- Afaq, F., Abidi, P., Matin, R., Rahman, Q. (1998). Cytotoxicity, prooxidant effects and antioxidant depletion in rat lung alveolar macrophages exposed to ultra-fine titanium dioxide. Applied Toxicology, 18: 307-312.
- Ahamed M, Posgai R, Gorey TJ, Nielsen M, Hussain SM, Rowe JJ. (2010). Silver nanoparticles induced heat shock protein 70, oxidative stress and apoptosis in Drosophila melanogaster. Toxicology and Applied Pharmacology. , 242(3):263-9, PMID: 19874832. Abstract
- Ainslie, K.M., Bachelder, E.M. et al. (December 2007). Macrophage cell adhesion and inflammation cytokines on magnetostrictive nanowires. Nanotoxicology, 1(4): 279-290. Abstract.
- Asakura M, Sasaki T, Sugiyama T, Takaya M, Koda S, Nagano K, Arito H, Fukushima S. (2010). Genotoxicity and cytotoxicity of multi-wall carbon nanotubes in cultured Chinese hamster lung cells in comparison with chrysotile A fibers. Journal of Occupational Health, 52(3):155-66.PMID: 20379079Abstract.
- Bastian, S., Busch, W., Kuhnel, D., Springer, A., Miebner, T., Holke, R., Scholz, S., Iwe, M., POmpe, W., Gelinsky, M., Potthoff, A., Richter, V., Ikonomidou, C., Schirmer, K. (2009). Toxicity of tungsten carbide and cobalt-doped tungsten carbide nanoparticles in mammalian cells in vitro. Environmental Health Perspectives, 117(4): 530-536. Article.
- Beck-Speier, I., Dayal, N., Karg, E., Maier, K. L., Roth, C., Ziesenis, A., & Heyder, J. (2001). Agglomerates of ultrafine particles of elemental carbon and Ti)2 induce generation of lipid mediators in alveolar macrophages. Environmental Health Perspectives, 109(4), 613-618.
- Berg,. J. M Romoser, A., Banerjee, N., Zebda, R., Sayes, C. M.(2009).The relationship between pH and zeta potential of 30 nm metal oxide nanoparticle suspensions relevant to in vitro toxicological evaluations. Nanotoxicology, 3(4), 276-283. Abstract.
- Bosi, S., Feruglio, L., Da Ros, T., Spalluto, G., Gregoretti, B., Terdoslavich, M., Decorti, G,,Passamonti, S., Moro, S. & Prato, M. (2004). Hemolytic effects of water-soluble fullerene derivatives. Journal of Medicinal Chemistry, 47: 6711-6715.
- Bottini, M., Bruckner, S., Nika, K., Bottini, N., Bellucci, S., Magrini, A., Bergamaschi, A., & Mustelin, T. (2006). Multi-walled carbon nanotubes induce T lymphocyte apoptosis. Toxicology Letters 160: 121-126. Abstract.
- Braydich-Stolle L, Hussain S, Schlager JJ, Hofmann MC. (2005). In Vitro cytotoxicity of nanoparticles in mammalian germline stem cells. Toxicol Sci., 88(2):412-419.
- Cha, Eun, K., Myung, H. (September 2007). Cytotoxic effects of nanoparticles assessed in vitro and in vivo. Journal of microbiology and biotechnology, 17 (9): 1573-1578.
- Chen, H. H., Yu, C., Ueng, T. H., Chen, S., Chen, B. J., Huang, K. J., & Chiang, L. Y. (1998). Acute and subacute toxicity study of water-soluble polyalkylsulfonated C60 in rats. Toxicologic Pathology, 26, 143-151.
- Chen, Z., Meng, H., Yuan, H. et al. (June 2007). Identification of target organs of copper nanoparticles with ICP-MS technique. Journal of radioanalytical and nuclear chemistry, 272 (3): 599-603.
- Chen, Z., Meng, H., Xing, G.M., Chen, C.Y., Zhao, Y.L. (2007). Toxicological and biological effects of nanomaterials. International Journal of Nanotechnology, 4(1-2): 179-196. Abstract.
- Chen Z, Meng HA, et al. (May 2006). Acute toxicological effects of copper nanoparticles in vivo. Toxicology letters [0378-4274], 163(2): 109 -120. Article
- Chlopek J., Czajkowska B., Szaraniec, B., Frackowiak, E., Szostak, K., Béguin, F. (2006). In vitro studies of carbon nanotubes biocompatibility. Carbon, 44: 1106–1111
- Choi, SJ; Oh, JM; Choy, JH. (2008). Human-related application and nanotoxicology of inorganic particles: complementary aspects. Journal of materials chemistry, 18(6): 615-620. Abstract.
