MATHEMATICAL MODEL FOR THE ORAL INTAKE OF ARTEMETHER DRUGS THROUGH GASTROINTESTINAL TRACT AND BLOODSTREAM AS COMPARTMENTS
Keywords:
Laplace transformation, eigenvalues, drug concentrationAbstract
Malaria remains one of the leading causes of morbidity and mortality across Africa,
particularly in Nigeria, where it continues to constitute a major public health challenge
despite sustained control efforts. Consequently, optimizing antimalarial drug therapy remains
a critical priority. Artemether is one of the most widely prescribed artemisinin-based
antimalarial drugs for the treatment of uncomplicated malaria due to its rapid therapeutic
action. Following oral administration, Artemether is absorbed through the gastrointestinal
tract, enters the systemic circulation, undergoes metabolism, is distributed to body tissues,
and is eventually eliminated from the body. In this study, the pharmacokinetic processes of
Artemether, namely absorption, metabolism, distribution, and elimination (ADME), were
represented using a simplified two-compartment model consisting of the gastrointestinal
tract and bloodstream compartments. A system of linear ordinary differential equations
describing the transfer of the drug between these compartments was formulated to
characterize the temporal variation in drug concentration. The resulting mathematical model
was solved analytically using the Laplace transformation technique to obtain explicit
expressions for drug concentration profiles in both compartments. Numerical simulations of
the analytical solutions were performed using MATLAB R2018b to investigate the
pharmacokinetic behaviour of Artemether over time. Simulation results demonstrate that the
concentration of Artemether in both the gastrointestinal tract and bloodstream is directly
proportional to the absorption rate constants governing drug transfer between the
compartments. Conversely, drug concentration decreases progressively with increasing time,
reflecting the combined effects of distribution, metabolism, and elimination. The developed
model provides a simple yet effective mathematical framework for describing Artemether
pharmacokinetics and offers a useful foundation for pharmacokinetic analysis, dosage
optimization, and future studies involving more complex multicompartment drug delivery
systems.
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