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Research Article

In-silico and in-detail experimental interaction studies of new antitumor Zn(II) complex with CT-DNA and serum albumin

, ORCID Icon &
Pages 9614-9631 | Received 28 Jul 2022, Accepted 31 Oct 2022, Published online: 18 Nov 2022

References

  • Adant, C., Dupuis, M., & Bredas, J. (1995). Ab initio study of the nonlinear optical properties of urea: electron correlation and dispersion effects. International Journal of Quantum Chemistry, 56(S29), 497–507. https://doi.org/10.1002/qua.560560853
  • Ahamad, M. N., Shahid, M., Ansari, A., Kumar, M., Khan, I. M., Ahmad, M., Rahisuddin, R., & Arif, R. (2019). A combined experimental and theoretical approach to investigate the structure, magnetic properties and DNA binding affinity of a homodinuclear Cu (ii) complex. New Journal of Chemistry, 43(19), 7511–7519. https://doi.org/10.1039/C9NJ00228F
  • Angelici, R. J., & Angelici, R. J. (1969). Synthesis and technique in inorganic chemistry. Saunders Philadelphia.
  • Ardizzoia, G. A., Colombo, G., Therrien, B., & Brenna, S. (2019). Tuning the fluorescence Emission and HOMO‐LUMO band gap in homoleptic Zinc (II) complexes with N, O‐Bidentate (Imidazo [1, 5‐a] pyrid‐3‐yl) phenols. European Journal of Inorganic Chemistry, 2019(13), 1825–1831. https://doi.org/10.1002/ejic.201900067
  • Asadi, Z., Nasrollahi, N., Karbalaei-Heidari, H., Eigner, V., Dusek, M., Mobaraki, N., & Pournejati, R. (2017). Investigation of the complex structure, comparative DNA-binding and DNA cleavage of two water-soluble mono-nuclear lanthanum (III) complexes and cytotoxic activity of chitosan-coated magnetic nanoparticles as drug delivery for the complexes. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 178, 125–135. https://doi.org/10.1016/j.saa.2017.01.037
  • Becke, A. D. (1988). Density-functional exchange-energy approximation with correct asymptotic behavior. Physical Review. A, General Physics, 38(6), 3098–3100. https://doi.org/10.1103/physreva.38.3098
  • Bersanetti, E., Pasini, A., Pezzoni, G., Pratesi, G., Savi, G., Supino, R., & Zunino, F. (1984). Antitumor complexes of platinum with carrier molecules. 2 [1]. Mixed complexes of amino acids and tert-butylamine. Inorganica Chimica Acta, 93(4), 167–172. https://doi.org/10.1016/S0020-1693(00)88158-X
  • Böhm, G., Muhr, R., & Jaenicke, R. (1992). Quantitative analysis of protein far UV circular dichroism spectra by neural networks. Protein Engineering, Design and Selection, 5(3), 191–195. https://doi.org/10.1093/protein/5.3.191
  • Boys, S. F., & Bernardi, F. (1970). The calculation of small molecular interactions by the differences of separate total energies. Some procedures with reduced errors. Molecular Physics, 19(4), 553–566. https://doi.org/10.1080/00268977000101561
  • Carter, D. C., & Ho, J. X. (1994). Structure of serum albumin. In Advances in protein chemistry. (Vol. 45, pp. 153–203): Elsevier.
  • Chen, J., Wang, Y., Pan, X., Cheng, Y., Liu, J., & Cao, X. (2022). Study on the interaction mechanism between luteoloside and xanthine oxidase by multi‐spectroscopic and molecular docking methods. Journal of Molecular Recognition, 35(12), e2985.
  • Chen, Q-y., Li, D-h., Yang, H-h., Zhu, Q-z., Xu, J-g., & Zhao, Y. (1999). Interaction of a novel red-region fluorescent probe, Nile blue, with DNA and its application to nucleic acids assay. The Analyst, 124(6), 901–906.
