Abstract
Transition metals have unique efficacy in catalyzing various industrial reactions and also in living system, the redox reaction and redox changes in the metal ions catalyzed valence changes in the substrate molecule. The survey of the existing literature revealed that the binding of Molybdenum, Vanadium, Zinc, Cadmium, Copper, Nickel and Cobalt with the protein is well known but no binding studies of copper metal with egg protein are reported. With a view to extend the existing knowledge of ecological nature of metal-protein system, it was thought of interest to investigate the properties of metal-protein mixture. Investigations on the aspects of these binding problems were planned and their bindings constants have been determined using suitable physico-chemical methods. The pH metric, diffusion current measurements, spectrophotometric methods have been used on the binding of copper ions with albumin. The effect of physico-chemical factors on interaction between divalent metal ion i.e. copper with albumin has been discussed. On the basis of observed results, it is found that the binding data were dependent on pH and temperature. From scatchard plots, the intrinsic association constants (k) and the number of binding sites (n) were calculated and found high at lower pH and temperatures. Therefore, a lower temperature and lower pH offered more sites in the protein molecule for interaction with copper (II) ions. The enthalpy (ΔH), entropy (ΔS) changes, free energy change (ΔG°) have been calculated.
Acknowledgments
The authors pay their sincere gratitude to UGC for financial assistance as TRF and Principal, Govt. College Kota and S.P.C. Govt. College Ajmer, Rajasthan (India) for providing necessary research facilities to accomplish this study.
References
1. A. Barth, Prog. Biophys. Mol. Biol. 74 (2000) 141.10.1016/S0079-6107(00)00021-3Search in Google Scholar
2. T. Hoffmann, L. Dougan, Chem. Soc. Rev. 41 (2012) 4781.10.1039/c2cs35033eSearch in Google Scholar
3. D. C. Harris, Biochemistry 16 (1977) 560.10.1021/bi00622a033Search in Google Scholar
4. S. Ro, C.-J. Yoon, Z. Phys. Chem. 214 (2000) 1699.10.1524/zpch.2000.214.12.1699Search in Google Scholar
5. S. Köppen, B. Ohler, W. Langel, Z. Phys. Chem. 221 (2007) 3.10.1524/zpch.2007.221.1.3Search in Google Scholar
6. J. P. S. Arora, R. P. Singh, S. Soam, R. Sharma, Bioelectrochem. Bioenerg. 10 (1983) 57.10.1016/0302-4598(83)80105-6Search in Google Scholar
7. J. P. S. Arora, R. P. Singh, S. Soam, S. P. Singh, R. Kumar, Bioelectrochem. Bioererg. 10 (1983) 289.10.1016/0302-4598(83)85087-9Search in Google Scholar
8. S. Acharya, A. K. Sharma, Curr. Phy. Chem. 8 (2018) 186.10.2174/1877946808666181002102441Search in Google Scholar
9. M. M. Harding, Acta Crystallor. D. Biol. Crystallogr. 56 (2000) 857.10.1107/S0907444900005849Search in Google Scholar
10. J. Peisach, W. E. Blumberg, Arch. Biochem. Biophys. 165 (1974) 691.10.1016/0003-9861(74)90298-7Search in Google Scholar
11. R. Nandi, S. Laskar, B. Saha. Res. Chem. Intermed. 43 (2017) 1619.10.1007/s11164-016-2719-0Search in Google Scholar
12. M. Kirberger, H. C. Wong, J. Jiang, J. J. Yang, J. Inorg. Biochem. 125 (2013) 40.10.1016/j.jinorgbio.2013.04.002Search in Google Scholar
13. J. P. S. Arora, R. P. Singh, S. Soam, S. P. Singh, R. Kumar, Bioelectrochem. Bioenerg. 10 (1983) 441.10.1016/0302-4598(83)80071-3Search in Google Scholar
14. M. Laitaoja, J. Valjakka, Inorg. Chem. 52 (2013) 10983.10.1021/ic401072dSearch in Google Scholar
15. A. K. Sharma, S. Acharya, Z. Phy. Chem. 233 (2018) 691.10.1515/zpch-2018-1181Search in Google Scholar
16. H. Irving, R. J. P. Williams, J. Chem. Soc. 77 (1955) 1384.10.1021/ja01610a098Search in Google Scholar
17. E. Breslow, F. R. N. Gurd, J. Biological. Chem. 238 (1968) 1332.10.1016/S0021-9258(18)81184-XSearch in Google Scholar
18. J. P. S. Arora, R. P. Singh, S. Jain, S. P. Singh, A, Kumar, Bioelectiochem. Bio. Enegy 13 (1984) 329.10.1016/0302-4598(84)87035-XSearch in Google Scholar
19. R. Chatterjee, S. P. Mitra, D. K. Chattoraj, Ind. J. Biochem. Biophys. 16 (1979) 22.Search in Google Scholar
20. S. R. Verma, J. P. S. Arora, J. S. Shankar, R. Chand, Water Air Soil Pollut. 36 (1987) 247.10.1007/BF00229671Search in Google Scholar
