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Research Articles

Synthesis, biological–pharmacological evaluation and molecular docking studies of Schiff base analogues of transition metal (II) complexes of 4-amino-1,5-dimethyl-2-phenylpyrazol-3-one

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Pages 13482-13496 | Received 04 Aug 2021, Accepted 29 Sep 2021, Published online: 18 Oct 2021

References

  • Agarwal, M. (2013). Journal of International Pharmaceutical Research & Bio Sciences, 2, 258–263.
  • Al-Amery, M. H A., & Mal-Sahlanee, T. Q. (2019). Research Journal of Chemistry & Environment, 23, 200–227.
  • Albertini, R., Capacchi, S., Ferrari, M. B., Pelosi, G., Raffo, G., & Tarasconi, P. (1999). Inorganic Chemistry Acta, 286, 134–141.
  • Al-Shareefi, A. N., Kadhim, S. H., & Jawad, W. A. (2013). Journal of Applied Chemistry, 2, 438–446.
  • Alturiqi, A. S., Alaghaz, A. N. M. A., Ammar, R. A., & Zayed, M. E. (2018). Synthesis, spectral characterization, and thermal and cytotoxicity studies of Cr(III), Ru(III), Mn(II), Co(II), Ni(II), Cu(II), and Zn(II) complexes of Schiff base derived from 5-hydroxymethylfuran-2-carbaldehyde. Journal of Chemistry, 2018, 1–17. https://doi.org/10.1155/2018/5816906
  • Anjaneya Vasavi, G. S. S., Sreeramulu, J., & Subba Reddy, G. V. (2018). Spectral investigation of atomoxetine-2,4 di hydroxyl acetophenone with Cu(II) & Ru(II) metal complexes and biological activity. IJIPSR, 6, 67–77.
  • Bhattacharjee, S., Saravanan, J., Mohan, S., & Arrora, M. (2012). Synthesis, characterization and CNS depressant activity of some Schiff bases of 2-amino-N-(o-fluorophenylcarboxamido)-4-(p-methoxyphenyl) thiophenes. International Journal of Pharmacy & Pharmaceutical Science, 4, 528–532.
  • Boinapalli, S., & Abraham Lincoln, C. (2016). Synthesis, spectral characterization and antibacterial assay: Co(II) coordination compounds of 4-Aminoantipyrine based macrocyclic ligands. Research Journal of Chemical Sciences, 6, 35–47.
  • Boopathy, R. P. A., Sakthivel, B., & Chandramohan, K. (2018). International Journal of Chemistry & Technical Research, 11, 12–17.
  • Buldurun, K., Turan, N., Savcı, A., & Colak, N. (2019). Synthesis, structural characterization and biological activities of metal(II) complexes with Schiff bases derived from 5-bromosalicylaldehyde: Ru(II) complexes transfer hydrogenation. Journal of Saudi Chemical Society, 23(2), 205–214. https://doi.org/10.1016/j.jscs.2018.06.002
  • Chandra, S., Jain, D., Sharma, A. K., & Sharma, P. (2009). Coordination modes of a Schiff base pentadentate derivative of 4-aminoantipyrine with cobalt(II), nickel(II) and copper(II) metal ions: Synthesis, spectroscopic and antimicrobial studies. Molecules (Basel, Switzerland), 14(1), 174–190. https://doi.org/10.3390/molecules14010174
  • Chandran, R., & Arul Antony, S. (2014). Synthesis and characterisation of bio-inorganic transition metal complexes derived from novel biginelli adduct coupled Schiff’s bases. IJPSR, 5, 4339–4350.
  • Chinnasamy, R. P., Sundararajan, R., & Govindaraj, S. (2010). Synthesis, characterization, and analgesic activity of novel Schiff base of isatin derivatives. Journal of Advanced Pharmaceutical Technology & Research, 1(3), 342. https://doi.org/10.4103/0110-5558.72428
  • Chohan, Z. H. (2001). Synthesis, characterization, and biological properties of bivalent transition metal complexes of Co(II), Cu(II), Ni(II), and Zn(II) with some acylhydrazine derived furanyl and thienyl ono and sno donor Schiff base ligands. Synthesis & Reactivity in Inorganic & Metal-Organic Chemistry, 31(1), 1–16. https://doi.org/10.1081/SIM-100001928
  • Dakore, S. D., Kamble, V. T., & Pisal, P. (2017). International Journal of Chemical Studies, 5, 110–113.
  • Dalha, U., Ahmad, A., Yahaya, S., & Kutama, I. U. (2021). Characterization of Ni (II) and Cd (II) metal complexes using Schiff base ligand derived from 2-thiophenecarboxyldehyde and 2 aminothiophenol, Eartline Journal of Chemical Sciences, 5, 275.
  • Dewangan, D., Nakhate, K. T., Verma, V. S., Nagori, K., & Krishna Tripathi, D. (2017). Synthesis and molecular Docking study of novel hybrids of 1,3,4-oxadiazoles and quinoxaline as a potential analgesic and anti-inflammatory agents. Journal of Heterocyclic Chemistry.