  • Coutinho, A., & Prieto, M. (1993). Ribonuclease T1 and alcohol dehydrogenase fluorescence quenching by acrylamide: A laboratory experiment for undergraduate students. Journal of Chemical Education, 70(5), 425. https://doi.org/10.1021/ed070p425
  • Dennington, R., Keith, T., & Millam, J. G. (2009). Version 5. Semichem Inc.: Shawnee Mission.
  • Devi, S. P., Shantibala Devi, N., Singh, L. J., Devi, R. B., Devi, W. R., Singh, C. B., & Singh, R. H. (2017). Spectroscopic and DNA interaction studies on mixed ligand copper (II) complexes of dicyanamide with ethylenediamine or 1, 3-diaminopropane. Inorganic and Nano-Metal Chemistry, 47(2), 223–233. https://doi.org/10.1080/15533174.2016.1158189
  • Divsalar, A., Razmi, M., Saboury, A. A., Mansouri-Torshizi, H., & Ahmad, F. (2015). Biological evaluation of a new synthesized Pt (II) complex by cytotoxic and spectroscopic studies. Cell Biochemistry and Biophysics, 71(3), 1415–1424.
  • Dustkami, M., Mansouri-Torshizi, H., Abdi, K., Dehghanian, E., Saeidifar, M., & Mohammadi, F. (2022). A couple of antitumor Pd (II) complexes make DNA-refolding and HSA-unfolding: Experimental and docking studies. Journal of Molecular Liquids, 349, 118450. https://doi.org/10.1016/j.molliq.2021.118450
  • Eşme, A., & Sağdınç, S. G. (2018). Molecular structures, spectroscopic (FT–IR, NMR, UV) studies, NBO analysis and NLO properties for tautomeric forms of 1, 3-dimethyl-5-(phenylazo)-6-aminouracil by density functional method. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 188, 443–455. https://doi.org/10.1016/j.saa.2017.07.034
  • Farrell, N. (2002). Biomedical uses and applications of inorganic chemistry. An overview. Coordination Chemistry Reviews, 232(1-2), 1–4. https://doi.org/10.1016/S0010-8545(02)00100-5
  • Feizi-Dehnayebi, M., Dehghanian, E., & Mansouri-Torshizi, H. (2021a). A novel palladium (II) antitumor agent: Synthesis, characterization, DFT perspective, CT-DNA and BSA interaction studies via in-vitro and in-silico approaches. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 249, 119215. https://doi.org/10.1016/j.saa.2020.119215
  • Feizi-Dehnayebi, M., Dehghanian, E., & Mansouri-Torshizi, H. (2021b). Synthesis and characterization of Pd (II) antitumor complex, DFT calculation and DNA/BSA binding insight through the combined experimental and theoretical aspects. Journal of Molecular Structure, 1240, 130535. https://doi.org/10.1016/j.molstruc.2021.130535
  • Frederickson, C. J., Koh, J.-Y., & Bush, A. I. (2005). The neurobiology of zinc in health and disease. Nature Reviews. Neuroscience, 6(6), 449–462.
  • Ganeshpandian, M., Loganathan, R., Ramakrishnan, S., Riyasdeen, A., Akbarsha, M. A., & Palaniandavar, M. (2013). Interaction of mixed ligand copper (II) complexes with CT DNA and BSA: Effect of primary ligand hydrophobicity on DNA and protein binding and cleavage and anticancer activities. Polyhedron, 52, 924–938. https://doi.org/10.1016/j.poly.2012.07.021
  • Glendering, E., Reed, A., Carpenter, J., & Weinhold, F. (1998). NBO, ver. 3.1. Gaussian.