- Chun, J. Y., Kang, H. K., Jeong, L., Kanga, Y. O., Oh, J. E., Yeo, I. S., Jung, S. Y., Park, W. H. (2010). Epidermal cellular response to poly(vinyl alcohol) nanofibers containing silver nanoparticles Colloids and Surfaces B: Biointerfaces , 78 (2): 334-342 . Abstract
- Coccini T, Roda E, Sarigiannis DA, Mustarelli P, Quartarone E, Profumo A, Manzo L. (2010). Effects of water-soluble functionalized multi-walled carbon nanotubes examined by different cytotoxicity methods in human astrocyte D384 and lung A549 cells. Toxicology, 269(1):41-53. PMID: 20079395. Abstract
- Colognato, R., Bonelli, A. et al. (December 2007). Analysis of cobalt ferrite nanoparticles induced genotoxicity on human peripheral lymphocytes: comparison of size and organic grafting-dependent effects. Nanotoxicology, 1(4): 301-308. Abstract.
- Crouzier D, Follot S, Gentilhomme E, Flahaut E, Arnaud R, Dabouis V, Castellarin C, Debouzy JC. (2010). Carbon nanotubes induce inflammation but decrease the production of reactive oxygen species in lung. Toxicology, 272(1-3):39-45, PMID: 20381574. Abstract.
- Cui, D., Tian, F., Ozkan, C. S., Wang, J. & Gao, H. (2005). Effect of single wall carbon nanotubes on human HEK293 cells. Toxicology Letters, 155, 73-85.
- Dailey, L.A., Jekel, N., Fink, L., Gessler, T., Schmehl, T., Wittmar, M., Kissel, T., and Seeger, W. (August 2006). Investigation of the proinflammatory potential of biodegradable nanoparticle drug delivery systems in the lung. Toxicology and Applied Pharmacology. Volume 215, Issue 1: 100-108. Abstract. Article
- Darne, C., Terzetti1, F., Coulais, C., Fournier, J., Guichard, Y., Gaté, L., and S. Binet (2010). In Vitro Cytotoxicity and Transforming Potential of Industrial Carbon Dust (Fibers and Particles) in Syrian Hamster Embryo (SHE) Cells. Annals of Occupational Hygiene. Advance access online: doi:10.1093/annhyg/meq012 . Abstract
- Deguchi, S; Yamazaki, T; Mukai, S; Usami, R; Horikoshi, K. (June 2007). Stabilization of C-60 nanoparticles by protein adsorption and its implications for toxicity studies. Chemical Research In Toxicology, 20 (6): 854-858. Abstract.
- Deng, F., Olesen, P., Foldbjerg, R., Dang, D. A., Guo, X., Autrup, H. (2010). Silver nanoparticles up-regulate Connexin43 expression and increase gap junctional intercellular communication in human lung adenocarcinoma cell line A549 Nanotoxicology , 4(2): 186-195, DOI 10.3109/17435390903576451. Abstract
- Derfus, A. M., Chan, W. C. W., Bhatia, S. N. 2003. Probing the cytotoxicity of semiconductor quantum dots. Nano Letters, 4(1), 11-18.
- De Nicola, M., Gattia, D.M., Bellucci, S. et al. (October 2007). Effect of different carbon nanotubes on cell viability and proliferation. Journal of Physics-Condensed Matter, 39, 395013. Abstract
- Ding, J., Taob, K., Lia, J. (2010. Cell-specific cytotoxicity of dextran-stabilized magnetite nanoparticles. Colloids and Surfaces B: Biointerfaces.
79(1):184-190. Abstract
- Donaldson, K. Aitken, R., Tran, L., Stone, V., Duffin, R., Forrest, G., and Alexander, A. (2006). Carbon nanotubes: A review of their properties in relation to pulmonary toxicological and workplace safety. Toxicological Sciences, 92(1):5-22 Article
- Duffin, R., Tran, L., Brown, D., Stone, V., Donaldson, K. (2007). Proinflammogenic effects of low-toxicity and metal nanoparticles in vivo and in vitro: Highlighting the role of particle surface area and surface reactivity. Inhalation Toxicology, 19 (10): 849-856.
