Exploring the Interaction of Tartrazine and Lipase: A Multispectroscopic Analysis, Docking and Computational Simulation Methods

Authors

  • Baosheng Liu College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China
  • Hongcai Zhang College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China
  • Xu Cheng College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China

DOI:

https://doi.org/10.22270/ajprd.v7i4.546

Keywords:

Tartrazine, Spectroscopic, Molecular, Docking

Abstract

The interaction between food colorant tartrazine and lipase was studied by multi-spectroscopic and molecular docking simulation under simulated physiological conditions to evaluate the toxic of tartrazine at the protein level. The results showed that tartrazine could effectively quench the endogenous fluorescence of lipase. The thermodynamic parameters were obtained from the van't Hoff equation, and the Gibbs free energy ΔG<0, indicating that the reaction was spontaneous; ΔH<0, ΔS>0, indicating hydrophobic interaction played a major role in forming the tartrazine-lipase complex. as shown by the synchronous fluorescence, UV-vis absorption and circular dichroism data, tartrazine could lead to the conformational and micro environmental changes of lipase, which may affect its physiological function. Molecular docking results showed that tartrazine was site in the active center of lipase, which altered the microenvironment of amino acid residues at the catalytic active center of lipase.

 

Downloads

Download data is not yet available.

Author Biographies

Baosheng Liu, College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China

College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China

Hongcai Zhang, College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China

College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China

Xu Cheng, College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China

College of Chemistry & Environmental Science, Key Laboratory of Analytical Science and Technology, Hebei University, Baoding, PR China

