207
Views
16
CrossRef citations to date
0
Altmetric
Research Articles

Spectroscopic investigation on interaction of biogenic, Croton bonplandianum leaves extract mediated potential bactericidal silver nanoparticles with human hemoglobin and human serum albumin

, , , , & ORCID Icon
Pages 711-723 | Received 20 Dec 2016, Accepted 08 Feb 2017, Published online: 28 Feb 2017

References

  • Aghili, Z., Taheri, S., Zeinabad, H. A., Pishkar, L., Saboury, A. A., Rahimi, A., & Falahati, M. (2016). Investigating the interaction of Fe nanoparticles with lysozyme by biophysical and molecular docking studies. PLoS ONE, 11, e0164878.10.1371/journal.pone.0164878
  • Ahmad, B., Parveen, S., & Khan, R. H. (2006). Effect of albumin conformation on the binding of ciprofloxacin to human serum albumin: A novel approach directly assigning binding site. Biomacromolecules, 7, 1350–1356.10.1021/bm050996b
  • Ambika, S., & Sundrarajan, M. (2015). Antibacterial behaviour of Vitex negundo extract assisted ZnO nanoparticles against pathogenic bacteria. Journal of Photochemistry and Photobiology B: Biology, 146, 52–57.10.1016/j.jphotobiol.2015.02.020
  • Asharani, P. V., Sethu, S., Vadukumpully, S., Zhong, S., Lim, C. T., Hande, M. P., & Valiyaveettil, S. (2010). Investigations on the structural damage in human erythrocytes exposed to silver, gold, and platinum nanoparticles. Advanced Functional Materials, 20, 1233–1242.10.1002/adfm.v20:8
  • Bhakat, R. K., & Sen, U. K. (2008). Ethnomedicinal plant conservation through sacred groves. Tribes and Tribals, 2, 55–58.
  • Cedervall, T., Lynch, I., Foy, M., Berggård, T., Donnelly, S. C., Cagney, G., … Dawson, K. A. (2007). Detailed identification of plasma proteins adsorbed on copolymer nanoparticles. Angewandte Chemie International Edition, 46, 5754–5756.10.1002/(ISSN)1521-3773
  • Cedervall, T., Lynch, I., Lindman, S., Berggard, T., Thulin, E., Nilsson, H., … Linse, S. (2007). Understanding the nanoparticle-protein corona using methods to quantify exchange rates and affinities of proteins for nanoparticles. Proceedings of the National Academy of Sciences, 104, 2050–2055.10.1073/pnas.0608582104
  • Chang, L. T., & Yen, C. C. (1995). Studies on the preparation and properties of conductive polymers. VIII. Use of heat treatment to prepare metallized films from silver chelate of PVA and PAN. Journal of Applied Polymer Science, 55, 371–374.10.1002/app.1995.070550219
  • Chaudhuri, A. B. (2007). Endangered medicinal plants. Delhi: Daya Publishing House.
  • Chen, Y. H., Yang, J. T., & Martinez, H. M. (1972). Determination of the secondary structures of proteins by circular dichroism and optical rotatory dispersion. Biochemistry, 11, 4120–4131.10.1021/bi00772a015
  • Clinical and Laboratory Standards Institute. (2012). Methods for dilution antimicrobial susceptibility tests for bacteria that grow aerobically (NCCLS approved standard M7-A9). Wayne: NCCLS.
  • Ding, F., Liu, W., Li, Y., Zhang, L., & Sun, Y. (2010). Determining the binding affinity and binding site of bensulfuron-methyl to human serum albumin by quenching of the intrinsic tryptophan fluorescence. Journal of Luminescence, 130, 2013–2021.10.1016/j.jlumin.2010.05.019
  • Dutta, S., Dey, P., & Chaudhuri, T. K. (2013). Quantification and correlation of the bioactive phytochemicals of Croton bonplandianum leaves of sub-himalayan region of west Bengal. Asian Journal of Pharmaceutical and Clinical Research, 6(Suppl 3), 142–147.
  • Eftink, M. R. (1991). Fluorescence quenching reactions: Probing biological macromolecular structure. In T. G. Dewey (Ed.), Biophysical and biochemical aspects of fluorescence spectroscopy. (pp. 1–41). New York, NY: Plenum.