- Dumortier, H., Lacotte, S., Pastorin, G., Marega, R., Wu, W., Bonifazi, D., Briand, J.P., Prato, M., Muller, S., and Bianco, A. (2006). Functionalized Carbon Nanotubes Are Non-Cytotoxic and Preserve the Functionality of Primary Immune Cells. Nano Letters, 6 (7), 1522 -1528. Abstract. Article
- Elder, A., Yang, H., Gwiazda, R. (October 2007). Testing nanomaterials of unknown toxicity: An example based on platinum nanoparticles of different shapes. Advanced materials, 19 (20): 3124. Abstract.
- Federici, G., Shaw, B.J., Handy, R.D. (October 2007). Toxicity of titanium dioxide nanoparticles to rainbow trout (Oncorhynchus mykiss): Gill injury, oxidative stress, and other physiological effects. Aquatic Toxicology, 84 (4): 415-430.
- Fiorito, S., Serafino, A., Andreola, F., Togna, A., Bernier, P. (2006). Effects of fullerenes and single-wall carbon nanotubes on murine and human macrophages. Carbon, 44: 1100–1105
- Flahaut E., Durrieu M.C., Remy-Zolghadri M., Bareille, R., Baquey, C. (2006). Investigation of the cytotoxicity of CCVD carbon nanotubes towards human umbilical vein endothelial cells. Carbon, 44: 1093–1099
- Foldbjerg R, Olesen P, Hougaard M, Dang DA, Hoffmann HJ, Autrup H.(2009). PVP-coated silver nanoparticles and silver ions induce reactive oxygen species, apoptosis and necrosis in THP-1 monocytes. Toxicology Letters , 190(2):156-62.PMID: 19607894Abstract
- Foley, S., Curtis, A.D.M, Hirsch, A., Brettreich, M., Pelegrin, A., Seta, P., Larroque, C. (2002). Interaction of a water soluble fullerene derivative with reactive oxygen species and model enzymatic systems. Fullerenes, Nanotubes, Carbon Nanostructures, 10: 49-67.
- Franklin, N.M., Rogers, N.J., Apte, S.C. (2007). Comparative Toxicity of Nanoparticulate ZnO, Bulk ZnO, and ZnCl2 to a Freshwater Microalga (Pseudokirchneriella subcapitata): The Importance of Particle Solubility. Environ. Sci. Technol. Abstract
- Gao, J., Wang, H. L., Shreve, A. and Iyer, R. (2010). Fullerene derivatives induce premature senescence: A new toxicity paradigm or novel biomedical applications. Toxicology and Applied Pharmacology. 224(2): 130-143. Abstract
- Gatti, AM; Kirkpatrick, J; Gambarelli, A. et al. (April 2008). ESEM evaluations of muscle/nanoparticles interface in a rat model. Journal of materials science, 19(4): 1515-1522. Abstract
- Gerloff, K., Albrecht, C., Boots, A. W., Foumlrster, I., Schins, R. P. F.(2009). Cytotoxicity and oxidative DNA damage by nanoparticles in human intestinal Caco-2 cells. Nanotoxicology, 3(4): 355-364. Abstract
- Gou N, Onnis-Hayden A, Gu AZ. (2010). Mechanistic toxicity assessment of nanomaterials by whole-cell-array stress genes expression analysis. Environmental Science & Technology, 44(15):5964-70. PMID: 20586443. Abstract
- Grabinski, C., Hussain, S. et al. (November 2007). Effect of particle dimension on biocompatibility of carbon nanomaterials. Carbon, 45 (14): 2828-2835.
- Grassian, V.H., Adamcakova-Dodd, A., Pettibone, J.M. et al. (September 2007). Inflammatory response of mice to manufactured titanium dioxide nanoparticles: Comparison of size effects through different exposure routes. Nanotoxicology, 1(3): 211-226. Article
- Grassian, V.H., O’Shaughnessy, P.T., Adamcakova-Dodd, Q., Pettibone, J.M., Thorne, P.S. (March 2007). Inhalation Exposure Study of Titanium Dioxide Nanoparticles with a Primary Particle Size of 2 to 5 nm. Environ Health Perspect, 115(3): 397–402. Article.