  • Hajibabaei, F., Salehzadeh, S., Golbedaghi, R., Moghadam, N. H., Sharifinia, S., Khazalpour, S., & Baghaeifar, Z. (2019). DNA binding and molecular docking studies of a new Cu (II) complex of isoxsuprine drug. Polyhedron, 162, 232–239. https://doi.org/10.1016/j.poly.2019.01.052
  • Hu, Y.-J., Liu, Y., Zhao, R.-M., Dong, J.-X., & Qu, S.-S. (2006). Spectroscopic studies on the interaction between methylene blue and bovine serum albumin. Journal of Photochemistry and Photobiology A: Chemistry, 179(3), 324–329. https://doi.org/10.1016/j.jphotochem.2005.08.037
  • Jahanban-Esfahlan, A., & Panahi-Azar, V. (2016). Interaction of glutathione with bovine serum albumin: Spectroscopy and molecular docking. Food Chemistry, 202, 426–431.
  • Jahanban-Esfahlan, A., Davaran, S., & Dastmalchi, S. (2022). Preparation and antiproliferative activity evaluation of juglone-loaded BSA nanoparticles. Anticancer Drugs, 1, 2.
  • Jahanban-Esfahlan, A., Davaran, S., Moosavi-Movahedi, A. A., & Dastmalchi, S. (2017). Investigating the interaction of juglone (5-hydroxy-1, 4-naphthoquinone) with serum albumins using spectroscopic and in silico methods. Journal of the Iranian Chemical Society, 14(7), 1527–1540. https://doi.org/10.1007/s13738-017-1094-0
  • Jahanban‐Esfahlan, A., Panahi‐Azar, V., & Sajedi, S. (2015). Spectroscopic and molecular docking studies on the interaction between N‐acetyl cysteine and bovine serum albumin. Biopolymers, 103(11), 638–645. https://doi.org/10.1002/bip.22697
  • Jahanban-Esfahlan, A., Roufegarinejad, L., Tabibiazar, M., Lorenzo, J., & Amarowicz, R. (2021). Exploring the interactions between caffeic acid and human serum albumin using spectroscopic and molecular docking techniques. Polish Journal of Food and Nutrition Sciences, 69–77. https://doi.org/10.31883/pjfns/133203
  • Jahani, S., Aramesh-Boroujeni, Z., & Noroozifar, M. (2021). In vitro anticancer and antibacterial activates of the yttrium (III) complex and its nano-carriers toward DNA cleavage and biological interactions with DNA and BSA; An experimental and computational studies. Journal of Trace Elements in Medicine and Biology: Organ of the Society for Minerals and Trace Elements (GMS), 68, 126821.
  • Jung, Y., & Lippard, S. J. (2007). Direct cellular responses to platinum-induced DNA damage. Chemical Reviews, 107(5), 1387–1407.
  • Kasherman, Y., Sturup, S., & Gibson, D. (2009). Is glutathione the major cellular target of cisplatin? A study of the interactions of cisplatin with cancer cell extracts. Journal of Medicinal Chemistry, 52(14), 4319–4328.
  • Kasuga, N. C., Sekino, K., Ishikawa, M., Honda, A., Yokoyama, M., Nakano, S., Shimada, N., Koumo, C., & Nomiya, K. (2003). Synthesis, structural characterization and antimicrobial activities of 12 zinc (II) complexes with four thiosemicarbazone and two semicarbazone ligands. Journal of Inorganic Biochemistry, 96(2-3), 298–310. https://doi.org/10.1016/S0162-0134(03)00156-9
  • Kou, S.-B., Lin, Z.-Y., Wang, B.-L., Shi, J.-H., & Liu, Y.-X. (2021). Evaluation of the binding behavior of olmutinib (HM61713) with model transport protein: Insights from spectroscopic and molecular docking studies. Journal of Molecular Structure, 1224, 129024. https://doi.org/10.1016/j.molstruc.2020.129024
  • Krenn, B., Gaudernak, E., Holzer, B., Lanke, K., Van Kuppeveld, F., & Seipelt, J. (2009). Antiviral activity of the zinc ionophores pyrithione and hinokitiol against picornavirus infections. Journal of Virology, 83(1), 58–64.
