4.7 Article

Streptochlorin analogues as potential antifungal agents: Design, synthesis, antifungal activity and molecular docking study

期刊

BIOORGANIC & MEDICINAL CHEMISTRY
卷 35, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.bmc.2021.116073

关键词

Natural products; Streptochlorin; Imidazole; Antifungal activity; Molecular docking

资金

  1. National Natural Science Foundation of China [32061143045]
  2. Fundamental Research Funds and for the Central Universities [KYLH201908]
  3. Jiangsu Provincial Science Foundation for Youths [BK20160734]
  4. Anhui Key Research and Development Program [201904b11020025]
  5. Bayer Grants4 Ag Initiative

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This paper focused on replacing the oxazole ring in streptochlorin with the imidazole ring to discover novel analogues, leading to the efficient synthesis of three series of streptochlorin analogues through sequential reactions. Some of the analogues displayed excellent antifungal activity in primary assays, with compounds 4g and 4i showing even more potency than streptochlorin against phytopathogens.
Streptochlorin is a small molecule of indole alkaloid isolated from marine Streptomyces sp., it is a promising lead compound due to its potent bioactivity in preventing many phytopathogens in our previous study, but further structural modifications are required to improve its antifungal activity. Our work in this paper focused on the replacement of oxazole ring in streptochlorin with the imidazole ring, to discover novel analogues. Based on this design strategy, three series of streptochlorin analogues were efficiently synthesized through sequential Vilsmeier-Haack reaction, Van Leusen imidazole synthesis and halogenation reaction. Some of the analogues displayed excellent activity in the primary assays, and this is highlighted by compounds 4g and 4i, the growth inhibition against Alternaria Leaf Spot and Rhizoctorzia solani under 50 ?g/mL are 97.5% and 90.3%, respectively, even more active than those of streptochlorin, pimprinine and Osthole. Molecular docking models indicated that streptochlorin binds with Thermus thermophiles Leucyl-tRNA Synthetase in a similar mode to AN2690, offering a perspective on the mode of action study for antifungal activities of streptochlorin derivatives. Further study is still ongoing with the aim of discovering synthetic analogues, with improved antifungal activity and clear mode of action.

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