21. S. Acharya, A. K. Sharma, Binding studies of metal ions and dyes with biopolymers “ISBN 978-613-8-38659-9” LAP LAMBERT Academic Publisher, Germany 2018.Search in Google Scholar
22. H. Haraguchi, J. Anal. At. Spectrom. 19 (2004) 5.10.1039/b308213jSearch in Google Scholar
23. G. Scatchard, E. S. Black, J. Phys. Chem. 53 (1949) 88.10.1021/j150466a007Search in Google Scholar
24. S. Acharya, A. K. Sharma, Interaction studies of metals and surfactant with protein “ISBN 978-613-8-38751-0” LAP LAMBERT Academic Publisher Germany (2018).Search in Google Scholar
25. N. J. Greenfield, Nat. Protoc. 1 (2006) 2876.10.1038/nprot.2006.202Search in Google Scholar PubMed PubMed Central
26. U. Sakaguchi, A. W. Addison, J. Chem. Soc. Dalton Trans. 0 (1979) 600.10.1039/dt9790000600Search in Google Scholar
27. J. Szpunar, Anal. Bioanal. Chem. 378 (2004) 54.10.1007/s00216-003-2333-zSearch in Google Scholar PubMed
28. A. Zuorro, R. Lavecchia, Asia-Pacific J. Chem. Eng. 7 (2012) 329.10.1002/apj.1652Search in Google Scholar
29. E. E. Bernanducci, W. F. Schwindinger, J. L. Hughey, K. Krogh-Jespersen, H. J. Schugar, J. Am. Chem. Soc. 103 (1981) 1686.10.1021/ja00397a017Search in Google Scholar
30. P. G. Daniele, E. Prenesti, G. Ostacoli, J. Chem. Soc. Dalton. Trans. 0 (1996) 3269.10.1039/DT9960003269Search in Google Scholar
31. L. Rivillas-Acevedo, R. Grande-Aztatzi, I. Lomel, J. E. Garcıa, E. Barrios, S. Teloxa, A. Vela, L. Quin-tanar, Inorg Chem, 50 (2011) 1956.10.1021/ic102381jSearch in Google Scholar PubMed
32. E. I. Solomon, R. K. Szilagyi, S. DeBeer George, L. Basumallick, Chem. Rev. 104 (2004) 419.10.1021/cr0206317Search in Google Scholar PubMed
©2020 Walter de Gruyter GmbH, Berlin/Boston
Articles in the same Issue
- Frontmatter
- The Effect of Crystalline Microstructure of PVDF Binder on Mechanical and Electrochemical Performance of Lithium-Ion Batteries Cathode
- Mechanistic Study on Surface Tension of Binary and Ternary Mixtures Containing Choline Chloride, Ethylene Glycol and Water (Components of Aqueous Solutions of a Deep Eutectic Solvent, Ethaline)
- Thiadiazole-2-Thiol-5-Thione and 2,5-Dimercapto-1,3,4-Thiadiazol Tautomerism, Conformational Stability, Vibrational Assignments, Inhibitor Efficiency and Quantum Chemical Calculations
- The Thermodynamic and pH Metric Binding Studies of Cu+2 Ions with Egg Protein by Spectrometric and Diffusion Current Techniques
- Adsorption of 2,4-Dichlorophenoxyacetic Acid from Aqueous Solution Using Carbonized Chest Nut as Low Cost Adsorbent: Kinetic and Thermodynamic
- The Kinetics and Equilibrium Thermodynamics Study on the Removal of Direct Blue and Titan Yellow Dyes from Aqueous Media by Modified Rice Husk Char
- Investigation of Dielectric Properties, Electric Modulus and Conductivity of the Au/Zn-Doped PVA/n-4H-SiC (MPS) Structure Using Impedance Spectroscopy Method
- Finding Solvent for Polyamide 11 Using a Computer Software
- Phytochemical Synthesis of Silver Nanoparticles Using Anthemis Nobilis Extract and Its Antibacterial Activity
Articles in the same Issue
- Frontmatter
- The Effect of Crystalline Microstructure of PVDF Binder on Mechanical and Electrochemical Performance of Lithium-Ion Batteries Cathode
- Mechanistic Study on Surface Tension of Binary and Ternary Mixtures Containing Choline Chloride, Ethylene Glycol and Water (Components of Aqueous Solutions of a Deep Eutectic Solvent, Ethaline)
- Thiadiazole-2-Thiol-5-Thione and 2,5-Dimercapto-1,3,4-Thiadiazol Tautomerism, Conformational Stability, Vibrational Assignments, Inhibitor Efficiency and Quantum Chemical Calculations
- The Thermodynamic and pH Metric Binding Studies of Cu+2 Ions with Egg Protein by Spectrometric and Diffusion Current Techniques
- Adsorption of 2,4-Dichlorophenoxyacetic Acid from Aqueous Solution Using Carbonized Chest Nut as Low Cost Adsorbent: Kinetic and Thermodynamic
- The Kinetics and Equilibrium Thermodynamics Study on the Removal of Direct Blue and Titan Yellow Dyes from Aqueous Media by Modified Rice Husk Char
- Investigation of Dielectric Properties, Electric Modulus and Conductivity of the Au/Zn-Doped PVA/n-4H-SiC (MPS) Structure Using Impedance Spectroscopy Method
- Finding Solvent for Polyamide 11 Using a Computer Software
- Phytochemical Synthesis of Silver Nanoparticles Using Anthemis Nobilis Extract and Its Antibacterial Activity