  • Kumar, R. S., & Arunachalam, S. (2007). DNA binding and antimicrobial studies of some polyethyleneimine-copper (II) complex samples containing 1, 10-phenanthroline and l-theronine as co-ligands. Polyhedron, 26(13), 3255–3262. https://doi.org/10.1016/j.poly.2007.03.001
  • Lakowicz, J. R. (1983). Protein fluorescence. In Principles of fluorescence spectroscopy (pp. 341–381). Springer.
  • Lakowicz, J. R., & Weber, G. (1973). Quenching of fluorescence by oxygen. Probe for structural fluctuations in macromolecules. Biochemistry, 12(21), 4161–4170. https://doi.org/10.1021/bi00745a020
  • Lee, C., Yang, W., & Parr, R. G. (1988). Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. Physical Review B, 37(2), 785–789. https://doi.org/10.1103/PhysRevB.37.785
  • LePecq, J.-B., & Paoletti, C. (1967). A fluorescent complex between ethidium bromide and nucleic acids: physical—chemical characterization. Journal of Molecular Biology, 27(1), 87–106.
  • Lovejoy, K. S., & Lippard, S. J. (2009). Non-traditional platinum compounds for improved accumulation, oral bioavailability, and tumor targeting. Dalton Transactions, (48), 10651–10659. https://doi.org/10.1039/b913896j
  • Mandegani, Z., Asadi, Z., Asadi, M., Karbalaei-Heidari, H. R., & Rastegari, B. (2016). Synthesis, characterization, DNA binding, cleavage activity, cytotoxicity and molecular docking of new nano water-soluble [M(5-CH(2)PPh(3)-3,4-salpyr)](ClO(4))(2) (M = Ni, Zn) complexes. Dalton Transactions (Cambridge, England : 2003), 45(15), 6592–6611. https://doi.org/10.1039/c5dt04788a
  • Mansouri-Torshizi, H., Zareian-Jahromi, S., Abdi, K., & Saeidifar, M. (2019). Nonionic but water soluble,[Glycine-Pd-Alanine] and [Glycine-Pd-Valine] complexes. Their synthesis, characterization, antitumor activities and rich DNA/HSA interaction studies. Journal of Biomolecular Structure and Dynamics, 37(13), 3566–3582. https://doi.org/10.1080/07391102.2018.1520647
  • Marmur, J. (1961). A procedure for the isolation of deoxyribonucleic acid from micro-organisms. Journal of Molecular Biology, 3(2), 208–IN1. https://doi.org/10.1016/S0022-2836(61)80047-8
  • Mary, C. P. V., Vijayakumar, S., & Shankar, R. (2018). Metal chelating ability and antioxidant properties of Curcumin-metal complexes–A DFT approach. Journal of Molecular Graphics & Modelling, 79, 1–14.
  • Masarik, M., Gumulec, J., Hlavna, M., Sztalmachova, M., Babula, P., Raudenska, M., Pavkova-Goldbergova, M., Cernei, N., Sochor, J., Zitka, O., Ruttkay-Nedecky, B., Krizkova, S., Adam, V., & Kizek, R. (2012). Monitoring of the prostate tumour cells redox state and real-time proliferation by novel biophysical techniques and fluorescent staining. Integrative Biology : quantitative Biosciences from Nano to Macro, 4(6), 672–684. https://doi.org/10.1039/c2ib00157h
  • Morris, G. M., Huey, R., Lindstrom, W., Sanner, M. F., Belew, R. K., Goodsell, D. S., & Olson, A. J. (2009). AutoDock4 and AutoDockTools4: Automated docking with selective receptor flexibility. Journal of Computational Chemistry, 30(16), 2785–2791.
