In Vitro Antitrypanosomal Activity and Molecular Docking Studies of the Constituents of the Dichloromethane Fraction of Talbotiella Gentii Stem Bark
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University of Ghana
Abstract
Trypanosomiasis remains a major neglected tropical disease, with existing therapies limited by
toxicity, drug resistance, and poor accessibility in endemic regions, emphasizing the need for safer
chemotherapeutic agents from natural sources. This study investigated Talbotiella gentii Hutch. &
Greenway (Fabaceae-Detarioideae), a critically endangered Ghanaian plant traditionally used to
manage stomach disorders, to determine whether it contains phytoconstituents with
antitrypanosomal potential. The research was guided by the hypothesis that some of its bioactive
compounds possess antiparasitic properties capable of inhibiting key Trypanosoma brucei
enzymes. The dichloromethane (DCM) stem bark extract was subjected to chromatographic
separation and spectroscopic analysis, yielding three known compounds, friedelan-3-one
(friedelin), lup-20(29)-en-3β-ol (lupeol), and a sterol mixture containing stigmast-5-en-3β-ol (β
sitosterol) and (22E)-stigmasta-5,22-dien-3β-ol (stigmasterol), as well as a semi-synthetic
derivative, lup-20(29)-en-3β-yl acetate (lupeol acetate). In vitro assays on the isolates against
Trypanosoma brucei brucei using the Alamar Blue method revealed that lupeol acetate exhibited
the highest potency (IC50 = 2.9 µg/mL), followed by lupeol (IC50 = 3.5 µg/mL), the sterol mixture
(IC50 = 13.9 µg/mL), and friedelin (IC50 = 45.5 µg/mL), relative to diminazene aceturate (IC50 =
0.05 µg/mL). The docking results showed that all compounds demonstrated significant binding to
TbDHFR, with binding energies ranging from -10.8 to -8.7 kcal/mol, surpassing those of reference
inhibitors cycloguanil and pyrimethamine (-8.0 and -7.2 kcal/mol, respectively). Additionally, all
compounds displayed strong binding affinities for TbPTR1, with binding scores ranging from
11.2 to -9.0 kcal/mol, which were superior to the standard inhibitor. These results suggest that the
compounds may inhibit both enzymes, thereby contributing to their observed antitrypanosomal
activity by potential mechanisms of action through DHFR and PTR1 inhibition. These findings provide a scientific basis for the traditional use of T. gentii and constitute the first report on its
phytochemical and antitrypanosomal profile, highlighting lupeol and lupeol acetate as a promising
lead scaffolds. The results enhance understanding of triterpenoid and sterol structure–activity
relationships and underscore the potential of Fabaceae-derived metabolites as templates for
developing safer and affordable antitrypanosomal drugs.
Description
MPhil. Chemistry