  • Esfandfar, P., Falahati, M., & Saboury, A. (2016). Spectroscopic studies of interaction between CuO nanoparticles and bovine serum albumin. Journal of Biomolecular Structure & Dynamics, 34, 1962–1968.10.1080/07391102.2015.1096213
  • Ghalandari, B., Divsalar, A., Eslami-Moghadam, M., Saboury, A. A., Haertlé, T., Amanlou, M., & Parivar, K. (2015). Probing of the interaction between β-lactoglobulin and the anticancer drug oxaliplatin. Applied Biochemistry and Biotechnology, 175, 974–987.10.1007/s12010-014-1341-0
  • Ghalandari, B., Divsalar, A., Saboury, A. A., & Parivar, K. (2014). The new insight into oral drug delivery system based on metal drugs in colon cancer therapy through β-lactoglobulin/oxali-palladium nanocapsules. Journal of Photochemistry and Photobiology B: Biology, 140, 255–265.10.1016/j.jphotobiol.2014.08.003
  • Ghalandari, B., Divsalar, A., Saboury, A. A., & Parivar, K. J. (2015). β-Lactoglobulin nanoparticle as a chemotherapy agent carrier for oral drug delivery system. Journal of the Iranian Chemical Society, 12, 613–619.10.1007/s13738-014-0519-2
  • Ghasemi, M., Daud, W. R. W., Rahimnejad, M., Rezayi, M., Fatemi, A., Jafari, Y., … Manzour, A. (2013). Copper-phthalocyanine and nickel nanoparticles as novel cathode catalysts in microbial fuel cells. International Journal of Hydrogen Energy, 38, 9533–9540.10.1016/j.ijhydene.2013.01.177
  • Gokara, M., Sudhamalla, B., Amooru, D. G., & Subramanyam, R. (2010). Molecular interaction studies of trimethoxy flavone with human serum albumin. PLoS ONE, 5, e8834.10.1371/journal.pone.0008834
  • Goldbeck, R. A., Esquerra, R. M., & Kliger, D. S. (2002). Hydrogen bonding to Trp β37 is the first step in a compound pathway for hemoglobin allostery. Journal of the American Chemical Society, 124, 7646–7647.10.1021/ja025855l
  • Gomez-Romero, P. (2001). Hybrid organic-inorganic materials – In search of synergic activity. Advanced Materials, 13, 163–174.10.1002/(ISSN)1521-4095
  • Goodsell, D. S. (2004). Bionanomedicine in action in bionanotechnology: Lessons from nature. Hoboken, NJ: Wiley.10.1002/0471469572
  • Guzmán, M. G., Dille, J., & Godet, S. (2008). Synthesis of silver nanoparticles by chemical reduction method and their antimicrobial activity. World Academy of Science, Engineering and Technology, 43, 357–364.
  • Hazra, S., Hossain, M., & Suresh Kumar, G. (2013). Binding of isoquinoline alkaloids berberine, palmatine and coralyne to hemoglobin: Structural and thermodynamic characterization studies. Molecular BioSystems, 9, 143–153.10.1039/C2MB25345C
  • Hazra, S., & Suresh Kumar, G. (2014). Structural and thermodynamic studies on the interaction of iminium and alkanolamine forms of sanguinarine with hemoglobin. The Journal of Physical Chemistry B, 118, 3771–3784.10.1021/jp409764z
  • Hossain, M., Khan, A. Y., & Suresh Kumar, G. (2012). Study on the thermodynamics of the binding of iminium and alkanolamine forms of the anticancer agent sanguinarine to human serum albumin. The Journal of Chemical Thermodynamics, 47, 90–99.10.1016/j.jct.2011.09.026
  • Hu, Y., Li, W., Liu, Y., Dong, J., & Qu, S. (2005). Fluorometric investigation of the interaction between methylene blue and human serum albumin. Journal of Pharmaceutical and Biomedical Analysis, 39, 740–745.10.1016/j.jpba.2005.04.009
  • Hu, Y., Liu, Y., Shen, X., Fang, X., & Qu, S. (2005). Studies on the interaction between 1-hexylcarbamoyl-5-fluorouracil and bovine serum albumin. Journal of Molecular Structure, 738, 143–147.10.1016/j.molstruc.2004.11.062
  • Jafari, A. V., Kasravi, S., Alizadeh, Z. H., Memar, B. A. M., Saboury, A. A., Rahimi, A., & Falahati, M. (2016). Probing the conformational changes and peroxidase-like activity of cytochrome c upon interaction with iron nanoparticles. Journal of Biomolecular Structure & Dynamics, 15, 1–13.10.1080/07391102.2016.1222972
  • Jash, C., Payghan, P. V., Ghoshal, N., & Suresh Kumar, G. (2014). Binding of the iminium and alkanolamine forms of sanguinarine to lysozyme: Spectroscopic analysis, thermodynamics, and molecular modeling studies. The Journal of Physical Chemistry B, 118, 13077–13091.10.1021/jp5068704
  • Jyoti, K., Baunthiyal, M., & Singh, A. (2016). Characterization of silver nanoparticles synthesized using Urtica dioica Linn. leaves and their synergistic effects with antibiotics. Journal of Radiation Research and Applied Sciences, 9, 217–227.10.1016/j.jrras.2015.10.002
  • Kalimuthu, K., Suresh Babu, R., Venkataraman, D., Bilal, M., & Gurunathan, S. (2008). Biosynthesis of silver nanocrystals by Bacillus licheniformis. Colloids and Surfaces B: Biointerfaces, 65, 150–153.10.1016/j.colsurfb.2008.02.018
  • Khalil, A., Fihri, A., Jouiad, M., & Hashaikeh, R. (2014). Electrospun copper oxide nanoparticles as an efficient heterogeneous catalyst for N-arylation of indole. Tetrahedron Letters, 55, 5973–5975.10.1016/j.tetlet.2014.08.120
  • Lacerda, S. H., Park, J. J., Meuse, C., Pristinski, D., Becker, M. L., Karim, A., & Douglas, J. F. (2010). Interaction of gold nanoparticles with common human blood proteins. ACS Nano, 4, 365–379.10.1021/nn9011187
  • Lakowicz, J. R. (2006). Principles of fluorescence spectroscopy (3rd ed.). New York, NY: Springer.10.1007/978-0-387-46312-4
  • Lakowicz, J. R. (2013). Principles of fluorescence spectroscopy. Baltimore, MD: Springer.