  • Mukherjee, S., Ganorkar, K., Gupta, S., Kumar, A., Singh, A., & Ghosh, S. K. (2020). The consequences of adopting therapeutic luminophore azapodophyllotoxin into BSA: a molecular regulator to control emissive population of two tryptophan residues in carrier protein. Journal of Biomolecular Structure and Dynamics, 38(8), 2338–2351. https://doi.org/10.1080/07391102.2019.1630320
  • Mylonas, S., Valavanidis, A., Voukouvalidis, V., & Polyssiou, M. (1981). Platinum (II) and palladium (II) complexes with amino acid derivatives. Synthesis, interpretation of IR and 1H NMR spectra and conformational implications. Inorganica Chimica Acta, 55, 125–128. https://doi.org/10.1016/S0020-1693(00)90793-X
  • Nataraj, A., Balachandran, V., & Karthick, T. (2012). FT-IR and Raman spectra, DFT and SQMFF calculations for geometrical interpretation and vibrational analysis of 3-nitro-p-toluic acid. Journal of Molecular Structure, 1022, 94–108. https://doi.org/10.1016/j.molstruc.2012.04.056
  • Novikova, G. V., Petrov, A. I., Staloverova, N. A., Samoilo, A. S., Dergachev, I. D., & Shubin, A. A. (2015). Complex formation of Sn (II) with glycine: An IR, DTA/TGA and DFT investigation. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 135, 491–497. https://doi.org/10.1016/j.saa.2014.07.060
  • Parr, R. G., & Pearson, R. G. (1983). Absolute hardness: companion parameter to absolute electronegativity. Journal of the American Chemical Society, 105(26), 7512–7516. https://doi.org/10.1021/ja00364a005
  • Parr, R. G., Szentpály, L. v., & Liu, S. (1999). Electrophilicity index. Journal of the American Chemical Society, 121(9), 1922–1924. https://doi.org/10.1021/ja983494x
  • Peyrone, M. (1844). Ueber die einwirkung des ammoniaks auf platinchlorür. Annalen Der Chemie Und Pharmacie, 51(1), 1–29. https://doi.org/10.1002/jlac.18440510102
  • Prasad, O., Sinha, L., Misra, N., Narayan, V., Kumar, N., & Pathak, J. (2010). Molecular structure and vibrational study on 2, 3-dihydro-1H-indene and its derivative 1H-indene-1, 3 (2H)-dione by density functional theory calculations. Journal of Molecular Structure: THEOCHEM, 940(1-3), 82–86. https://doi.org/10.1016/j.theochem.2009.10.011
  • Pyle, A., Rehmann, J., Meshoyrer, R., Kumar, C., Turro, N., & Barton, J. K. (1989). Mixed-ligand complexes of ruthenium (II): factors governing binding to DNA. Journal of the American Chemical Society, 111(8), 3051–3058. https://doi.org/10.1021/ja00190a046
  • Rahmani, R., Boukabcha, N., Chouaih, A., Hamzaoui, F., & Goumri-Said, S. (2018). On the molecular structure, vibrational spectra, HOMO-LUMO, molecular electrostatic potential, UV–Vis, first order hyperpolarizability, and thermodynamic investigations of 3-(4-chlorophenyl)-1-(1yridine-3-yl) prop-2-en-1-one by quantum chemistry calculations. Journal of Molecular Structure, 1155, 484–495. https://doi.org/10.1016/j.molstruc.2017.11.033
  • Rosenberg, B., Van Camp, L., & Krigas, T. (1965). Inhibition of cell division in Escherichia coli by electrolysis products from a platinum electrode. Nature, 205(4972), 698–699.
  • Ross, P. D., & Subramanian, S. (1981). Thermodynamics of protein association reactions: forces contributing to stability. Biochemistry, 20(11), 3096–3102.
  • Roufegarinejad, L., Amarowicz, R., & Jahanban-Esfahlan, A. (2019). Characterizing the interaction between pyrogallol and human serum albumin by spectroscopic and molecular docking methods. Journal of Biomolecular Structure & Dynamics, 37(11), 2766–2775.
  • Roufegarinejad, L., Jahanban, Esfahlan, A., Sajed, Amin, S., Panahi, Azar, V., & Tabibiazar, M. (2018). Molecular interactions of thymol with bovine serum albumin: Spectroscopic and molecular docking studies. Journal of Molecular Recognition : JMR, 31(7), e2704.
