IN VIVO IN VITRO ANTI-PLASMODIAL ACTIVITY OF CHEMICALLY SYNTHESISED IMIDAZOLE COMPOUNDS
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Date
2026-09
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Publisher
Covenant University, Ota
Abstract
Malaria remains a leading cause of morbidity and mortality globally, with the continued
emergence of Plasmodium falciparum resistance to artemisinin-based therapies rendering the
identification of novel chemotherapeutic scaffolds an urgent priority. The imidazole family of
compounds, with their adaptable framework and ability to engage parasite-specific targets such as
falcipain-2 and hemozoin biosynthesis machinery, represent compelling synthetic leads. This
study evaluates the in vitro anti-plasmodial activity and in vivo efficacy and safety profiles of two
newly synthesised compounds: 4,5-diphenyl-2-(m-tolyl)-1H-imidazole (IM1) and 4,5-diphenyl-2-
(m-tolyl)-1-tosyl-1H-imidazole (IM2). In vitro susceptibility was assessed using a schizont
maturation inhibition assay against the chloroquine-sensitive P. falciparum 3D7 strain. In vivo
evaluation employed Peter's 4-d suppressive test in P. berghei ANKA-infected Swiss albino mice
administered oral doses of 20–400 mg/kg. Acute toxicity was assessed according to the OECD
423 guidelines through haematological, biochemical, oxidative stress, and histopathological
analyses. In vitro, IM1 demonstrated higher intrinsic potency, exhibiting a half-maximal inhibitory
concentration (IC50) of 3.6 ± 0.2 μg/mL compared to 7.8 ± 0.5 μg/mL for IM2. However, in vivo
evaluation revealed a distinct efficacy paradox: IM2 demonstrated superior systemic efficacy,
achieving up to 68% parasitaemia suppression at 400 mg/kg, surpassing the 52% suppression
observed with IM1. IM2 also significantly extended the mean survival time of infected mice to
12.3 d, compared with 8.1 d for untreated controls. Systemically, IM2 maintained physiological
homeostasis, preserved hepatic and renal architecture, and induced significant modulation and
stabilization of circulating lymphocytes (p=0.049), compared with the abnormal increase observed
in untreated infections. A strong positive correlation between malondialdehyde and glutathione
(r=0.839, p=0.005) indicated a well-tolerated, reactive oxygen species-mediated parasiticidal
mechanism for IM2. On the other hand, high-dose IM1 (400 mg/kg) induced dose-dependent
hepatotoxicity, as evidenced by elevated alanine aminotransferase (44.47 U/L) and
histopathological evidence of hepatocyte vacuolation. Ultimately, whilst IM1's highly lipophilic
core necessitates structural optimization to mitigate hepatic stress, IM2 represents a promising lead
compound that requires further pre-clinical investigations.
Description
Keywords
Plasmodium falciparum, In vivo, In vitro, Resistance, Anti-plasmodial activity, Imidazole derivatives.