Design and synthesis of new bis(1,2,4-triazolo[3,4- b ][1,3,4]thiadiazines) and bis((quinoxalin-2-yl)phenoxy)alkanes as anti-breast cancer agents through dual PARP-1 and EGFR targets inhibition.
Fatma M ThabetKamal M DawoodEman A RagabMohamed S NafieAshraf A AbbasPublished in: RSC advances (2022)
A number of new 1,ω-bis((acetylphenoxy)acetamide)alkanes 5a-f were prepared then their bromination using NBS furnished the novel bis(2-bromoacetyl)phenoxy)acetamides 6a-f. Reaction of 6a-f with 4-amino-5-substituted-4 H -1,2,4-triazole-3-thiol 7a-d and with o -phenylenediamine derivatives 9a and b afforded the corresponding bis(1,2,4-triazolo[3,4- b ][1,3,4]thiadiazine) derivatives 8a-l and bis(quinoxaline) derivatives 10a-e in good yields. The cytotoxicity of the synthesized compounds as well as apoptosis induction through PARP-1 and EGFR as molecular targets was evaluated. Three compounds, 8d, 8i and 8l, exhibited much better cytotoxic activities against MDA-MB-231 than the drug Erlotinib. Interestingly, compound 8i induced apoptosis in MDA-MB-231 cells by 38-fold compared to the control arresting the cell cycle at the G2/M phase, and its treatment upregulated P53, Bax, caspase-3, caspase-8, and caspase-9 gene levels, while it downregulated the Bcl2 level. Compound 8i exhibited promising dual enzyme inhibition of PARP-1 (IC 50 = 1.37 nM) compared to Olaparib (IC 50 = 1.49 nM), and EGFR (IC 50 = 64.65 nM) compared to Erlotinib (IC 50 = 80 nM). These results agreed with the molecular docking studies that highlighted the binding disposition of compound 8i inside the PARP-1 and EGFR protein active sites. Hence, compound 8i may serve as a potential anti-breast cancer agent.
Keyphrases
- induced apoptosis
- endoplasmic reticulum stress
- epidermal growth factor receptor
- oxidative stress
- molecular docking
- ionic liquid
- small cell lung cancer
- dna damage
- cell cycle
- signaling pathway
- tyrosine kinase
- cell cycle arrest
- dna repair
- cell death
- photodynamic therapy
- advanced non small cell lung cancer
- cell proliferation
- molecular dynamics simulations
- dna methylation
- pi k akt
- climate change
- gene expression
- genome wide
- small molecule
- human health
- drug induced