  • Saeidifar, M., Mansouri-Torshizi, H., Palizdar, Y., Divsalar, A., & Saboury, A. A. (2013). Synthesis, characterization, and cytotoxicity studies of a novel palladium(II) complex and evaluation of DNA-binding aspects. Nucleosides, Nucleotides & Nucleic Acids, 32(7), 366–388. https://doi.org/10.1080/15257770.2013.790552
  • Sakıyan, I., Logoglu, E., Arslan, S., Sari, N., & Şakiyan, N. (2004). Antimicrobial activities of N-(2-hydroxy-1-naphthalidene)-amino acid (glycine, alanine, phenylalanine, histidine, tryptophane) Schiff bases and their manganese (III) complexes. BioMetals, 17(2), 115–120. https://doi.org/10.1023/B:BIOM.0000018380.34793.df
  • Sakurai, H., Kojima, Y., Yoshikawa, Y., Kawabe, K., & Yasui, H. (2002). Antidiabetic vanadium (IV) and zinc (II) complexes. Coordination Chemistry Reviews, 226(1-2), 187–198. https://doi.org/10.1016/S0010-8545(01)00447-7
  • Sarwar, T., Ishqi, H. M., Rehman, S. U., Husain, M. A., Rahman, Y., & Tabish, M. (2017). Caffeic acid binds to the minor groove of calf thymus DNA: A multi-spectroscopic, thermodynamics and molecular modelling study. International Journal of Biological Macromolecules, 98, 319–328. https://doi.org/10.1016/j.ijbiomac.2017.02.014
  • Shahraki, S., Shiri, F., Heidari Majd, M., & Dahmardeh, S. (2019). Investigating the biological potency of novel lanthanum (III) amino acid complex: MCF-7 breast cancer cell line, BSA and β-LG as targets. Journal of the Iranian Chemical Society, 16(2), 301–313. https://doi.org/10.1007/s13738-018-1508-7
  • Shakerzadeh, E., Mashak Shabavi, Z., & Anota, E. C. (2020). Enhanced electronic and nonlinear optical responses of C24N24 cavernous nitride fullerene by decoration with first row transition metals: A computational investigation. Applied Organometallic Chemistry, 34(8), e5694. https://doi.org/10.1002/aoc.5694
  • Sharifinia, S., Hajibabaei, F., Salehzadeh, S., Hosseinpour Moghadam, N., & Khazalpour, S. (2020). Probing the strength and mechanism of binding between amifampridine and calf thymus DNA. DNA and Cell Biology, 39(12), 2134–2142. https://doi.org/10.1089/dna.2020.5618
  • Shi, J.-H., Lou, Y.-Y., Zhou, K.-L., & Pan, D.-Q. (2018). Elucidation of intermolecular interaction of bovine serum albumin with Fenhexamid: A biophysical prospect. Journal of Photochemistry and Photobiology B: Biology, 180, 125–133. https://doi.org/10.1016/j.jphotobiol.2018.01.025
  • Shi, J.-H., Pan, D.-Q., Zhou, K.-L., & Lou, Y.-Y. (2019). Exploring the binding interaction between herring sperm DNA and sunitinib: insights from spectroscopic and molecular docking approaches. Journal of Biomolecular Structure & Dynamics, 37(4), 837–845.
  • Singh, N., Pagariya, D., Jain, S., Naik, S., & Kishore, N. (2018). Interaction of copper (II) complexes by bovine serum albumin: Spectroscopic and calorimetric insights. Journal of Biomolecular Structure & Dynamics, 36(9), 2449–2462.
  • Song, Y., Kang, J., Zhou, J., Wang, Z., Lu, X., Wang, L., & Gao, J. (2000). Study on the fluorescence spectra and electrochemical behavior of ZnL2 and Morin with DNA. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 56(12), 2491–2497. https://doi.org/10.1016/S1386-1425(00)00340-1
  • Szymańska, M., Insińska-Rak, M., Dutkiewicz, G., Roviello, G. N., Fik-Jaskółka, M. A., & Patroniak, V. (2020). Thiophene-benzothiazole dyad ligand and its Ag(I) complex – Synthesis, characterization, interactions with DNA and BSA. Journal of Molecular Liquids, 319, 114182. https://doi.org/10.1016/j.molliq.2020.114182
  • Teir, M. A., Ghithan, J., Darwish, S., & Abu-Hadid, M. M. (2012). Multi-spectroscopic investigation of the interactions between cholesterol and human serum albumin. Journal of Applied Biological Sciences, 6(3), 45–55.