  • Goudgaon, N. M., & Reddy, R. Y. (2014). Analgesic and anti-inflammatory activities of 2-(4-fluorobenzylthio)-n-(substituted phenyl) pyrimidine-4-amines. IJPCBS, 4(1), 64–68.
  • Gupta, D., Pathak, D. P., Kapoor, G., & Bhutani, R. (2019). A comprehensive review on synthesis and biological activity of Schiff bases. International Research Journal of Pharmacy, 10(5), 1–8. https://doi.org/10.7897/2230-8407.1005153
  • Hayder Muneam, A. M., & Al-Amery, M. H. A. (2019). Journal of Pharmaceutical Science & Research, 11, 2051–2061.
  • Jain, R. K., & Mishra, A. P. (2012). Microwave synthesis, spectral, thermal, and antimicrobial activities of some transition metal complexes involving 5-bromosalicylaldehyde moiety. Current Chemistry Letters, 1(4), 163–174. https://doi.org/10.5267/j.ccl.2012.7.003
  • Jayakumarswamy, B. H. M., Rahaman, F., Revankar, V. K., & Vasantakumar, K. P. (2011). International Journal of Pharmacy & Technical Research, 3, 1864–1873.
  • Kadhim, S. H., Abd-Alla, I. Q., & Hashim, T. J. (2017). Synthesis and characteristic study of Co(II), Ni(II) and Cu(II) complexes of new Schiff base derived from 4-amino antipyrine. International Journal of Chemical Sciences, 15, 107.
  • Kafi-Ahmadi, L., & Shirmohammadzadeh, L. (2017). Synthesis of Co(II) and Cr(III) salicylidenic Schiff base complexes derived from thiourea as precursors for nano-sized Co3O4 and Cr2O3 and their catalytic, antibacterial properties. Journal of Nanostructure in Chemistry, 7(2), 179–190. https://doi.org/10.1007/s40097-017-0221-x
  • Kulandaisamy, A., Kavitha, T., Angaiarkanni, S., & Thillaiarasu, P. (2013). Synthesis and spectroscopic characterization of blue copper model Schiff base complexes, Chemical Science Transactions, 2(S1), S147-S152.
  • Kulandaisamy, A., Palanimurugan, A., Dhanalakshmi, A., & Selvapandian, P. (2019). Electrochemical behavior, structural, morphological, calf thymus–DNA interaction and in-vitro antimicrobial studies of synthesized Schiff base transition metal complexes. Heliyon, 5(7), e02039. https://doi.org/10.1016/j.heliyon.2019.e02039
  • Kumar, J., Rai, A., & Raj, V. (2017). A comprehensive review on the pharmacological activity of Schiff base containing derivatives, Organic and Medicinal Chemistry International Journal, 1, 1–15.
  • Maher, K. A., & Mohammed, S. R. (2015).Synthesis, characterization and crystal structure of cobalt(II) complex of a Schiff base derived from isoniazid and pyridine-4-carboxaldehyde, International Journal of Current Research & Review, 7, 6–16.
  • Mishra, A. P., Mishra, R. K., & Shrivastava, S. P. (2009). Structural and antimicrobial studies of coordination compounds of VO(II), Co(II), Ni(II) and Cu(II) with some Schiff bases involving 2-amino-4-chlorophenol. Journal of the Serbian Chemical Society, 74(5), 523–535. https://doi.org/10.2298/JSC0905523M
  • Mishra, A. P., Sharma, N., & Jain, R. K. (2012). Microwave synthesis, spectral, thermal and antimicrobial studies of some Ni(II) and Cu(II) Schiff base complexes. Avances en Química, 7, 77–85.
  • Mishra, A. P., Sharma, N., & Jain, R. K. (2013). Microwave synthesis, spectral, thermal and antimicrobial studies of some Ni(II) and Cu(II) Schiff base complexes. Open Journal of Synthesis Theory & Applications, 02(02), 56–62. https://doi.org/10.4236/ojsta.2013.22007
  • Mishra, A. P., Tiwari, A., & Jain, R. (2011). International Journal of Research & Pharmaceutical Sciences, 3, 186–191.
  • Mohanambal, D., & Arul Antony, S. (2014). Synthesis, Characterization and antimicrobial activity of some novel Schiff base 3d transition metal complexes derived from dihydropyrimidinone and 4-aminoantipyrine, Research Journal of Chemical Sciences, 4, 11–17.
  • Murtaza, S., Akhtar, M. S., Kanwal, F., Abbas, A., Ashiq, S., & Shamim, S. (2017). Synthesis and biological evaluation of Schiff bases of 4-aminophenazone as an anti-inflammatory, analgesic and antipyretic agent. Journal of Saudi Chemical Society, 21, S359–S372. https://doi.org/10.1016/j.jscs.2014.04.003
  • Nair, M. S., Arish, D., & Joseyphus, R. S. (2012). Synthesis, characterization, antifungal, antibacterial and DNA cleavage studies of some heterocyclic Schiff base metal complexes. Journal of Saudi Chemical Society, 16(1), 83–88. https://doi.org/10.1016/j.jscs.2010.11.002
