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Design, synthesis and biological activity studies on aryloxy benzamide derivatives with potential inhibitory effect against sirtuin

2021
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Advisor: Prof. Dr. Gökçen Eren

Abstract (EN)

Sirtuins (SIRTs) are a class of nicotinamide adenine dinucleotide (NAD+)-dependent protein histone deacetylases (HDACs) that are evolutionarily conserved from bacteria to mammals. This group of enzymes catalyses the reversible deacetylation of lysine residues in the histones or non-histone substrates using NAD+ as a cosubstrate. Numerous studies have demonstrated that the aberrant enzymatic activity of SIRTs has been linked to various diseases like diabetes, cancer, and neurodegenerative disorders. Previously, we performed a pharmacophore-based virtual screening campaign and an aryloxybenzamide derivative displaying SIRT1/2 inhibitory effect was identified as a hit compound (inh%, SIRT1: 31,45%; SIRT2: 42,47% @300 μM). In the current study, the hit-to-lead optimization on the hit compound was explored in order to improve the SIRT inhibition. Fourteen compounds, ten of which were new, have been synthesized and subjected to in vitro biological evaluation for their inhibitory activity against SIRT1-3. By the structural modifications performed, a significant improvement was observed in selective SIRT1 inhibition for GS01, GS02, and GS11 (inh%, SIRT1: 56,53%, 48,15%, 46,04%; SIRT2: 10,80%, no inhibition, no inhibition @100 μM, respectively). Moreover, the highest SIRT2 inhibitory activity was observed for GS14 (inh%, SIRT1: 47,16%; SIRT2: 51,61% @100 μM). Furthermore, GS01, GS02, GS11, and GS14 were subjected to in vitro cytotoxicity assay against MCF-7 human breast cancer cell line to determine the influence of the improvement in SIRT1/2 inhibition along with the structural modifications on the cytotoxic properties of the compounds. The cytotoxicity of the compounds was found to be correlated with their SIRT inhibitory profiles. Overall, the compounds with more potent and selective SIRT inhibition compared to that of the hit compound were obtained.

Author

Dr. Semih Yağcı

How to Cite

Semih Yağcı (Master Thesis). Design, synthesis and biological activity studies on aryloxy benzamide derivatives with potential inhibitory effect against sirtuin, 2021, Gazi University.

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