DOI: 10.3390/molecules31162859 ISSN: 1420-3049

Chemical Annotation and Biological Evaluation of Prenylated Benzophenone-Rich Fractions from Clusia grandiflora Fruits: Integrated In Vitro and In Silico Analyses of Antileishmanial Activity, Nitric Oxide Modulation, and Stage-Dependent Cell Death Ph

Amanda de Jesus Alves Miranda, Caroline Martins de Jesus, Kassandra Gómez Valenzuela, José Alberto Pérez Burgos, Samuel dos Santos Soares Buna, Lívia Maria Martins Carvalho, Lucas Cardoso Marinho, José de Sousa Lima Neto, Marcelo José Dias Silva, Alberto Jorge Oliveira Lopes, Lucilene Amorim Silva, Luisa Alondra Rascón Valenzuela, Cláudia Quintino da Rocha

Clusia grandiflora Splitg. (Clusiaceae), popularly known as “cebolão” or “orelha-de-onça”, is a Neotropical species recognized as a rich source of bioactive secondary metabolites, particularly prenylated benzophenones. This study investigated the chemical composition and antileishmanial potential of the ethanolic extract (EBCG), dichloromethane fraction (FDCG), and hexane fraction (FHex) obtained from C. grandiflora fruits. Chemical profiling by HPLC-ESI-IT-MS/MS revealed a metabolome dominated by prenylated benzophenones, terpenes, and flavonols. Biological evaluation included activity against promastigote and axenic amastigote forms of Leishmania (L.) amazonensis, cytotoxicity toward RAW 264.7 macrophages, assessment of cell death phenotypes, nitric oxide (NO) production, and molecular docking against Leishmania infantum trypanothione reductase (TRLi). FDCG and FHex exhibited moderate activity against promastigotes (IC50 = 20.34 and 85.86 µg mL−1, respectively), whereas EBCG was inactive. FHex showed the highest activity against axenic amastigotes (IC50 = 7.0 µg mL−1), while EBCG and FDCG displayed moderate activity (IC50 = 15.92 and 26.43 µg mL−1, respectively). Cell death occurred predominantly through a necrosis-like phenotype in promastigotes and an apoptosis-like phenotype in axenic amastigotes, and all samples significantly reduced NO production. Molecular docking indicated that several putatively annotated metabolites from C. grandiflora can be favorably accommodated within the TS2 substrate-binding cavity of Leishmania infantum trypanothione reductase (TRLi). Garcinielliptone I and Guttiferone E exhibited the most favorable predicted binding affinities, whereas xanthocymol displayed an interaction pattern involving the catalytic residues Cys52 and Cys57. These findings highlight selected putatively annotated metabolites as promising candidates for future biochemical investigation. Overall, these findings highlight C. grandiflora fruits as a promising, previously underexplored source of prenylated benzophenones with antileishmanial activity and the ability to reduce nitric oxide production in LPS-stimulated RAW 264.7 macrophages.

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