- Griffitt, R.J., Weil, R., Hyndman, K.A. (2007). Exposure to Copper Nanoparticles Causes Gill Injury and Acute Lethality in Zebrafish (Danio rerio). Environ. Sci. Technol. Abstract
- Grigg, J., Tellabati, B., Rhead, S., Almeida G.M., Higgins, J. A., Bowman, K. J., Jones, G. D., Howes, P. B. (2009). DNA damage of macrophages at an air-tissue interface induced by metal nanoparticles. Nanotoxicology, 3(4): 348-354. Abstract
- Grubek-Jaworska, H., Nejman P., Czumin´ska, K., Przybylowski, T., Huczko, A., Lange, H., Bystrzejewski, M., Baranowski, P., Chazan, R. (2006). Preliminary results on the pathogenic effects of intratracheal exposure to one-dimensional nanocarbons. Carbon, 44: 1057–1063
- Guo, G.N., Liu, W., Liang, J.G., He, Z.K., Xu, H.B., Yang, X.L. (April 2007). Probing the cytotoxicity of CdSe quantum dots with surface modification. Material Letters, 61(8-9): 1641-1644. Abstract.
- Hamilton Jr, R.F., Buford, M.C., Wood, M.B. et al. (June 2007). Engineered carbon nanoparticles alter macrophage immune function and initiate airway hyper-responsiveness in the BALB/c mouse model. Nanotoxicology, 1(2): 104-117. Article
- Han, SG; Andrews, R; Gairola, CG; Bhalla, DK. Acute pulmonary effects of combined exposure to carbon nanotubes and ozone in mice. Inhalation Toxicology, 20(4): 391-398.
- Handy, RD; Owen, R; Valsami-Jones, E. (July 2008). The ecotoxicology of nanoparticles and nanomaterials: current status, knowledge gaps, challenges, and future needs. Ecotoxicology, 17(5): 315-447. Abstract
- Handy, R.D., Shaw, B.J. (June 2007). Toxic effects of nanoparticles and nanomaterials: Implications for public health, risk assessment and the public perception of nanotechnology. Health, Risk & Society, 9(2), 125-144. Abstract
- Harper, S.L., Dahl, J.A. et al (2008). Proactively designing nanomaterials to enhance performance and minimise hazard. International Journal of Nanotechnology, 5(1): 124 - 142. Abstract
- Helland, A., Wick, P., Koehler, A., Schmid, K. and Som, C. (2007). Reviewing the Environmental and Human Health Knowledge Base of Carbon Nanotubes. Environmental Health Perspectives, 115: 1125–1131. Abstract.
- Herve-Bazin B. (May-June 2006). Potential health impacts of nanoparticles. Annales de chimie - Science des Matériaux, [0151-9107] Vol 31, iss 3: 339 -350
- Herzog, E, Byrne, H. J., Casey, A., Davoren, M., Lenz, A. G., Maier, K.L., Duschl, A., Oostingh, G. J. (2008). SWCNT suppress inflammatory mediator responses in human lung epithelium in vitro. Toxicology and Applied Pharmacology , 234(3): 378-390.
- Hirano S, Fujitani Y, Furuyama A, Kanno S. (2010). Uptake and cytotoxic effects of multi-walled carbon nanotubes in human bronchial epithelial cells. Toxicology & Applied Pharmacology, EPub Ahead of Print, PMID: 20800606. Abstract.
- Hoffmann, S.R., Shafer, M.M., Armstrong, D.E. (2007). Strong Colloidal and Dissolved Organic Ligands Binding Copper and Zinc in Rivers. Environ. Sci. Technol., 41 (20): 6996-7002. Abstract
- Hoshino, A., Fujioka, K., Oku, T., Suga, M., Sasaki, Y. F., Ohta, T., Hasuhara, M., Suzuki, K., & Yamamoto, K. (2004). Physicochemical properties and cellular toxicity of nanocrystal quantum dots depend on their surface modification. Nano Letters, 4(11): 2163-2169.
- - NEW - Inoue, K. (2011). Promoting effects of nanoparticles/materials on sensitive lung inflammatory diseases Environmental Health and Preventive Medicine
16(3): 139-143, DOI: 10.1007/s12199-010-0177-7Abstract.
