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Articles

Organelles and chromatin fragmentation of human umbilical vein endothelial cell influence by the effects of zeta potential and size of silver nanoparticles in different manners

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Pages 817-823 | Received 08 Feb 2016, Accepted 10 Apr 2016, Published online: 10 May 2016

References

  • Bennett J, St Geme JW III. 1999. Bacterial resistance and antibiotic use in the emergency department. Pediatr Clin North Am. 46:1125–1143.
  • Bhattacharjee S, de Haan LH, Evers NM, Jiang X, Marcelis AT, Zuilhof H, Rietjens IM, Alink GM. 2010. Role of surface charge and oxidative stress in cytotoxicity of organic monolayer-coated silicon nanoparticles towards macrophage NR8383 cells. Part Fibre Toxicol. 7:25.
  • Cho EC, Xie J, Wurm PA, Xia Y. 2009. Understanding the role of surface charges in cellular adsorption versus internalization by selectively removing gold nanoparticles on the cell surface with a I2/KI etchant. Nano Lett. 9:1080–1084.
  • Choi O, Hu Z. 2008. Size dependent and reactive oxygen species related nanosilver toxicity to nitrifying bacteria. Environ Sci Technol. 42:4583–4588.
  • Clogston JD. Patri AK. 2011. Zeta potential measurement. In: McNeil SE, Ed. Characterization of Nanoparticles Intended for Drug Delivery. New York: Humana Press, pp. 63–70.
  • Colwell LJ, Brenner MP, Ribbeck K. 2010. Charge as a selection criterion for translocation through the nuclear pore complex. PLoS Comput Biol. 6:e1000747.
  • Eckhardt S, Brunetto PS, Gagnon J, Priebe M, Giese B, Fromm KM. 2013. Nanobio silver: its interactions with peptides and bacteria, and its uses in medicine. Chem Rev. 113:4708–4754.
  • Feldherr CM, Akin D. 1991. Signal-mediated nuclear transport in proliferating and growth-arrested BALB/c 3T3 cells. J Cell Biol. 115:933–939.
  • García-Alonso J, Khan FR, Misra SK, Turmaine M, Smith BD, Rainbow PS, Luoma SN, Valsami-Jones E. 2011. Cellular internalization of silver nanoparticles in gut epithelia of the estuarine polychaete Nereis diversicolor. Environ Sci Technol. 45:4630–4636.
  • Gerson M. 2002. A Cancer Therapy. 6th ed. Gerson Institute. ISBN-13: 978-0961152628.
  • Ghinea N, Simionescu N. 1985. Anionized and cationized hemeundecapeptides as probes for cell surface charge and permeability studies: differentiated labeling of endothelial plasmalemmal vesicles. J Cell Biol. 100:606–612.
  • Gupta A, Phung LT, Taylor DE, Silver S. 2001. Diversity of silver resistance genes in IncH incompatibility group plasmids. Microbiology (Reading, Engl.). 147:3393–3402.
  • Heit B, Yeung T, Grinstein S. 2011. Changes in mitochondrial surface charge mediate recruitment of signaling molecules during apoptosis. AmJ Physiol Cell Physiol. 300:C33–C41.
  • Hekmat A, Saboury AA, Divsalar A. 2012. The effects of silver nanoparticles and doxorubicin combination on DNA structure and its antiproliferative effect against T47D and MCF7 cell lines. J Biomed Nanotechnol. 8:968–982.
  • I Batarseh K, A Smith M. 2012. Synergistic activities of a silver (I) glutamic acid complex and reactive oxygen species (ROS): a novel antimicrobial and chemotherapeutic agent. Curr Med Chem. 19:3635–3640.
  • Ivask A, Kurvet I, Kasemets K, Blinova I, Aruoja V, Suppi S, et al. 2014. Size-dependent toxicity of silver nanoparticles to bacteria, yeast, algae, crustaceans and mammalian cells in vitro. PLoS One. 9:e102108.
  • Kaur J, Tikoo K. 2012. Evaluating cell specific cytotoxicity of differentially charged silver nanoparticles. Food Chem Toxicol. 51:1–14.
  • Lash LH. 2006. Mitochondrial glutathione transport: physiological, pathological and toxicological implications. Chem-Biol Interact. 163:54–67.
  • Liu G, Li D, Pasumarthy MK, Kowalczyk TH, Gedeon CR, Hyatt SL, et al. 2003. Nanoparticles of compacted DNA transfect postmitotic cells. J Biol Chem. 278:32578–32586.
  • Ma J, Lu X, Huang Y. 2011. Genomic analysis of cytotoxicity response to nanosilver in human dermal fibroblasts. J Biomed Nanotechnol. 7:263–275.
  • Mycielska ME, Patel A, Rizaner N, Mazurek MP, Keun H, Patel A, Ganapathy V, Djamgoz M. 2009. Citrate transport and metabolism in mammalian cells: prostate epithelial cells and prostate cancer. Bioessays. 31:10–20.
  • Nel AE, Mädler L, Velegol D, Xia T, Hoek EM, Somasundaran P, et al. 2009. Understanding biophysicochemical interactions at the nano-bio interface. Nat Mater. 8:543–557.
  • Nirmala R, Kang HS, Park HM, Navamathavan R, Jeong IS, Kim HY. 2012. Silver-loaded biomimetic hydroxyapatite grafted poly (ɛ-caprolactone) composite nanofibers: a cytotoxicity study. J Biomed Nanotechnol. 8:125–132.
  • Pillai ZS, Kamat PV. 2004. What factors control the size and shape of silver nanoparticles in the citrate ion reduction method? J Phys Chem B. 108:945–951.
  • Seiler M, Venkatachalam M, Cotran R. 1975. Glomerular epithelium: structural alterations induced by polycations. Science. 189:390–393.
  • Serdiuk T, Alekseev S, Lysenko V, Skryshevsky V, Géloën A. 2012. Charge-driven selective localization of fluorescent nanoparticles in live cells. Nanotechnology. 23:315101.
  • Sotiriou GA, Pratsinis SE. 2011. Engineering nanosilver as an antibacterial, biosensor and bioimaging material. Curr Opin Chem Eng. 1:3–10.
  • Tagliazucchi M, Peleg O, Kröger M, Rabin Y, Szleifer I. 2013. Effect of charge, hydrophobicity, and sequence of nucleoporins on the translocation of model particles through the nuclear pore complex. Proc Natl Acad Sci. 110:3363–3368.
  • Tavakol S. 2014. Acidic pH derived from cancer cells may induce failed reprogramming of normal differentiated cells adjacent tumor cells and turn them into cancer cells. Med Hypotheses. 83:668–672.
  • Tavakol S, Nikpour MR, Hoveizi E, Tavakol B, Rezayat SM, Adabi M, Abokheili SS, Jahanshahi M. 2014. Investigating the effects of particle size and chemical structure on cytotoxicity and bacteriostatic potential of nano hydroxyapatite/chitosan/silica and nano hydroxyapatite/chitosan/silver; as antibacterial bone substitutes. J Nanoparticle Res. 16:1–13.
  • Vaidyanathan R, Kalishwaralal K, Gopalram S, Gurunathan S. 2009. Nanosilver-the burgeoning therapeutic molecule and its green synthesis. Biotechnol Adv. 27:924–937.
  • Wu YL, Putcha N, Ng KW, Leong DT, Lim CT, Loo SCJ, Chen X. 2012. Biophysical responses upon the interaction of nanomaterials with cellular interfaces. Acc Chem Res. 46:782–791.

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