Title of article :
Design, Synthesis and Biological Evaluation of Novel Piperazinone Derivatives as Cytotoxic Agents
Author/Authors :
Ghasemi, Saeed Department of Medicinal Chemistry - School of Pharmacy - Guilan University of Medical Sciences, Rasht , Sharifi, Simin Dental and Periodontal Research Center - Tabriz University of Medical Sciences , Shahbazi Mojarrad, Javid Department of Medicinal Chemistry - Faculty of Pharmacy - Tabriz University of Medical Sciences
Abstract :
Purpose: In this study, a series of piperazin-2-one derivatives were prepared through bioisosteric
substitution of the imidazole ring of L-778,123 (imidazole-containing FTase inhibitor) and
rearrangement of groups based on the tipifarnib structure. Final compounds were evaluated for
their cytotoxic activities on cancer and normal cell lines by MTT assay.
Methods: Methyl α-bromophenylacetic acid and 1-(3-chlorophenyl) piperazin-2-one
were synthesized using previously described methods. Methyl 2-(4-chlorophenyl)-2-(4-(3-
chlorophenyl)-3-oxopiperazin-1-yl) acetate was prepared by reaction between these two
compounds in presence of potassium carbonate. Finally, methoxy group of ester was substituted
by various amines such as guanidine, thiourea, urea and hydrazide. The synthesized compounds
were tested for their cytotoxicity against colon cancer (HT-29) and lung cancer (A549) cell
lines as well as MRC-5 (normal fetal lung fibroblasts) cells as a healthy cell line using MTT
colorimetric assay method.
Results: Replacement of imidazole moiety with guanidine, thiourea, and hydrazide could
increase cytotoxicity toward all three cell lines. Some substituents, such as amine, urea, and
hydroxylamine exhibited significant cytotoxicity (<500 μM) but lower than L-778,123 as
standard compound. Hydroxyl and methoxy substituents did not show significant cytotoxicity.
Imidazole substituent group revealed cytotoxicity similar to L-778,123 All compounds showed
lower cytotoxic activity against normal cell lines compared with cancer cell lines.
Conclusion: It seems the electron density of substituted groups and rearrangement of groups
may significantly increase cytotoxic activity.
Keywords :
Anticancer activity , Bioisosteric replacement , Piperazinone , Chemical synthesis
Journal title :
Advanced Pharmaceutical Bulletin