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Original Articles

Histochemical changes in neonatal liver caused by vaginal instillation of magnetic nanoparticles in pregnant mice

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Pages 48-62 | Accepted 11 Jul 2015, Published online: 10 Nov 2015

References

  • Abdel Aziz HO, Awaad A (2014)Titanium dioxide (TiO2) nanoparticles induced apoptosis of splenocytes in adult male albino rat and the protective role of milk thistle seeds extract. Int. J. Adv. Res. 2: 732–746.
  • Ansari C, Tikhomirov GA, Hong SH, Falconer RA, Loadman PM, Gill JH, Castaneda R, Hazard FK, Tong L, Lenkov OD, Felsher DW, Rao J, Daldrup-Link HE (2014)Development of novel tumor-targeted the ranostic nanoparticles activated by membrane-type matrix metalloproteinases for combined cancer magnetic resonance imaging and therapy. Small 10: 566–575.
  • Austin CA, Umbreit TH, Brown KM, Barber DS, Dair BJ, Francke-Carroll S, Feswick A, Saint-Louis MA, Hikawa H, Siebein KN, Goering PL (2012)Distribution of silver nanoparticles in pregnant mice and developing embryos. Nanotoxicology 6: 912–922.
  • Awaad A, Nakamura M, Ishimura K (2012a)Histochemical and biochemical analysis of size-dependent nanoimmunoresponse in mouse Peyer's patches using fluorescent organosilica particles. Int. J. Nanomed. 7: 1423–1439.
  • Awaad A, Nakamura M, Ishimura, K (2012b)Imaging of size-dependent uptake and identification of novel pathways in mouse Peyer’s patches using fluorescent organosilica particles. Nanomedicine (London) 8: 627–636.
  • Bai W, Zhang Z, Tian W, He X, Ma Y, Zhao Y, Chai Z (2010)Toxicity of zinc oxide nanoparticles to zebrafish embryo: a physicochemical study of toxicity mechanism. J. Nanopart. Res. 12: 1645–1654.
  • Ballou B, Andreko SK, Osuna-Highley E, McRaven M, Catalone T (2012)Nanoparticle transport from mouse vagina to adjacent lymph nodes. PLoS ONE 7: e51995.
  • Bartneck M, Ritz T, Keul HA, Wambach M, Bornemann J, Gbureck U, Ehling J, Lammers T, Heymann F, Gassler N, Lüdde T, Trautwein C, Groll J, Tacke F (2012)Peptide-functionalized gold nanorods increase liver injury in hepatitis. Am. Chem. Soc. Nanotechnol. 6: 8767–8777.
  • Buchlowalow BI, Bocker W (2010) Immunohistochemistry. Basics and Methods. Springer Verlag, Berlin, Heidelberg. p. 48.
  • Cardiff RD, Miller CH, Munn RJ (2014)Manual hematoxylin and eosin staining of mouse tissue sections. C. S. Harb. Protoc. 2014: 655–658.
  • Chen J, Dong X, Zhao J, Tang G (2009)In vivo acute toxicity of titanium dioxide nanoparticles to mice after intraperitoneal injection. J. Appl. Toxicol. 29: 330–337.
  • Cho M, Cho WS, Choi M, Kim SJ, Han BS, Kim SH, Kim HO, Sheen YY, Jeong J (2009)The impact of size on tissue distribution and elimination by single intravenous injection of silica nanoparticles. Toxicol. Lett. 189: 177–183.
  • Choi JE, Kim S, Ahn JH, Youn P, Kang JS, Park K, Yi J, Ryu DY (2010)Induction of oxidative stress and apoptosis by silver nanoparticles in the liver of adult zebrafish. Aquat. Toxicol. 100: 151–159.
  • Chou CC, Hsiao HY, Hong QS, Chen CH, Peng YW, Chen HW, Yang PC (2008)Single-walled carbon nanotubes can induce pulmonary injury in mouse model. Nano. Lett. 8: 437–445.
  • Cu Y, Booth CJ, Saltzman WM (2011)In vivo distribution of surface-modified PLGA nanoparticles following intravaginal delivery. J. Control Rel. 156: 258–264
  • Deb K, Reese J, Paria BC (2006)Methodologies to study implantation in mice. Methods Mol. Med. 121: 9–34.