- Isakovic, A., Markovic, Z., Todorovic-Markovic, T., Nikolic, N., Vranjes-Djuric, S., Mirkovic, M., Dramicanin, M., Harhaji, L., Raicevic, N., Nikolic, Z., & Trajkovic, V. (2006). Distinct cytotoxic mechanisms of pristine versus hydroxylated fullerene. Toxicological Sciences . Abstract
- Jain, A.K., Mehra, N.K., Lodhi, N. et al. (September 2007). Carbon nanotubes and their toxicity. Nanotoxicology, 1(3): 167-197. Article
- Jalava, P.I., Salonen, R.O. et al. (March 2007). Heterogeneities in Inflammatory and Cytotoxic Responses of RAW 264.7 Macrophage Cell Line to Urban Air Coarse, Fine, and Ultrafine Particles From Six European Sampling Campaigns. Inhalation Toxicology, 19(3): 213 - 225. Abstract
- Jang J, Lim DH, Choi IH. (2010). The impact of nanomaterials in immune system. Immune Netw June 10(3: 85-91. Abstract
- Jeng, H.A., Swanson, J. (December 2006). Toxicity of Metal Oxide Nanoparticles in Mammalian Cells. Journal of Environmental Science and Health, Part A: Toxic/Hazardous Substances & Environmental Engineering. , Volume 41, Number 12: 2699 – 2711.
- Jia, G., Wang, H., Yan, L., Wang, X., Pei, R., Yan, T., Zhao, Y., & Guo, X. (2005). Cytotoxicity of carbon nanomaterials: Single-wall nanotube, multi-wall nanotube, and fullerene. Environmental Science & Technology, 39(5): 1378-1383.
- Jin, Y., Kannan, S., Wu,M. and Zhao, J.X. (2007). Toxicity of Luminescent Silica Nanoparticles to Living Cells. Chem. Res. Toxicol., Abstract
- Johnston, H. J., Hutchison, G. R., Christensen, F. M., Aschberger, D., and Stone, V. (2010). The Biological Mechanisms and Physicochemical Characteristics Responsible for Driving Fullerene Toxicity. Toxicological Sciences. 114(2): 162-182. Abstract
- Johnston, H. J., Hutchison, G. R., Christensen, F. M., Peters, S., Hankin, S., Aschberger, K., Stone, V. (2010). A critical review of the biological mechanisms underlying the in vivo and in vitro toxicity of carbon nanotubes: The contribution of physico-chemical characteristics. Nanotoxicology. 4(2): 207-246, DOI 10.3109/17435390903569639. Abstract
- Kagan, V.E., Tyurina, Y.Y., Tyurin, V.A., Konduru, N.V., Potapovich, A.I., Osipov, A.N., Kisin, E.R., Schwegler-Berry, D., Mercer, R., Castranova, V. and Shvedova, A.A. (2006). Direct and indirect effects of single walled carbon nanotubes on RAW 264.7 macrophages: Role of iron. Toxicology Letters, 165: 88-100. Abstract. Article
- Kai, Y., Komazawa, Y., Miyajima, A., Miyata, N. & Yamakoshi, Y. (2003). 60 fullerene as a novel photoinduced antibiotic. Fullerene & Nanotube Carbon Nanostructures, 11, 79-87.
- Kaiser, JP; Wick, P; Manser, P; Spohn, P; Bruinink, A. (April 2008). Single walled carbon nanotubes (SWCNT) affect cell physiology and cell architecture. Journal of materials science. Materials in medicine, 19 (4): 1523-1527. Abstract
- Kamat, J.P., Devasagayam, T.P.A., Mohan, H., Chiang, L.Y., Mitall, J.P. (1998) Effect of C-60(OH)(18) on membranes of rat liver microsomes during photosensitization. Fullerene Science and Technology, 6: 663-679.
- Kamat, J.P., Devasagayam, T.P.A., Priyadarsini, K.I., Mohan, H. (2000). Reactive oxygen species mediated membrane damage induced by fullerene derivatives and its possible biological implications. Toxicology, 155: 55-61.
- Kamat, J. P., Debasagayam, T. P., Priyadarsini, K. I., Mohan, H. & Mittal, J.P. (1998) Oxidative damage induced by the fullerenes C60 on photosensitization in rat liver microscomes. Chem. Biol. Interact. 114, 145-159.
- Kawata, K., Osawa, M., Okabe, S.(2009). In vitro toxicity of silver nanoparticles at noncytotoxic doses to HepG2 human hepatoma cells.Environmental Science and Technology,43(15):6046-51. Abstract
- Ke, P.C., Qiao, R. (September 2007). Carbon nanomaterials in biological systems. Journal Of Physics-Condensed Matter, 19 (37). Abstract
- Khan, JA; Pillai, B; Das, TK et al. (July 2007). Molecular effects of uptake of gold nanoparticles in HeLa cells. Chembiochem., 8 (11): 1237-1240. Article.
