4.5 Article

In vitro and in vivo study of hazardous effects of Ag nanoparticles and Arginine-treated multi walled carbon nanotubes on blood cells: Application in hemodialysis membranes

Journal

JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A
Volume 103, Issue 9, Pages 2959-2965

Publisher

WILEY
DOI: 10.1002/jbm.a.35425

Keywords

Ag nanoperticle; MWNT-Arg; blood cells; hemocompatibility; toxicity

Funding

  1. High Impact Research Grant [UM.C/625/1/HIR/MOHE/ENG/45]
  2. UMRG [RP012B-13AET]
  3. Faculty of Engineering, University of Malaya, Malaysia

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One of the novel applications of the nanostructures is the modification and development of membranes for hemocompatibility of hemodialysis. The toxicity and hemocompatibility of Ag nanoparticles and arginine-treated multi-walled carbon nanotubes (MWNT-Arg) and possibility of their application in membrane technology are investigated here. MWNT-Arg is prepared by amidation reactions, followed by characterization by FTIR spectroscopy, Raman spectroscopy, and thermogravimetric analysis. The results showed a good hemocompatibility and the hemolytic rates in the presence of both MWNT-Arg and Ag nanoparticles. The hemolytic rate of Ag nanoparticles was lower than that of MWNT-Arg. In vivo study revealed that Ag nanoparticle and MWNT-Arg decreased Hematocrit and mean number of red blood cells (RBC) statistically at concentration of 100 mu g mL(-1). The mean decrease of RBC and Hematocrit for Ag nanoparticles (18% for Hematocrit and 5.8 x 1,000,000/mu L) was more than MWNT-Arg (20% for Hematocrit and 6 x 1000000/mu L). In addition, MWNT-Arg and Ag nanoparticles had a direct influence on the White Blood Cell (WBC) drop. Regarding both nanostructures, although the number of WBC increased in initial concentration, it decreased significantly at the concentration of 100 mu g mL(-1). It is worth mentioning that the toxicity of Ag nanoparticle on WBC was higher than that of MWNT-Arg. Because of potent antimicrobial activity and relative hemocompatibility, MWNT-Arg could be considered as a new candidate for biomedical applications in the future especially for hemodialysis membranes. (C) 2015 Wiley Periodicals, Inc.

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