ABSTRACT Endophytic fungi represent a prolific and chemically diverse source of novel specialized metabolites with significant pharmacological potential. This systematic review examines 118 studies published between 2024 and 2025, reporting the discovery of 242 previously uncharacterized bioactive compounds. These metabolites belong to several major chemical classes, including peptides (4), terpenoids and steroids (58), alkaloids and other nitrogen‐containing compounds (51), polyketides (85), lactones (22), ketones (5), chromone compounds (3), and others (9). The genera Aspergillus (28), Penicillium (21), Diaporthe (7), Talaromyces (10), and Trichoderma (6) were identified as the most productive sources. The investigated endophytic fungi were isolated from a wide range of plant hosts and ecological niches, reflecting the extensive biodiversity of endophytic communities. Biological screening demonstrated that a substantial proportion of the tested compounds exhibited diverse bioactivities, including anti‐inflammatory, antibacterial, antifungal, antimicroalgal, and cytotoxic effects. Collectively, the remarkable structural diversity and broad biological profiles of metabolites derived from endophytic fungi highlight their strong potential as promising lead scaffolds for future pharmaceutical development.
D. Murodullayev, Jakhongir Movlanov, Liu Wei et al.· Chemistry and Biodiversity· 0 citations
Abstract The global rise in antibiotic resistance has increased the demand for new natural antibacterial agents derived from microorganisms. This study aimed to isolate and characterize antibacterial metabolites produced by the micromycete Trichoderma asperellum Uz-A4 The strain was cultivated under controlled conditions, and bioactive metabolites were extracted from the culture broth using ethyl acetate. The crude extract and purified fractions were evaluated for antibacterial and anticandidal activities against clinical test strains. Structural identification of the active metabolites was carried out through a combination of GC–MS, LC–MS, NMR, FTIR, and XRD analyses. Several bioactive compounds, including trimethoprim-like metabolite, palmitoleic acid, and D-mannitol, were identified, confirming the fungal origin of these clinically significant molecules. The results demonstrate that T. asperellum Uz-A4 is a promising source of pharmacologically relevant antibacterial metabolites with potential applications in drug discovery and microbial control.
H. Karimov, A. Inkhonova, N. Azimova et al.· Brazilian Journal of Biology· 0 citations
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