  • Duan J, Yu Y, Shi H, Tian L, Guo C, Huang P, Zhou X, Peng S, Sun Z (2013)Toxic effects of silica nanoparticles on zebrafish embryos and larvae. PLoS ONE 8: e74606.
  • Ghorpade AK (2011)Reactive perforating collagenosis with a giant lesion at the site of healed herpes zoster. Ind. J. Dermatol. Venereol Leprol. 77: 202–203.
  • Fubini B, Hubbard A (2003)Reactive oxygen species (ROS) and reactive nitrogen species (RNS) generation by silica in inflammation and fibrosis. Free Rad. Biol. Med. 34: 507–1516.
  • Grodzik M, Sawosz E (2006)The influence of silver nanoparticles on chicken embryo development and bursa of Fabricius morphology. J. Anim. Feed Sci. 15: 111–114.
  • Hayashi K, Shimizu T, Asano H, Sakamoto W, Yogo T (2008)Synthesis of spinel iron oxide nanoparticle/organic hybrid for hyperthermia. J. Mater. Res. 23: 3415–3424.
  • Hayashi K, Nakamura M, Sakamoto W, Yogo T, Miki H, Ozaki S, Abe M, Matsumoto T, Ishimura K (2013)Superparamagnetic nanoparticle clusters for cancer theranostics combining magnetic resonance imaging and hyperthermia treatment. Theranostics 23: 366–376.
  • Herovici C (1961)The histochemical detection of polysaccharides. The periodic acid Schiff (PAS) test. Pathol. Biol. (Paris) 9: 1961–1962.
  • Hu YL, Qi W, Han F, Shao JZ, Gao JQ (2011)Toxicity evaluation of biodegradable chitosan nanoparticles using a zebrafish embryo model. Int. J. Nanomedicine (London) 6: 3351–3359.
  • Jin C, Liu Y, Sun L, Chen T, Zhang Y, Zhao A, Wang X, Cristau M, Wang K, Jia W (2013)Metabolic profiling reveals disorder of carbohydrate metabolism in mouse fibroblast cells induced by titanium dioxide nanoparticles. J. Appl. Toxicol. 33: 1442–1450.
  • Johar D, Roth JC, Bay GH, Walker JN, Kroczak TJ, Los M (2004)Inflammatory response, reactive oxygen species, programmed (necrotic-like and apoptotic) cell death and cancer. Rocz. Akad. Med. Bialymst. 49: 31–39.
  • Junwu M, Slevin JC, Dawei Qu, McCormick S, Adamson SL (2008)In vivo quantification of embryonic and placental growth during gestation in mice using micro-ultrasound. Reprod. Biol. Endocrinol. 6: 1–13.
  • Kim MS, Louis KM, Pedersen JA, Hamers RJ, Peterson RE, Heideman W (2014)Using citrate-functionalized TiO2 nanoparticles to study the effect of particle size on zebrafish embryo toxicity. Analyst 139: 964–972.
  • Krejcí J, Pacherník J, Hampl A, Dvorák P (2008)In vitro labelling of mouse embryonic stem cells with SPIO nanoparticles. Gen. Physiol. Biophys. 27: 164–173.
  • Lin P, Chen JW, Chang LW, Wu JP, Redding L, Chang H, Yeh TK, Yang CS, Tsai MH, Wang HJ, Kuo YC, Yang RS (2008)Computational and ultrastructural toxicology of a nanoparticle, quantum dot 705, in mice. Environ. Sci. Technol. 42: 6264–6270.
  • Maity D, Chandrasekharan P, Yang CT, Chuang KH, Shuter B, Xue JM, Ding J, Feng SS (2010)Facile synthesis of water-stable magnetite nanoparticles for clinical MRI and magnetic hyperthermia applications. Nanomedicine (London) 5: 1571–1584.
  • Meyers JD, Doane T, Burda C, Basilion JP (2013)Nanoparticles for imaging and treating brain cancer. Nanomedicine (London) 1: 123–143.
  • Moussad EE, Brigstock DR (2000)Connective tissue growth factor: what’s in a name? Mol. Genet. Metab. 71: 276–292.
  • Nakamura M, Awaad A, Hayashi K, Ochiai K, Ishimura K (2012)Thiol-organosilica particles internally functionalized with propidium iodide as a multicolor fluorescence and x-ray computed tomography probe and application for non-invasive functional gastrointestinal tract imaging. Chem. Mater. 24: 3772–3779.