- Ji-Eun Kim; Hwang-Tae Lima; Arash Minai-Tehrani; Jung-Taek Kwon; Ji-Young Shin; Chang-Gyu Woo; Mansoo Choi; Jongho Baek; Dae Hong Jeong; Yoon-Cheo Hae; Chan-Hee Chae; Kyung-Suk Song; Kang-Ho Ah; Ji-Hyun Lee; Ha-Jung Sung; Il-Je Yu; George R. Beck Jr.; Myung-Haing Cho (2010). Toxicity and Clearance of Intratracheally Administered Multiwalled Carbon Nanotubes from Murine Lung Journal of Toxicology and Environmental Health, Part A, 73(21 & 22): 1530 - 1543. Abstract.
- Kim, J. S., Song, K. S., Joo, H. J., Lee, J. H., Yu, I. L.(2010). Determination of Cytotoxicity Attributed to Multiwall Carbon Nanotubes (MWCNT) in Normal Human Embryonic Lung Cell (WI-38) Line. Journal of Toxicology and Environmental Health, Part A, 73(21-22): 1521-1529. Abstract.
- Kim, J.S., Yoon, T-J. et al. (2006). Toxicity and Tissue Distribution of Magnetic Nanoparticles in Mice. Toxicological Sciences, 89(1):338-347. Article
- Kisin, E.R., Murray, A.R, Keane, M.J. et al. (December 2007). Single-walled Carbon Nanotubes: Geno- and Cytotoxic Effects in Lung Fibroblast V79 Cells. J Toxicol Environ Health A 2007, 70(24): 2071-9. Abstract.
- Kobayashi, N., Naya, M., Ema, M., Endoh, S., Maru, J., Jizuno, K., Nakanishi, J.(2010). Biological response and morphological assessment of individually dispersed multi-wall carbon nanotubes in the lung after intratracheal instillation in rats. Toxicology, EPub Ahead of Print, doi:10.1016/j.tox.2010.07.021. Abstract.
- Kocbek, P., Teska?, K., Kreft, M. E., Kristl, J. (2010). Toxicological Aspects of Long-Term Treatment of Keratinocytes with ZnO and TiO2 Nanoparticles. Small, 6(17): 1908-1917, DOI: 10.1002/smll.201000032. Abstract
- Kolosnjaj, J., Smarc, H., Moussa, F. (2007). Toxicity studies of fullerenes and derivatives. Advances in experimental medicine and biology, 620: 168-180.
- Kolosnjaj, J., Szwarc, H., Moussa, F. (2007). Toxicity studies of carbon nanotubes. Advances in experimental medicine and biology, 620: 181-204.
- Koyama , S., Endo M., Kim Y.A., Hayashi T., Yanagisawa, T., Osaka, K., Koyama, H., Haniu, H., Kuroiwa, N. (2006). Role of systemic T-cells and histopathological aspects after subcutaneous implantation of various carbon nanotubes in mice. Carbon, 44: 1079–1092
- Kuo, JHS; Jan, MS; Lin, YL. (July 2007). Interactions between U-937 human macrophages and poly(propyleneimine) dendrimers. Journal of Controlled Release, 120(1-2): 51-59. Abstract.
- Lapied, E., Moudilou, E., Exbrayat, J. M., Oughton, D. H., Joner, E. J. (2010). Silver nanoparticle exposure causes apoptotic response in the earthworm Lumbricus terrestris (Oligochaeta). Nanomedicine , 5(6): 975-984 , DOI 10.2217/nnm.10.58. Abstract.
- Lazou, B., Jorly, J., On, D. et al. (December 2008). In vitro effects of nanoparticles on renal cells. Particle and Fibre Toxicology, 5:22. Abstract.
- Lee, K.J., Nallathamby,P.D., Browning, L.M., et al. (2007). In Vivo Imaging of Transport and Biocompatibility of Single Silver Nanoparticles in Early Development of Zebrafish Embryos. ACS Nano, 1(2), 133–143. Abstract
- Leroueil, P.R., Berry, S.A, et al. (2008). Wide Varieties of Cationic Nanoparticles Induce Defects in Supported Lipid Bilayers. Nano Lett. Abstract.
