Key Laboratory for Enzyme and Enzyme-Like Material Engineering of Heilongjiang, College of Life Science, Northeast Forestry University, Harbin 150040, China; Shaanxi Key Laboratory of Natural Products & Chemical Biology, College of Chemistry & Pharmacy, Northwest A&F University, Yangling 712100, China.
Faculty of Agriculture, Shizuoka University, Shizuoka 422-8529, Japan.
Chin J Nat Med. 2024 Aug;22(8):676-698. doi: 10.1016/S1875-5364(24)60590-X.
Fungal phytochemicals derived from higher fungi, particularly those from the culinary-medicinal genus Hericium, have gained significant attention in drug discovery and healthcare. This review aims to provide a comprehensive analysis of the chemical structures, biosynthetic pathways, biological activities, and pharmacological properties of monomeric compounds isolated from Hericium species. Over the past 34 years, 253 metabolites have been identified from various Hericium species, including cyathane diterpenes, alkaloids, benzofurans, chromenes, phenols, pyrones, steroids, and other miscellaneous compounds. Detailed investigations into the biosynthesis of erinacines, a type of cyathane diterpene, have led to the discovery of novel cyathane diterpenes. Extensive research has highlighted the biological activities and pharmacological properties of Hericium-derived compounds, with particular emphasis on their neuroprotective and neurotrophic effects, immunomodulatory capabilities, anti-cancer activity, antioxidant properties, and antimicrobial actions. Erinacine A, in particular, has been extensively studied. Genomic, transcriptomic, and proteomic analyses of Hericium species have facilitated the discovery of new compounds and provided insights into enzymatic reactions through genome mining. The diverse chemical structures and biological activities of Hericium compounds underpin their potential applications in medicine and as dietary supplements. This review not only advances our understanding of Hericium compounds but also encourages further research into Hericium species within the realms of medicine, health, functional foods, and agricultural microbiology. The broad spectrum of compound types and their diverse biological activities present promising opportunities for the development of new pharmaceuticals and edible products.
真菌植物化学物质来源于高等真菌,特别是来自烹饪药用属猴头菇的真菌,在药物发现和保健方面引起了广泛关注。本综述旨在对从猴头菇属物种中分离得到的单体化合物的化学结构、生物合成途径、生物活性和药理学特性进行全面分析。在过去的 34 年中,从各种猴头菇属物种中已经鉴定出 253 种代谢产物,包括杯烷二萜、生物碱、苯并呋喃、色烯、酚类、吡喃酮、甾体和其他杂类化合物。对鹅膏蕈氨酸(一种杯烷二萜)生物合成的详细研究导致了新型杯烷二萜的发现。广泛的研究强调了猴头菇衍生化合物的生物活性和药理学特性,特别是它们的神经保护和神经营养作用、免疫调节能力、抗癌活性、抗氧化特性和抗菌作用。特别是鹅膏蕈氨酸 A 受到了广泛的研究。猴头菇属物种的基因组、转录组和蛋白质组分析通过基因组挖掘促进了新化合物的发现,并为酶反应提供了深入了解。猴头菇化合物的多样化化学结构和生物活性为它们在医学和作为膳食补充剂的应用提供了潜力。本综述不仅提高了我们对猴头菇化合物的认识,而且鼓励在医学、健康、功能性食品和农业微生物学领域进一步研究猴头菇属物种。化合物类型的广泛多样性和它们多样化的生物活性为开发新的药物和可食用产品提供了有希望的机会。