Morphological and in vitro evaluation of programmed cell death in MCF-7 cells by new organoruthenium(ii) complexes?
New Journal of Chemistry Pub Date: 2017-07-03 DOI: 10.1039/C7NJ01707C
Abstract
Cyclopentadienyl ruthenium(II) thiosemicarbazone complexes with the general formula [Ru(η5-C5H5)(Ac-tsc)PPh3]·Cl (1), [Ru(η5-C5H5)(Ac-mtsc)PPh3]·Cl (2), [Ru(η5-C5H5)(Ac-etsc)PPh3]·Cl (3) and [Ru(η5-C5H5)(Ac-ptsc)PPh3] (4) were synthesized and characterized by various spectroscopic techniques (1H NMR, 13C NMR, IR and UV-vis). The molecular structures of the representative complexes 2 and 4 were studied by single-crystal X-ray diffraction. The interactions of all the ligands and complexes with calf thymus DNA (CT-DNA) and bovine serum albumin (BSA) were studied using UV-vis and fluorescence emission spectroscopy. The results of binding studies revealed that the effective binding potentials of the complexes were higher than those of their parent ligands. All the new complexes 1–4 were investigated for their in vitro cytotoxic activity against MCF-7 human breast cancer cell line. All the complexes significantly inhibited cell proliferation in MCF-7 cells in a dose-dependent manner. Cytological observations via an inverted phase contrast microscope and a Hoechst 33342/PI dual-staining assay showed typical apoptotic morphology of cancer cells upon treatment with complexes 2 and 3. It can thus be suggested that the complexes 2 and 3 are modulated by apoptosis. The findings of the present study indicated that complexes 2 and 3 may become potent drugs for the treatment of cancer-related diseases only after further investigation.
Recommended Literature
- [1] Evolution of hierarchical porous structures in supramolecular guest–host hydrogels? Christopher B. Rodell,Christopher B. Highley,Minna H. Chen,Neville N. Dusaj,Chao Wang,Lin Han,Jason A. BurdickSoft Matter, 2016,12, 7839-7847 10.1039/C6SM01395C
- [2] Evidence for the intrinsic nature of band-gap states electrochemically observed on atomically flat TiO2(110) surfaces? Shintaro Takata,Yoshihiro MiuraPhys. Chem. Chem. Phys., 2014,16, 24784-24789 10.1039/C4CP03280B
- [3] Enantiomeric helical TiO2 nanofibers modulate different peptide assemblies and subsequent cellular behaviors? Xu Jie,Deng Xu,Weili WeiRSC Adv., 2019,9, 29149-29153 10.1039/C9RA04660G
- [4] Emulsifier-free, organotellurium-mediated living radical emulsion polymerization (emulsion TERP) of styrene: poly(dimethylaminoethyl methacrylate) macro-TERP agent? Yukiya KitayamaPolym. Chem., 2014,5, 2784-2792 10.1039/C3PY01539D
- [5] Distinct impact of glycation towards the aggregation and toxicity of murine and human amyloid-β? Eunju Nam,Jiyeon Han,Sunhee Choi,Mi Hee LimChem. Commun., 2021,57, 7637-7640 10.1039/D1CC02695J
- [6] Enabling non-flammable Li-metal batteries via electrolyte functionalization and interface engineering? Jing Yu,Yu-Qi Lyu,Jiapeng Liu,Mohammed B. Effat,Junxiong WuJ. Mater. Chem. A, 2019,7, 17995-18002 10.1039/C9TA03784E
- [7] Emulsion technologies for multicellular tumour spheroid radiation assays? Kay S. McMillan,Anthony G. McCluskey,Annette Sorensen,Marie Boyd,Michele ZagnoniAnalyst, 2016,141, 100-110 10.1039/C5AN01382H
- [8] Distinct correlation between (CN2)x units and pores: a low-cost method for predesigned wide range control of micropore size of porous carbon? Xiaotong Feng,Lei Bian,Jie Ma,Lei Zhou,Xiayan Wang,Guangsheng Guo,Qiaosheng PuChem. Commun., 2019,55, 3963-3966 10.1039/C9CC01213C
- [9] EWOD-driven droplet microfluidic device integrated with optoelectronic tweezers as an automated platform for cellular isolation and analysis? Gaurav J. Shah,Eric P.-Y. Chiou,Ming C. Wu,Chang-Jin “CJ” KimLab Chip, 2009,9, 1732-1739 10.1039/B821508A
- [10] Dissolution of cork biopolymers in biocompatible ionic liquids Helga Garcia,Rui Ferreira,Marija Petkovic,Jamie L. Ferguson,Maria C. Leit?o,H. Q. Nimal Gunaratne,Luís Paulo N. RebeloGreen Chem., 2010,12, 367-369 10.1039/B922553F
Journal Name:New Journal of Chemistry
research_products
-
CAS no.: 89640-58-4