- Levi, N., Hantgan, R.R., Lively, M.O., Carroll, D.L. and Prasad, G.L. (December 2006). C60-Fullerenes: detection of intracellular photoluminescence and lack of cytotoxic effects. Journal of Nanobiotechnology 2006, 4:14. Article
- Lewinski, N; Colvin, V; Drezek, R. (January 2008). Cytotoxicity of nanoparticles. Small, 4(1): 26-49. Abstract
- Li, N., Sioutas, C., Cho, A., Schmitz, D., Misra, C., Sempf, J., Wang, J., Oberley, T., Froines, J., Nel, A. 2003. Ultrafine particulate pollutants induce oxidative stress and mitochondrial damage. Environmental Health Perspectives, 111(4), 455-460.
- Limbach, L.K., Wick, P. et ali. (April 2007). Exposure of Engineered Nanoparticles to Human Lung Epithelial Cells: Influence of Chemical Composition and Catalytic Activity on Oxidative Stress. Environ. Sci. Technol., 41 (11): 4158 -4163. Article
- Limbach, L.K., Li, Y. et ali. (2005). Oxide Nanoparticle Uptake in Human Lung Fibroblasts: Effects of Particle Size, Agglomeration, and Diffusion at Low Concentrations. Environ. Sci. Technol., 39(23): 9370 - 9376. Abstract.
- Lin, DH; Xing, BS. (November 2007). Phytotoxicity of nanoparticles: Inhibition of seed germination and root growth. Environmental pollution, 150(2):243 -250.
- Lin, L., Thomas, R. M., Suzuki, H., Brabander, J. K., Wang, X., & Harran, P. (2004). A small molecule smac mimic potentiates TRAIL- and TNF_-mediated cell death. Science, 305: 1471-1474.
- Lin, W., Huang, Y.W., Zhou, X.D., Ma, Y. (November-December 2006). Toxicity of Cerium Oxide Nanoparticles in Human Lung Cancer Cells. International Journal of Toxicology, Volume 25, Number 6. Abstract.
- Linse, S., C. Cabaleiro-Lago, Xue, W.-F., Lynch, I., Lindman, S., Thulin, E., Radford, S. E., Dawson, K. A. (May 2007). Nucleation of protein fibrillation by nanoparticles. Proceedings of the National Academy of Sciences of the United States of America, 104(21): 8691-8696. Abstract.
- Liu, A., Sun, K. et al. (2008). Toxicological effects of multi-wall carbon nanotubes in rats. Journal of Nanoparticle Research, In Press. Abstract
- Liu, Z. S., Tang, S. L. & Ai, Z. L. (2003). Effects of hydroxyapatite nanoparticles on proliferation and apoptosis of human hepatoma BEL-7402 cells. World Journal of Gastroenterology, 9, 1968-1971.
- Long, T.C., Tajuba, J., Sama, P. et al. (November 2007). Nanosize Titanium Dioxide Stimulates Reactive Oxygen Species in Brain Microglia and Damages Neurons in Vitro. Environmental Health Perspectives, 115(11): 1631-1637. Abstract.
- Loretz, B., Bernkop-Schnürch, A. (June 2007). In vitro cytotoxicity testing of non-thiolated and thiolated chitosan nanoparticles for oral gene delivery. Nanotoxicology, 1(2): 139-148. Article
- Lovern, S.B., Strickler, J.R. and Klaper, R. (June 2007). Behavioral and Physiological Changes in Daphnia magna when Exposed to Nanoparticle Suspensions (Titanium Dioxide, Nano-C60, and C60HxC70Hx). Environ. Sci. Technol., 41(12): 4465-4470 Abstract
- Lynch, R.M, Voy, B.H., Glass, D.F. (June 2007). AAssessing the pulmonary toxicity of single-walled carbon nanohorns. Nanotoxicology, 1(2): 157-166. Article
- - NEW - Ma JY, Zhao H, Mercer RR, Barger M, Rao M, Meighan T, Schwegler-Berry D, Castranova V, Ma JK. (2011). Cerium oxide nanoparticle-induced pulmonary inflammation and alveolar macrophage functional change in rats. Nanotoxicology, 15:312-25, PMID: 20925443Abstract.
- Magrez A, Kasas S, Salicio V, Pasquier N, Seo JW, Celio M, Catsicas S, Schwaller B, Forro L. (June 2006). Cellular toxicity of carbon-based nanomaterials. Nano Letters, 6(6):1121-5. Abstract. Article
- Mahto, S. J., Park, C., Yoon, T. H., and Rhee, S. Y. (2010). Assessment of cytocompatibility of surface-modified CdSe/ZnSe quantum dots for BALB/3T3 fibroblast cells Toxicology in Vitro, 24(4):1 070-1077. Abstract.