  • Vamsikrishna, N., Daravath, S., Ganji, N., Pasha., & N., Shivaraj. (2020). Synthesis, structural characterization, DNA interaction, antibacterial and cytotoxicity studies of bivalent transition metal complexes of 6-aminobenzothiazole Schiff base. Inorganic Chemistry Communications, 113, 107767., https://doi.org/10.1016/j.inoche.2020.107767
  • Wang, B.-L., Pan, D.-Q., Zhou, K.-L., Lou, Y.-Y., & Shi, J.-H. (2019). Multi-spectroscopic approaches and molecular simulation research of the intermolecular interaction between the angiotensin-converting enzyme inhibitor (ACE inhibitor) benazepril and bovine serum albumin (BSA). Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 212, 15–24. https://doi.org/10.1016/j.saa.2018.12.040
  • Wang, Q., Huang, C-r., Jiang, M., Zhu, Y-y., Wang, J., Chen, J., Shi., & J., h. (2016). Binding interaction of atorvastatin with bovine serum albumin: Spectroscopic methods and molecular docking. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 156, 155–163. https://doi.org/10.1016/j.saa.2015.12.003
  • Xiao, J., Shi, J., Cao, H., Wu, S., Ren, F., & Xu, M. (2007). Analysis of binding interaction between puerarin and bovine serum albumin by multi-spectroscopic method. Journal of Pharmaceutical and Biomedical Analysis, 45(4), 609–615.
  • Xu, Z.-H., Chen, F.-J., Xi, P.-X., Liu, X.-H., & Zeng, Z.-Z. (2008). Synthesis, characterization, and DNA-binding properties of the cobalt (II) and nickel (II) complexes with salicylaldehyde 2-phenylquinoline-4-carboylhydrazone. Journal of Photochemistry and Photobiology A: Chemistry, 196(1), 77–83. https://doi.org/10.1016/j.jphotochem.2007.11.017
  • Yang, P., & Gao, F. (2002). The principle of bioinorganic chemistry. Science. pp. 349.
  • Zelenák, V., Györyová, K., & Mlynarcik, D. (1970). Antibacterial and antifungal activity of zinc (II) carboxylates with/without N-donor organic ligands. Metal-Based Drugs, 8(5), 269–274.
  • Zhang, G., Ma, Y., Wang, L., Zhang, Y., & Zhou, J. (2012). Multispectroscopic studies on the interaction of maltol, a food additive, with bovine serum albumin. Food Chemistry, 133(2), 264–270.
  • Zhang, S., Yang, H., Zhao, L., Gan, R., Tang, P., Sun, Q., Xiong, X., & Li, H. (2019). Capecitabine as a minor groove binder of DNA: molecular docking, molecular dynamics, and multi-spectroscopic studies. Journal of Biomolecular Structure & Dynamics, 37(6), 1451–1463. https://doi.org/10.1080/07391102.2018.1461137
  • Zhang, Y.-F., Zhou, K.-L., Lou, Y.-Y., Pan, D-q., & Shi, J.-H. (2017). Investigation of the binding interaction between estazolam and bovine serum albumin: multi-spectroscopic methods and molecular docking technique. Journal of Biomolecular Structure & Dynamics, 35(16), 3605–3614.
  • Zhao, X.-L., Han, M.-J., Zhang, A.-G., & Wang, K.-Z. (2012). DNA-and RNA-binding and enhanced DNA-photocleavage properties of a ferrocenyl-containing ruthenium (II) complex. Journal of Inorganic Biochemistry, 107(1), 104–110.

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