Department of Chemical Sciences, Complesso Universitario Monte S. Angelo, University of Naples Federico II, Via Cintia, Naples 80126, Italy.
Department of Chemistry, University of Turin, Via P. Giuria, 7, Turin 10125, Italy.
J Agric Food Chem. 2024 Mar 6;72(9):4737-4746. doi: 10.1021/acs.jafc.3c07130. Epub 2024 Feb 23.
A methodology for the total and modulable synthesis of (4)-lachnophyllum lactone (), on a gram scale, is reported for the first time. The present work started with the design of a retrosynthetic pathway for the target compound, with the key step identified in Pd-Cu bimetallic cascade cross-coupling cyclization. (4)-Lachnophyllum lactone () is an acetylenic furanone previously isolated, in a low amount, from the organic extract of the autotrophic weed. Tested against the stem parasitic weed in a seedling growth bioassay, (4)-lachnophyllum lactone () showed almost 85% of inhibitory activity up to 0.3 mM in comparison with the control. At the same concentration, the compound displayed radicle growth inhibitory activity of the root parasitic weeds and higher than 70 and 40%, respectively. Surprisingly, the compound showed a high percentage of inhibition, up to 0.1 mM, on seed germination too. This versatile synthetic strategy was also used to obtain two further natural analogues, namely, (4)-lachnophyllum lactone () and (4,8)-matricaria lactone (), that showed, in most cases, the same inhibitory trend with slight differences, highlighting the importance of the stereochemistry and unsaturation of the side chain. Furthermore, all of the compounds showed antifungal activity at 1 mM reducing the mycelial growth of the olive pathogen . The design and implementation of scalable and modulable total synthesis on a gram scale of acetylenic furanones allow the production of a large amount of these natural products, overcoming the limit imposed by isolation from natural sources. The results of the present study pave the way for the development of ecofriendly bioinspired pesticides with potential application in agrochemical practices as alternative to synthetic pesticides.
首次报道了一种在克级规模上全合成和可调节合成(4)-lachnophyllum 内酯()的方法。本工作从目标化合物的逆合成设计开始,关键步骤确定为 Pd-Cu 双金属级联交叉偶联环化。(4)-lachnophyllum 内酯()是一种炔基呋喃酮,以前从自养杂草的有机提取物中以低含量分离得到。在幼苗生长生物测定中,(4)-lachnophyllum 内酯()对茎寄生杂草 进行测试,与对照相比,在 0.3 mM 时表现出近 85%的抑制活性。在相同浓度下,该化合物对根寄生杂草 和 的根生长抑制活性分别高于 70%和 40%。令人惊讶的是,该化合物在种子发芽实验中也显示出高达 0.1 mM 的高抑制百分比。这种多功能的合成策略还用于获得另外两种天然类似物,即(4)-lachnophyllum 内酯()和(4,8)-matricaria 内酯(),它们在大多数情况下表现出相同的抑制趋势,略有差异,突出了立体化学和侧链不饱和的重要性。此外,所有化合物在 1 mM 时均显示出抗真菌活性,降低了橄榄油病原体 的菌丝生长。在克级规模上设计和实施可扩展和可调节的全合成炔基呋喃酮,可以生产大量这些天然产物,克服了从天然来源分离所带来的限制。本研究的结果为开发具有生态友好性的仿生农药铺平了道路,这些农药可能作为合成农药的替代品应用于农业化学实践中。