflammations, and cancer. In this work, we therefore aimed to implement the plant sesquiterpenoid pathway leading to β-caryophyllene in the heterologous host and achieved a maximum production of 139 ± 31 mg L culture. As this sesquiterpene offers various beneficial anti-phytopathogenic activities, we evaluated the bioactivity of β-caryophyllene and its oxygenated derivative β-caryophyllene oxide against different phytopathogenic fungi. Here, both compounds significantly inhibited the growth of and by up to 40%, while growth of was only slightly affected, and and were unaffected. At the same time, the compounds showed a promising low inhibitory profile for a variety of plant growth-promoting bacteria at suitable compound concentrations. Our observations thus give a first indication that β-caryophyllene and β-caryophyllene oxide are promising natural agents, which might be applicable for the management of certain plant pathogenic fungi in agricultural crop production.
萜类化合物是次生代谢产物中最大且最多样化的类别之一,包含超过80,000种化合物。它们不仅在植物生理学中发挥重要作用,还因其具有多种有前景的特性,包括对病原体、炎症和癌症的各种生物活性,在生物技术、制药和农业领域具有商业潜力。因此,在本研究中,我们旨在在异源宿主中构建通向β-石竹烯的植物倍半萜途径,并实现了每升培养物最高139±31毫克的产量。由于这种倍半萜具有多种有益的抗植物病原活性,我们评估了β-石竹烯及其氧化衍生物β-石竹烯氧化物对不同植物病原真菌的生物活性。在此,这两种化合物均显著抑制了[具体真菌名称1]和[具体真菌名称2]的生长,抑制率高达40%,而[具体真菌名称3]的生长仅受到轻微影响,[具体真菌名称4]和[具体真菌名称5]则未受影响。同时,在合适的化合物浓度下,这些化合物对多种促进植物生长的细菌显示出有前景的低抑制特性。因此,我们的观察结果首次表明,β-石竹烯和β-石竹烯氧化物是有前景的天然制剂,可能适用于农作物生产中某些植物病原真菌的治理。