Issue
Korean Journal of Chemical Engineering,
Vol.36, No.11, 1882-1889, 2019
Prolonged antimicrobial activity of silver core-carbon shell nanoparticles
Ag nanoparticles present good antimicrobial activity but with a potential toxicity to the cell, which limits the application. To address this issue, in this work, carbon-encapsulated sliver nanocapsules (Ag@C nanocapsules) were prepared by evaporating pure Ag ingot with the modified arc-discharge technique, and the Ag@C nanocapsules were acidified with nitric acid subsequently to facilitate the silver ion to release. Finally, Ag@C nanocapsules displayed a good and sustained antimicrobial activity against E. coli as a model of Gram-negative bacteria, due to the long-term release of sliver ions from Ag@C nanocapsules. The results obtained in this work indicate that the Ag@C nanocapsules may be a suitable nanomaterial for the bactericidal application.
[References]
  1. Taubes G, Science, 321, 356, 2008
  2. Huang LC, Narayanan S, Redfern RL, Mcdermott AM, Invest. Ophthalmol. Vis. Sci., 43, 82, 2002
  3. Javadpour MM, Juban MM, Lo WCJ, Bishop SM, Alberty JB, Cowell SM, Becker CL, Mclaughlin ML, J. Med. Chem., 39, 3107, 1996
  4. Asri LATW, Crismaru M, Roest S, Chen Y, Ivashenko O, Rudolf P, Tiller JC, van der Mei HC, Loontjens TJA, Busscher HJ, Adv. Funct. Mater., 24(3), 346, 2014
  5. Kazemzadeh-Narbat M, Lai BF, Ding C, Kizhakkedathu JN, Hancock RE, Wang R, Biomaterials, 34, 5969, 2013
  6. Waschinski CJ, Zimmermann J, Salz U, Hutzler R, Sadowski G, Tiller JC, Adv. Mater., 20(1), 104, 2008
  7. Makovitzki A, Avrahami D, Shai Y, Proc. Natl. Acad. Sci. U.S.A., 103, 15997, 2006
  8. Zumbuehl A, Ferreira L, Kuhn D, Astashkina A, Long L, Yeo Y, Iaconis T, Ghannoum M, Fink GR, Langer R, Kohane DS, Proc. Natl. Acad. Sci. U.S.A., 104, 12994, 2007
  9. Pritz S, Patzel M, Szeimies G, Dathe M, Bienert M, Org. Biomol. Chem., 5, 1789, 2007
  10. Pandey JK, Swarnkar RK, Soumya KK, Dwivedi P, Singh MK, Sundaram S, Gopal R, Appl. Biochem. Biotechnol., 174(3), 1021, 2014
  11. Zafar N, Shamaila S, Nazir J, Sharif R, Rafique MS, Ul-Hasan J, Ammara S, Khalid H, J. Mater. Sci. Technol., 32, 721, 2016
  12. Wang C, Wu S, Jian M, Xie J, Xu L, Yang X, Zheng Q, Zhang Y, Nano Res., 9, 1, 2016
  13. Ma XC, Dai Y, Yu L, Huang BB, Light: Science & Amp; Applications, 5, e16017 (2016).
  14. Rigo C, Ferroni L, Tocco I, Roman M, Munivrana I, Gardin C, Cairns WRL, Vindigni V, Azzena B, Barbante C, Zavan B, Int. J. Mol. Sci., 14(3), 4817, 2013
  15. Liu X, Lee PY, Ho CM, Lui VCH, Chen Y, Che CM, Tam PKH, Wong KKY, ChemMedChem, 5, 468, 2010
  16. Chernousova S, Epple M, Angew. Chem.-Int. Edit., 52, 1636, 2013
  17. Spadaro JA, Berger TJ, Barranco SD, Chapin SE, Becker RO, Antimicrob. Agents Chemother., 6, 637, 1974
  18. Rahisuddin, Al-Thabaiti SA, Khan Z, Manzoor N, Bioprocess. Biosyst. Eng., 38, 1773, 2015
  19. Slavin YN, Asnis J, Hafeli UO, Bach H, J. Nanobiotechnol., 15, 65, 2017
  20. Frohlich EE, Frohlich E, Int. J. Mol. Sci., 17, 509, 2016
  21. Siddiqi KS, Husen A, Rao RAK, J. Nanobiotechnol., 16, 14, 2018
  22. Marotta MCGRDG, J. Mater. Sci. - Mater. Med., 15, 831, 2004
  23. Espinosa-Cristobal LF, Martinez-Castanon GA, Martinez-Martinez RE, Loyola-Rodriguez JP, Patino-Marin N, Reyes-Macias JF, Ruiz F, Mater. Lett., 63, 2603, 2009
  24. Sotiriou GA, Pratsinis SE, Environ. Sci. Technol., 44, 5649, 2010
  25. Cao XL, Cheng C, Ma YL, Zhao CS, J. Mater. Sci. - Mater. Med., 21, 2861, 2010
  26. Kaviya S, Santhanalakshmi J, Viswanathan B, Muthumary J, Srinivasan K, Spectroc. Acta Pt. A-Molec. Biomolec. Spectr., 79, 594, 2011
  27. Kawashita M, Tsuneyama S, Miyaji F, Kokubo T, Kozuka H, Yamamoto K, Biomaterials, 21, 393, 2000
