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1.
Front Pharmacol ; 13: 1028692, 2022.
Article in English | MEDLINE | ID: mdl-36467103

ABSTRACT

Previous report showed that a variety of icotinib derivatives bearing different 1,2,3-triazole moieties, which could be readily prepared via copper (I)-catalyzed cycloaddition (CuAAC) reaction between icotinib and different azides, exhibited interesting activity against different lung cancer cell lines such as H460, H1975, H1299, A549 or PC-9. To further expand the application scope of the compounds and to validate the function of triazole groups in drug design, the anti-cancer activity of these compounds against esophageal squamous carcinoma (ESCC) cells was tested herein. Preliminary MTT experiments suggested that these compounds were active against different ESCC cell lines such as KYSE70, KYSE410, or KYSE450 as well as their drug-resistant ones. Especially, compound 3l showed interesting anticancer activity against these cell lines. The mode of action was studied via molecular docking, SPR experiments and other biochemical studies, and 3l exhibited higher binding potential to wild-type EGFR than icotinib did. In vivo anticancer study showed that 3l could inhibit tumor growth of cell-line-derived xenografts in ESCC. Study also suggested that 3l was a potent inhibitor for EGFR-TK pathway. Combining these results, 3l represents a promising lead compound for the design of anti-cancer drugs against ESCC.

2.
Acta Pharmacol Sin ; 42(7): 1101-1110, 2021 Jul.
Article in English | MEDLINE | ID: mdl-33028983

ABSTRACT

Alcoholic liver disease (ALD) is one of the pathogenic factors of chronic liver disease with the highest clinical morbidity worldwide. Ursolic acid (UA), a pentacyclic terpenoid carboxylic acid, has shown many health benefits including antioxidative, anti-inflammatory, anticancer, and hepatoprotective activities. We previously found that UA was metabolized in vivo into epoxy-modified UA containing an epoxy electrophilic group and had the potential to react with nucleophilic groups. In this study we prepared an alkynyl-modified UA (AM-UA) probe for tracing and capturing the target protein of UA from liver in mice, then investigated the mode by which UA bound to its target in vivo. By conducting proteome identification and bioinformatics analysis, we identified caspase-3 (CASP3) as the primary target protein of UA associated with liver protection. Molecule docking analysis showed that the epoxy group of the UA metabolite reacted with Cys-163 of CASP3, forming a covalent bond with CASP3. The binding mode of the UA metabolites (UA, CM-UA, and EM-UA) was verified by biochemical evaluation, demonstrating that the epoxy group produced by metabolism played an important role in the inhibition of CASP3. In alcohol-treated HepG2 cells, pretreatment with the UA metabolite (10 µM) irreversibly inhibited CASP3 activities, and subsequently decreased the cleavage of PARP and cell apoptosis. Finally, pre-administration of UA (20-80 mg· kg-1 per day, ig, for 1 week) dose-dependently alleviated alcohol-induced liver injury in mice mainly via the inhibition of CASP3. In conclusion, this study demonstrates that UA is a valuable lead compound for the treatment of ALD.


Subject(s)
Apoptosis/drug effects , Caspase 3/metabolism , Caspase Inhibitors/therapeutic use , Liver Diseases, Alcoholic/drug therapy , Liver/drug effects , Triterpenes/therapeutic use , Amino Acid Sequence , Animals , Caspase 3/chemistry , Caspase Inhibitors/metabolism , Cysteine/chemistry , Epoxy Compounds/chemistry , Epoxy Compounds/therapeutic use , Hep G2 Cells , Hepatocytes/drug effects , Humans , Liver/enzymology , Liver/pathology , Liver Diseases, Alcoholic/enzymology , Liver Diseases, Alcoholic/pathology , Male , Mice , Molecular Docking Simulation , Poly(ADP-ribose) Polymerases/metabolism , Protein Binding , Sequence Alignment , Triterpenes/metabolism , Ursolic Acid
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