Evulation of Antimutagenic Activity of Ni(II) Complexes with Unsymmetric Schiff Bases
Abstract
In this work, Ni(II) complexes with unsymmetric Schiff bases (NiL1, NiL2, NiL3, NiL4) were prepared by a two-stage method reported by one of us recently for investigate antimutagenic properties. Sodium azide-induced antimutagenic effect in lymphocytes was determined by sister chromatid exchange (SCE) and micronucleus (MN) methods. It has been determined that the synthesized compounds have antimutagenic properties and reduce the mutagenicity caused by sodium azide (NaN3) which is used as a positive control.
Keywords
References
- [1] C. M. da Silva, D. L. da Silva, L.V. Modolo, R. B. Alves, M. A. de Resende, C. V. B. Martins and A. de Fatima, ‘‘Schiff bases: A short review of their antimicrobial activities,’’ Journal of Advanced Research, vol. 2, pp. 1-8, 2011.
- [2] B. Katarzyna and E. L. Chruscınska, ‘‘Schiff bases-interesting range of applications in various fields of science,’’ Chemik International, vol. 68, no. 2, pp. 129-138, 2014.
- [3] A. K. Gupta and R. Pal, ‘‘Dehydroacetic acid based Schiff’s bases and their metal complexes: A review,’’ World Journal of Pharmaceutical Sciences, vol. 4, no. 1, pp. 386-425, 2015.
- [4] S. Kumar, D. N. Dhar and P. N. Saxena, ‘‘Applications of metal complexes of Schiff bases-a review,’’ Journal of Scientific and Industrial Research, vol. 68, no. 3, pp. 181-187, 2009.
- [5] P. Anand, V. M. Patil, V. K. Sharma, R. L. Khosa and N. Masand, ‘‘Schiff bases: A review on biological insights,’’ International Journal of Drug Discovery and Development, vol. 3, no. 3, pp. 851-868, 2012. [6] O. A. M. Ali, S. M. El-Medani, M. R. A. Serea and A. S. Sayed, ‘‘Unsymmetrical Schiff base (ON) ligand on complexation with some transition metal ions: Synthesis, spectral characterization, antibacterial, fluorescence and thermal studies,’’ Spectrochimica Acta, Part A: Molecular and Biomolecular Spectroscopy, vol. 136, pp. 651-660, 2015.
- [7] K. Turhan, S. A. Ozturkcan, Z. Turgut, M. Karadayi and M. Gulluce, ‘‘Protective properties of five newly synthesized cyclic compounds against sodium azide and N-methyl-N0-nitroN-nitrosoguanidine genotoxicity,’’ Toxicology and Industrial Health, vol. 28, no. 7, pp. 605-613, 2012.
- [8] N. Sarı, N. Pişkin, H. Öğütcü and N. K. Yetim, ‘‘Spectroscopic characterization of novel d-aminoacid-Schiff bases and their Cr(III) and Ni(II) complexes as antimicrobial agents,’’ Medicinal Chemistry Research, vol. 22, no. 2, pp. 580-587, 2012.
- [9] S. Meghdadi, M. Amirnasr, M. Majedi, M. Bagheri, A. Amiri, S. Abbasi and K. Mereiter, ‘‘Template synthesis, and X-ray crystal structures of copper(II) and nickel(II) complexes of new unsymmetrical tetradentate Schiff base ligands. Electrochemistry, antibacterial properties, and metal ion effect on hydrolysis-recondensation of the ligand,’’ Inorganica Chimica Acta, vol. 437, pp. 64-69, 2015.
- [10] M. Kalita, K. J. Tamuli, P. Barman, B. Sarma, R. Baruah, H. P. D. Boruah, ‘‘Synthesis, crystal structure, bioactivities of Ni(II), Cu(II), Co(II) and Pd(II) complexes with unsymmetrical thioether donor Schiff base: Phosphine free Pd(II) complex catalyzed Suzuki reaction,’’ Polyhedron, vol. 97, pp. 140-147, 2015.
- [11] D. Nartop, P. Gürkan, N. Sarı and S. Çete, ‘‘Tetradentate asymmetric Schiff bases and their Ni(II) and Fe(III) complexes,’’ Journal of Coordination Chemistry, vol. 61, no. 21, pp. 3516-3524, 2008.