  • Nizami, G., & Sayyed, R. (2017). Antimicrobial, electrochemical and thermodynamic studies of Schiff base complexes and their potential as anticarcinogenic and antitumor agents: a review, IOSR-JAC, 10, 40–51.
  • Öncü Can, N., Devrim Can, Ö., Osmaniye, D., & Özkay, Ü. D. (2018). Molecules, 23, 716.
  • Packianathan, S., Kumaravel, G., & Raman, N. (2016). DNA interaction, antimicrobial and molecular docking studies of biologically interesting Schiff base complexes incorporating 4-formyl- N , N -dimethylaniline and propylenediamine: DNA interaction, antimicrobial and molecular docking studies, Applied Organometal Chemistry, 1–14.
  • Pandey, A., Rajavel, R., Chandraker, S., Dash, D., & Chem, (2012). Synthesis of Schiff bases of 2-amino-5-aryl-1,3,4-thiadiazole and its analgesic, anti-Inflammatory and anti-bacterial activity. Journal of Chemistry, 9, 25242531.
  • Pour, Z. S., Chiniforoshan, H., Borojeni, A. A M., & Notash, B. (2016). Selected Schiff base coordination complexes and their microbial application: A review. Journal of Photochemistry & Photobiology: Part B: Biology, 162, 34–44.
  • Rabiul Hasan, M., Hossain, M. A., Abdus Salam, M., & Uddin, M. N. (2016). Nickel complexes of Schiff bases derived from mono/diketone with anthranilic acid: Synthesis, characterization and microbial evaluation. Journal of Taibah University for Science, 10(5), 766–773. https://doi.org/10.1016/j.jtusci.2015.11.007
  • Rahim, S., Antony, A., Lukose, G., Mohanan, K., Joe, I., & Joseyphus, R. (2015). Synthesis, spectral characterization and computational studies of metal chelates of 4-N-(2-Thienylidene)aminoantipyrine. Oriental Journal of Chemistry, 31(4), 1949–1960. https://doi.org/10.13005/ojc/310412
  • Raman, N., Sobha, S., & Mitu, L. (2013). Design, synthesis, DNA binding ability, chemical nuclease activity and antimicrobial evaluation of Cu(II), Co(II), Ni(II) and Zn(II) metal complexes containing tridentate Schiff base. Journal of Saudi Chemical Society, 17(2), 151–159. https://doi.org/10.1016/j.jscs.2011.03.003
  • Razzaq Ibrahim Al-Faris, A., & Mahdi Sachit Alkoofee, W. (2018). Cobalt (II) and nickel (II) complexes with Schiff base ligand derived from 4-amino antipyrine: Synthesis, spectral, characterization and thermal studies. International Journal of Engineering & Technology, 7(4.37), 198–201. https://doi.org/10.14419/ijet.v7i4.37.24100
  • Saddam Hossain, M., Roy, P. K., Zakaria, C. M., & Kudrat-EZahan, M. (2018).Selected Schiff base coordination complexes and their microbial application: A review, International Journal of Chemical Studies, 6, 19–31.
  • Sajjad Hossain, M., Camellia, F. K., Uddin, N., Banu, L. A., Kudrat-E-Zahan, M., & Masuqul Haque, M. (2019). Synthesis, characterization and biological activity studies of mixed ligand complexes with Schiff base and 2,2'-bipyridine, International Journal of Applied Sciences & Research & Reviews, 6, 1–7.
  • Sen, S., Farooqui, N. A., Dutta, S., Easwari, T. S., Gangwar, V., Upadhya, K., Verma, S., & Kumar, A. (2013).Physicochemical and biological evaluation of some schiff base by conventional and microwave assisted method, Der Pharma Chemica, 5, 128–134.
  • Senthil Kumaran, J., Priya, S., Jayachandramani, N., & Mahalakshmi, S. (2012). synthesis, spectroscopic characterization and biological activities of transition metal complexes derived from a tridentate Schiff base, Journal of Chemistry, 1–10.
  • Siddappa, K., & Mayana, N. S. (2014). Dihydroxyphenyl)ethyldeneamino)phenyl)-2-methylquinazoline-4(3H)-one Schiff base and its metal complexes: A new drug of choice against methicillin-resistant Staphylococcus aureus, Bioinorganic Chemistry & Applications, 1–11.
  • Singh, K., Thakur, R., & Kumar, V. (2016). Co(II), Ni(II), Cu(II), and Zn(II) complexes derived from 4-[{3-(4-bromophenyl)-1-phenyl-1H-pyrazol-4-ylmethylene}-amino]-3-mercapto-6-methyl-5-oxo-1,2,4-triazine, Journal of Basic & Applied Sciences, 5, 21–30.
  • Yernale, N. G., & Mathada, M. B. H. (2014). Synthesis, characterization, antimicrobial, DNA cleavage, and in vitro cytotoxic studies of some metal complexes of schiff base ligand derived from thiazole and quinoline moiety. Bioinorganic Chemistry & Applications, 2014, 1–17.

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