Studi Penambatan Molekuler Dan Uji Aktivitas Antiinflamasi Senyawa (E)-1-(3,4 Dihidroisokuinolin-2(1H)-Il)-3-Fenilprop-2-En-1-on Secara in Vivo Dengan Metode Induksi Karagenan Pada Mencit
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Fakultas Farmasi
Abstract
Inflammation is a physiological defense mechanism against tissue injury or
infection; however, excessive or prolonged inflammation may result in pathological
conditions. Although non-steroidal anti-inflammatory drugs (NSAIDs) are widely
used, their long-term application is associated with adverse effects. Therefore, the
development of safer anti-inflammatory agents remains necessary. This study
aimed to evaluate the anti-inflammatory activity of a cinnamic acid derivative
compound,
(E)-1-(3,4-dihydroisoquinolin-2(1H)-yl)-3-phenylprop-2-en-1-one
(3c), through molecular docking studies and in vivo testing. Molecular docking
analysis revealed that compound 3c exhibited better binding affinity toward the
COX-2 receptor (3LN1) compared to the positive control, while showing lower
potential on the LOX receptor (7LAF). Visualization of ligand–receptor
interactions demonstrated similarities with the reference drug, predominantly
involving hydrophobic, electrostatic, and π-sulfur interactions. The in vivo anti
inflammatory activity was assessed using a carrageenan-induced paw edema model
in male BALB/c mice. Animals were divided into five groups: negative control,
positive control (sodium diclofenac 3.25 mg/kg BW), and three treatment groups
receiving compound 3c at doses of 1.25, 2.5, and 5 mg/kg BW. Paw edema volume
was measured hourly for five hours, and the percentage of edema inhibition was
calculated. The results showed that compound 3c produced edema inhibition values
of 68.26%, 74.85%, and 76.08% at doses of 1.25, 2.5, and 5 mg/kg BW,
respectively, indicating a dose-dependent anti-inflammatory effect. These findings
suggest that compound 3c has promising potential as a selective COX-2 anti
inflammatory agent.
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Finalisasi 27 Juli 2026 Rudi H