  • Lin, J. J., Lin, W. C., Dong, R. X., & Hsu, S. H. (2012). The cellular responses and antibacterial activities of silver nanoparticles stabilized by different polymers. Nanotechnology, 23, 065102 (12pp.).
  • Lv, W., Tian, J., Deng, N., Wang, Y., Zhu, X., & Yao, X. (2015). Dual-immobilized copper catalyst: Carbon nitride-supported copper nanoparticles catalyzed oxidation of propargylic alcohols. Tetrahedron Letters, 56, 1312–1316.10.1016/j.tetlet.2015.01.177
  • MacDonald, B. C., Lvin, S. J., & Patterson, H. (1997). Correction of fluorescence inner filter effects and the partitioning of pyrene to dissolved organic carbon. Analytica Chimica Acta, 338, 155–162.10.1016/S0003-2670(96)00306-6
  • Mahato, M., Pal, P., Kamilya, T., Sarkar, R., Chaudhuri, A., & Talapatra, G. B. (2010). Hemoglobin–silver interaction and bioconjugate formation: A spectroscopic study. The Journal of Physical Chemistry B, 114, 7062–7070.10.1021/jp100188s
  • Matejka, P., Vlckova, B., Vohlidal, J., Pancoska, P., & Baumruk, V. (1992). The role of triton X-100 as an adsorbate and a molecular spacer on the surface of silver colloid: A surface-enhanced Raman scattering study. The Journal of Physical Chemistry, 96, 1361–1366.10.1021/j100182a063
  • Mátyus, L., Szöllősi, J., & Jenei, A. (2006). Steady-state fluorescence quenching applications for studying protein structure and dynamics. Journal of Photochemistry and Photobiology B: Biology, 83, 223–236.10.1016/j.jphotobiol.2005.12.017
  • Miller, J. N. (1984). Recent developments in fluorescence and chemiluminescence analysis. Plenary lecture. Analyst, 109, 191–198.10.1039/an9840900191
  • Murray, M. J., & Snowden, M. J. (1995). The preparation, characterisation and applications of colloidal microgels. Advances in Colloid and Interface Science, 54, 73–91.10.1016/0001-8686(94)00222-X
  • Navarro, J. R., & Werts, M. H. (2013). Resonant light scattering spectroscopy of gold, silver and gold-silver alloy nanoparticles and optical detection in microfluidic channels. The Analyst, 138, 583–592.10.1039/C2AN36135C
  • Naveenraj, S., Asiri, A. M., & Anandan, S. (2013). Interaction between serum albumins and sonochemically synthesized cadmium sulphide nanoparticles: A spectroscopic study. Journal of Nanoparticle Research, 15, 1671.10.1007/s11051-013-1671-9
  • Nishanta, R., Harris, C. S., & Towers, G. H. N. (2002). Antimicrobial activity of plants collected from serpentine outcrops in Sri Lanka. Pharmaceutical Biology, 40, 235–244.
  • Pishkar, L., Taheri, S., Makarem, S., Alizadeh Zeinabad, H., Rahimi, A., Saboury, A. A., & Falahati, M. (2016). Studies on the interaction between nanodiamond and human hemoglobin by surface tension measurement and spectroscopy methods. Journal of Biomolecular Structure & Dynamics, 12, 1–13.10.1080/07391102.2016.1155172
  • Roy, S., & Das, T. K. (2013). Activity of biosynthesized silver nanoparticles in combination with synthetic and natural fungicide against some pathogenic fungi. Asian Journal Chemistry, 25, S315–S317.