References

1. Mehedi N, Ainadtabet S, Mokrane N, Addou S, Zaoui C, Kheroua O, Saidi D. Reproductive toxicology of tartrazine (FD and C Yellow No. 5) in Swiss albino mice.[J]. American Journal of Pharmacology & Toxicology.2009; 4(4):130-5.
2. Dorraji PS, Jalali F. Electrochemical fabrication of a novel ZnO/cysteic acid nanocomposite modified electrode and its application to simultaneous determination of sunset yellow and tartrazine. Food Chemistry.2017; 227:73-7.
3. Basu A, Kumar GS. Studies on the interaction of the food colorant tartrazine with double stranded deoxyribonucleic acid. Journal of Biomolecular Structure & Dynamics.2016; 34(5):935-42.
4. McCann D, Barrett A, Cooper A, Crumpler D, Dalen L, Grimshaw K, Kitchin E, Lok K, Porteous L, Prince E, Sonuga-Brake E, Warner JO, Stevenson J. Food additives and hyperactive behaviour in 3-year-old and 8/9-year-old children in the community: a randomised, double-blinded, placebo-controlled tria. Lancet.2007; 370(9598):1560-7.
5. Li CY, Huang ZL, He P, Wu ZQ, Chu ZZ, Wu GD, Zhan FJ. Effect of Isopropanol on Catalytic Kinetics and Molecular Spectrum of Porcine Pancreas Lipase. Chemistry & Bioengineering.2007; 24(9):46-9.
6. Eom SH. Pancreatic Lipase Inhibitory Activity of Phlorotannins Isolated from Eisenia bicyclis. Phytotherapy Research.2013; 27(1):148-51.
7. Zhao L, Hu S, Meng Q, Hu M, Zhang H, Liu R. The binding interaction between cadmium-based, aqueous-phase quantum dots with Candida rugosa lipase. Journal of Molecular Recognition Jmr. 2018; 31(46): e2712.
8. Zhang R, Zhao L, Liu R. Deciphering the toxicity of bisphenol a to Candida rugosa lipase through spectrophotometric methods. Journal of Photochemistry & Photobiology B Biology. 2016; 163:40-6.
9. Ma LH, Liu BS, Wang CD, Zhang HC, Cheng X. The interaction mechanism of nifedipine and pepsin[J]. Monatshefte für Chemie - Chemical Monthly. 2018; 149(11): 2123-30.
10. Elmas G, Esra Y. Fluorescence interaction and determination of sulfathiazole with trypsin. Journal of Fluorescence.2014; 24(5):1439-45.
11. Zhang LH, Liu BS, Li ZY, Guo Y. Comparative studies on the interaction of cefixime with bovine serum albumin by fluorescence quenching spectroscopy and synchronous fluorescence spectroscopy. Asian Journal of Chemistry. 2015; 30(5): 686-92.
12. Tayyab S, Izzudin MM,Kabir MZ, Feroz SR, Tee WV, Mahanmd SB, Alias Z. Binding of an Anticancer Drug, Axitinib to Human Serum: Fluorescence Quenching and Molecular Docking Study. Journal of Photochemistry & Photobiology, B: Biology. 2016; 162:386-94.
13. Raza M, Yang J, Yun M, Ahand A, Khan A, Yuan QP. Insights from Spectroscopic and In-silico Techniques for the Exploitation of Biomolecular Interactions Between Human Serum Albumin and Paromomycin. Colloids and Surfaces B: Biointerfaces. 2017; 157:242-53.
14. Moeinpour F, Mohseni-shahri FS, Malaekeh-nikouei B, Nassirli H. Investigation into the Interaction of Losartan with Human Serum Albumin and Glycated Human Serum Albumin by Spectroscopic and Molecular Dynamics Simulation Techniques: Acomparison Study. Chemico-Biological Interactions. 2016; 257:4-13.
15. Feroz SR, Teoh YJ, Mohamzd SB, Hong SL, Malek S, Tayyab S. Interaction of Flavokawain B with Lysozyme: A Photophysical and Molecular Simulation Study. Journal of Luminescence. 2015; 160:101-9.
16. Amroabadi MK, Taheri-kafrani A, Saremi LH, Rasteqai AA. Spectroscopic Studies of the Interaction Between Alprazolam and Apo-human Serum Transferrin as a Drug Carrier Protein. International Journal of Biological Macromolecules. 2018; 108:263-71.
17. Naik KM, Nandibewoor ST. Spectroscopic studies on the interaction between chalcone and bovine serum albumin. Journal of Luminescence. 2013; 143:484-91.
18. Salam M, Rokonujjaman M, Rahman A, Sultana UN, Sultan N. Study of in Vitro Interaction of Sildenafil Citrate with Bovine Serum Albumin by Fluorescence Spectroscopy [J]. Pharmacology & Pharmacy. 2015; 6(2):94-101.
19. Ross PD, Subramanian S. Thermodynamics of protein association reactions: forces contributing to stability. Biochemistry. 1981; 20(11):3096-102.
20. Jahanban-Esfahlan A, Panahi-Azar V, Sajedi S. Spectroscopic and molecular docking studies on the interaction between N-Acetyl Cysteine (NAC) and bovine serum albumin[J]. Biopolymers. 2015; 103(11): 638-45.
21. Buddanavar AT, Nandibewoor ST. Multi-spectroscopic characterization of bovine serum albumin upon interaction with atomoxetine. Journal of Pharmaceutical Analysis. 2017; 7(3):148-55.
22. Hu X, Yu Z, Liu R. Spectroscopic investigations on the interactions between isopropanol and trypsin at molecular level. Spectrochim Acta A Mol Biomol Spectrosc. 2013; 108:50-4.
23. Cagnardi P, Villa R, Gallo M, Locatelli C, Carli S, Moroni P, Zonca A. Cefoperazone sodium preparation behavior after intramammary administration in healthy and infected cows. J. Dairy Sci. 2010; 93(9): 4105-10.
24. Bhogale A, Patel N, Mariam J, Donger PM, Miotello A, Kothari DC. Comprehensive studies on the interaction of copper nanoparticles with bovine serum albumin using various spectroscopies. Colloids Surf B Biointerfaces. 2014; 113(13):276-84.
25. Fan ZF, Zeng WC, Dai JL, He Q. Interaction of Epigallocatechin-3-gallate with Porcine Pancreas Lipase. Food Science. 2013; 34(7):20-3.
26. Jana S, Dalapati S, Ghosh S, Guchhait N. Study of microheterogeneous environment of protein Human Serum Albumin by an extrinsic fluorescent reporter: a spectroscopic study in combination with Molecular Docking and Molecular Dynamics Simulation. Journal of Photochemistry & Photobiology B Biology. 2012; 112(231):48-8.

Published

2019-08-15

How to Cite

Liu, B., Zhang, H., & Cheng, X. (2019). Exploring the Interaction of Tartrazine and Lipase: A Multispectroscopic Analysis, Docking and Computational Simulation Methods. Asian Journal of Pharmaceutical Research and Development, 7(4), 1–7. https://doi.org/10.22270/ajprd.v7i4.546