  28. Pal S, Tak YK, Song JM, Appl. Environ. Microbiol., 73, 1712, 2007
  29. Jaiswal S, Duffy B, Jaiswal AK, Stobie N, Mchale P, Int. J. Antimicrob. Agents, 36, 280, 2010
  30. Travan A, Pelillo C, Donati I, Marsich E, Benincasa M, Scarpa T, Semeraro S, Turco G, Gennaro R, Paoletti S, Biomacromolecules, 10(6), 1429, 2009
  31. Kora AJ, Manjusha R, Arunachalam J, Mater. Sci. Eng. C-Biomimetic Supramol. Syst., 29, 2104, 2009
  32. Xu X, Yang Q, Wang Y, Yu H, Chen X, Jing X, Eur. Polym. J., 42, 2081, 2006
  33. Hartemann P, Hoet P, Proykova A, Fernandes T, Baun A, De Jong W, Filser J, Hensten A, Kneuer C, Maillard JY, Norppa H, Scheringer M, Wijnhoven S, Mater. Today, 18, 122, 2015
  34. Dubey P, Matai I, Kumar SU, Sachdev A, Bhushan B, Gopinath P, Adv. Colloid Interface Sci., 221, 4, 2015
  35. Carrola J, Bastos V, Jarak I, Oliveira-Silva R, Malheiro E, Daniel-Da-Silva AL, Oliveira H, Santos C, Gil AM, Duarte IF, Nanotoxicology, 10, 1105, 2016
  36. Sahu SC, Zheng J, Graham L, Chen L, Ihrie J, Yourick JJ, Sprando RL, J. Appl. Toxicol., 34, 1155, 2014
  37. Jiang X, Lu C, Tang M, Yang Z, Jia W, Ma Y, Jia P, Pei D, Wang H, Acs Omega, 3, 6770, 2018
  38. Chernousova S, Epple M, Angew. Chem.-Int. Edit., 52, 1636, 2013
  39. Sileika TS, Kim HD, Maniak P, Messersmith PB, ACS Appl. Mater. Interfaces, 3, 4602, 2011
  40. Nie C, Yang Y, Cheng C, Ma L, Deng J, Wang L, Zhao C, Acta Biomater., 51, 479, 2017
  41. Li P, Jia Z, Wang Q, Tang P, Wang M, Wang K, Fang J, Zhao C, Ren F, Ge X, Lu X, J. Mater. Chem. B, 6, 7427, 2018
  42. Lv M, Su S, He Y, Huang Q, Hu WB, Li D, Fan CH, Lee ST, Adv. Mater., 22(48), 5463, 2010
  43. Rieger KA, Cho HJ, Yeung HF, Fan W, Schiffman JD, ACS Appl. Mater. Interfaces, 8, 3032, 2016
  44. Zhao L, Wang H, Huo K, Cui L, Zhang W, Ni H, Zhang Y, Wu Z, Chu PK, Biomaterials, 32, 5706, 2011
  45. Kong H, Jang J, Langmuir, 24(5), 2051, 2008
  46. Song J, Kang H, Lee C, Hwang SH, Jang J, ACS Appl. Mater. Interfaces, 4, 460, 2012
  47. Ahamed M, Alsalhi MS, Siddiqui MK, Clin. Chim. Acta, 411, 1841, 2010
  48. Harrison BS, Atala A, Biomaterials, 28, 344, 2007
  49. Tao CH, Chen T, Ma F, Liu H, Li X, Lin S, J. Nanosci. Nanotechnol., 19, 2211, 2019
  50. Qi Y, Xing TY, Zhao J, Weng GJ, Li JJ, Zhu J, Zhao JW, J. Alloy. Compd., 776, 934, 2019
  51. Wang H, Dai YY, Geng DY, Ma S, Li D, An J, He J, Liu W, Zhang ZD, Nanoscale, 7, 17312, 2015
  52. Karumuri AK, Oswal DP, Hostetler HA, Mukhopadhyay SM, Mater. Lett., 109, 83, 2013
  53. Choi O, Hu Z, Environ. Sci. Technol., 42, 4583, 2008
  54. Ruben MJ, Luis EJ, Alejandra C, Katherine H, Kouri JB, Tapia RJ, Jose YM, Nanotechnology, 16, 2346, 2005
  55. Holt KB, Bard AJ, Biochemistry, 44, 13214, 2005
  56. Sotiriou GA, Meyer A, Knijnenburg JTN, Panke S, Pratsinis SE, Langmuir, 28(45), 15929, 2012
  57. Hamouda T, Baker JR, J. Appl. Microbiol., 89(3), 397, 2000
  58. Sondi I, Salopek-Sondi B, J. Colloid Interface Sci., 275(1), 177, 2004
  59. Shahzad A, Saeed H, Iqtedar M, Hussain SZ, Kaleem A, Abdullah R, Sharif S, Naz S, Saleem F, Aihetasham A, Chaudhary A, J. Nanomater., 2019, 14, 2019
  60. Liao C, Li Y, Tjong SC, Int. J. Mol. Sci., 20, 449, 2019
  61. Gahlawat G, Shikha S, Chaddha BS, Chaudhuri SR, Mayilraj S, Choudhury AR, Microb. Cell Fact, 15, 25, 2016
  62. Behra R, Sigg L, Martin JDC, Herzog F, Minghetti M, Johnston B, Petri-Fink A, Rothen-Rutishauser B, J. Royal Society Interface, 10, 201303, 2013
  63. Jia YF, Steele CJ, Hayward IP, Thomas KM, Carbon, 36, 1299, 1998
  64. Toebes ML, Van Heeswijk JMP, Bitter JH, Jos Van Dillen A, De Jong KP, Carbon, 42, 307, 2004
  65. Amro NA, Kotra LP, Wadu-Mesthrige K, Bulychev A, Mobashery S, Liu GY, Langmuir, 16(6), 2789, 2000