  • Saeidifar, M., Mansouri-Torshizi, H., & Akbar Saboury, A. (2015). Biophysical study on the interaction between two palladium(II) complexes and human serum albumin by multispectroscopic methods. Journal of Luminescence, 167, 391–398.10.1016/j.jlumin.2015.07.016
  • Sandros, M. G., Gao, D., Gokdemir, C., & Benson, D. E. (2005). General, high-affinity approach for the synthesis of fluorophore appended protein nanoparticle assemblies. Chemical Communications, 22, 2832–2834.10.1039/b501315a
  • Sen, I. K., Mandal, A. K., Chakraborti, S., Dey, B., Chakraborty, R., & Islam, S. S. (2013). Green synthesis of silver nanoparticles using glucan from mushroom and study of antibacterial activity. International Journal of Biological Macromolecules, 62, 439–449.10.1016/j.ijbiomac.2013.09.019
  • Selva Sharma, A., & Ilanchelian, M. (2015). Comprehensive multispectroscopic analysis on the interaction and corona formation of human serum albumin with gold/silver alloy nanoparticles. The Journal of Physical Chemistry B, 119, 9461–9476.10.1021/acs.jpcb.5b00436
  • Shahverdi, A. R., Minaeian, S., Shahverdi, H. R., Jamalifar, H., & Nohi, A. A. (2007). Rapid synthesis of silver nanoparticles using culture supernatants of Enterobacteria: A novel biological approach. Process Biochemistry, 42, 919–923.10.1016/j.procbio.2007.02.005
  • Shen, X. C., Liou, X. Y., Ye, L. P., Liang, H., & Wang, Z. Y. (2007). Spectroscopic studies on the interaction between human hemoglobin and CdS quantum dots. Journal of Colloid and Interface Science, 311, 400–406.10.1016/j.jcis.2007.03.006
  • Shiraishi, Y., & Toshima, N. (2000). Oxidation of ethylene catalyzed by colloidal dispersions of poly(sodium acrylate)-protected silver nanoclusters. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 169, 59–66.10.1016/S0927-7757(00)00417-9
  • Song, J. Y., Kwon, E. Y., & Kim, B. S. (2010). Biological synthesis of platinum nanoparticles using Diopyros kaki leaf extract. Bioprocess and Biosystems Engineering, 33, 159–164.10.1007/s00449-009-0373-2
  • Tian, J., Wong, K. K., Ho, C. M., Lok, C. N., Yu, W. Y., Che, C. M., … Tam, P. K. (2007). Topical delivery of silver nanoparticles promotes wound healing. ChemMedChem, 2, 129–136.10.1002/(ISSN)1860-7187
  • Xie, H., Tkachenko, A. G., Glomm, W. R., Ryan, J. A., Brennaman, M. K., Papanikolas, J. M., … Feldheim, D. L. (2003). Critical flocculation concentrations, binding isotherms, and ligand exchange properties of peptide-modified gold nanoparticles studied by UV−visible, fluorescence, and time-correlated single photon counting spectroscopies. Analytical Chemistry, 75, 5797–5805.10.1021/ac034578d
  • Yurderi, M., Bulut, A., Ertas, I. E., Zahmakiran, M., & Kaya, M. (2015). Supported copper–copper oxide nanoparticles as active, stable and low-cost catalyst in the methanolysis of ammonia–borane for chemical hydrogen storage. Applied Catalysis B: Environmental, 165, 169–175.10.1016/j.apcatb.2014.10.011
  • Zeinabad, H. A., Kachooei, E., Saboury, A. A., Kostova, I., Attar, F., Vaezzadeh, M., & Falahati, M. (2016). Thermodynamic and conformational changes of protein toward interaction with nanoparticles: A spectroscopic overview. RSC Advances, 6, 105903–105919.10.1039/C6RA16422F
  • Zeinabad, H. A., Zarrabian, A., Saboury, A. A., Alizadeh, A. M., & Falahati, M. (2016). Interaction of single and multi wall carbon nanotubes with the biological systems: Tau protein and PC12 cells as targets. Scientific Reports, 6, 26508.10.1038/srep26508
  • Zolghadri, S., Saboury, A. A., Amin, E., & Moosavi-Movahedi, A. A. (2010). A spectroscopic study on the interaction between ferric oxide nanoparticles and human hemoglobin. Journal of the Iranian Chemical Society, 7, S145–S153.10.1007/BF03246193
  • Zsila, F., Bikádi, Z., & Simonyi, M. (2003). Probing the binding of the flavonoid, quercetin to human serum albumin by circular dichroism, electronic absorption spectroscopy and molecular modelling methods. Biochemical Pharmacology, 65, 447–456.10.1016/S0006-2952(02)01521-6

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.