  • Nakamura M, Miyamoto K, Hayashi K, Awaad A, Ochiai M, Ishimura K (2013)Time-lapse fluorescence imaging and quantitative single cell and endosomal analysis of peritoneal macrophages using fluorescent organosilica nanoparticles. Nanomedicine (London) 9: 274–283.
  • Noori A, Parivar K, Modaresi M, Messripour M, Yousefi MH, Amiri GR (2011)Effect of magnetic iron oxide nanoparticles on pregnancy and testicular development of mice. Afr. J. Biotechnol. 10: 1221–1227.
  • Park MR, Gurunathan S, Choi YJ, Kwon DN, Han JW, Cho SG, Park C, Seo HG, Kim JH (2013)Chitosan nanoparticles cause pre- and post-implantation embryo complications in mice. Biol. Reprod. 88: 1–13.
  • Prasek M, Sawosz E, Jaworski S, Grodzik M, Ostaszewska T, Kamaszewski M, Wierzbicki M, Chwalibog A (2013)Influence of nanoparticles of platinum on chicken embryo development and brain morphology. Nanoscale Res. Lett. 8: 1–9.
  • Prodan AM, Iconaru SL, Ciobanu CS, Chifiriuc MC, Stoicea M, Predoi D (2013)Iron oxide magnetic nanoparticles: characterization and toxicity evaluation by in vitro and in vivo assays. J. Nanomater. 2013: 1–8.
  • Schipper ML, Nakayama-Ratchford N, Davis CR, Kam NWS, Chu P, Liu Z, Sun X, Dai H, Gambhir SS (2008)A pilot toxicology study of single-walled carbon nanotubes in a small sample of mice. Nat. Nanotech. 3: 216–221.
  • Seyedalipour B, Arefifar A, Khanbabaee R, Oshrieh M (2014)Toxicity properties of silver nanoparticles on lactate dehydrogenase activity and histological changes of heart and embryo tissues in pregnant mice (NMRI). J. Chem. Health Risks 4: 7–13.
  • Shukla RK, Kumar A, Gurbani D, Pandey AK, Singh S, Dhawan A (2013)TiO2 nanoparticles induce oxidative DNA damage and apoptosis in human liver cells. Nanotoxicology 7: 48–60.
  • Shundo C, Zhang H, Nakanishi T, Osaka T (2012)Cytotoxicity evaluation of magnetite (Fe3O4) nanoparticles in mouse embryonic stem cells. Colloids Surf. B. Biointerfaces 97: 221–225.
  • Takeda K, Suzuki K, Aki Ishihara A, Kubo-Irie M, Fujimoto R, Tabata M, Oshio S, Nihei Y, Ihara T, Sugamata M (2009)Nanoparticles transferred from pregnant mice to their offspring can damage the genital and cranial nerve systems. J. Health Sci. 55: 95–102.
  • Thakur M, Dayal N, Pai G, Joshi D (2014)Toxicity assessment of silver nanoparticles in zebrafish embryos. Mahatma Gandhi Mission Institute of Health Sciences J. Med. Sci. 1: 13–17.
  • Wabler M, Zhu W, Hedayati M, Attaluri A, Zhou H (2014)Magnetic resonance imaging contrast of iron oxide nanoparticles developed for hyperthermia is dominated by iron content. Int. J. Hypertherm. 30: 192–200.
  • Wankhede M, Bouras A, Kaluzova M, Hadjipanayis CG (2012)Magnetic nanoparticles: an emerging technology for malignant brain tumor imaging and therapy. Exp. Rev. Clin. Pharmacol. 5: 173–186.
  • Wu J, Wang C, Sun J, Xue Y (2011)Neurotoxicity of silica nanoparticles: Brain localization and dopaminergic neurons damage pathways. Am. Chem. Soc. Nanotechnol. 5: 4476–4489.
  • Yamashita K, Yoshioka Y, Higashisaka K, Mimura K, Morishita Y, Nozaki M, Yoshida T, Ogura T, Nabeshi H, Nagano K, Abe Y, Kamada H, Monobe Y, Imazawa T, Aoshima H, Shishido K, Kawai Y, Mayumi T, Tsunoda S, Itoh N, Yoshikawa T, Yanagihara I, Saito S, Tsutsumi Y (2011)Silica and titanium dioxide nanoparticles cause pregnancy complications in mice. Nat. Nanotechnol. 6: 321–328.
  • Yu WJ, Son JM, Lee J, Kim SH, Lee IC, Baek HS, Shin IS, Moon C, Kim SH, Kim JC (2013)Effects of silver nanoparticles on pregnant dams and embryo-fetal development in rats. Nanotoxicology 1: 85–91.

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