- Manna, S. K., Sarkar, S., Barr, J., Wise, K., Barrera, E. V., Jejelowo, O., Rice-Ficht, A. C. & Ramesh, G. T. (2005). Single-walled carbon nanotubes induces oxidative stress and activates nuclear transcription factor-kB in human keratinocytes. Nano Letters 5(9): 1676-1684.
- Martin, R., Wang, H.L., Gao, J., Iyer, S., Montaño, A. G., Martinez, J., Shreve, P.A., Bao, Y., Wang, C.C., Chang, Z., Gao, Y. and Iyer, R. (2010). Impact of physicochemical properties of engineered fullerenes on key biological responses Toxicology and Applied Pharmacology. 234(1): 58-67. Abstract
- Martinez-Gutierrez F, Olive PL, Banuelos A, Orrantia E, Nino N, Sanchez EM, Ruiz F, Bach H, Av-Gay Y.(2010). Synthesis, characterization, and evaluation of antimicrobial and cytotoxic effect of silver and titanium nanoparticles. Nanomedicine , Online ahead of print. PMID: 20215045. Abstract
- Medina, C., Santos-Martinez, M.J., Radomski, A., Corrigan, O.I, and Radomski, MW. (March 2007). Nanoparticles: pharmacological and toxicological significance. British Journal of Pharmacology, 150(5): 552–558. Article
- Meng, H., Chen, Z., Xing, G.M. et al. (December 2007). Ultrahigh reactivity provokes nanotoxicity: Explanation of oral toxicity of nano-copper particles. Toxicology Letters, 175 (1-3): 102-110. Article
- Meng, H., Chen, Z., Xing, G.M. et al. (June 2007). Ultrahigh reactivity and grave nanotoxicity of copper nanoparticles. Journal of radioanalytical and nuclear chemistry, 272 (3): 595-598.
- - NEW - Metanawin, T., Tang, T., Chen, R., Vernon, D., and Wang, X. (2011). Cytotoxicity and photocytotoxicity of structure-defined water-soluble C60/micelle supramolecular nanoparticles Nanotechnology.22(23), doi: 10.1088/0957-4484/22/23/235604. Abstract.
- Meyer JN, Lord CA, Yang XY, Turner EA, Badireddy AR, Marinakos SM, Chilkoti A, Wiesner MR, Auffan M.(2010). Intracellular uptake and associated toxicity of silver nanoparticles in Caenorhabditis elegans. Aquatic Toxicology , Online ahead of print. PMID: 20708279. Abstract
- Mitchell, L.A., Gao, J., Wal, R.V. et al. (November 2007). Pulmonary and systemic immune response to inhaled multiwalled carbon nanotubes. Toxicological Sciences, 100 (1): 203-214. Abstract.
- Miura, N, Shinohara, Y. (2010). Cytotoxic effect and apoptosis induction by silver nanoparticles in HeLa cells. Biochem Biophys Res Commun. , 390(3):733-7 PMID: 19836347. Abstract
- Mouchet, F., Landois, P., Flahaut, E., Pinelli, E., Gauthier, L. (June 2007). Assessment of the potential in vivo ecotoxicity of Double-Walled Carbon Nanotubes (DWNTs) in water, using the amphibian Ambystoma mexicanum. Nanotoxicology, 1(2): 149-156. Article
- Moos, P.J., Chung, K., Woessner, D., Honeggar, M., Cutler, N.S. and Veranth, J. M. (2010). ZnO Particulate Matter Requires Cell Contact for Toxicity in Human Colon Cancer Cells Chemical Research in Toxicology , 23(4): 733-739. Abstract
- Mu Q, Zhai S, Yan B. (2010). Real-time monitoring of cellular responses to carbon nanotubes. Methods in Molecular Biology, 625:85-94. PMID: 20422383. Abstract.
- Muller, J; Decordier, I; et al. (February 2008). Clastogenic and aneugenic effects of multi-wall carbon nanotubes in epithelial cells. Carcinogenesis, 29(2): 427-433. Abstract.
- Muller, J., Huaux, F., Lison, D. (2006). Respiratory toxicity of carbon nanotubes: How worried should we be? Carbon, 44: 1048–1056
- Murray AR, Kisin E, Leonard SS, Young SH, Kommineni C, Kagan VE, Castranova V, Shvedova AA. (2010). Oxidative stress and inflammatory response in dermal toxicity of single-walled carbon nanotubes. Toxicology, 257(3):161-71. Abstract.
- Mutlu, G. M., Budinger, G. R. Scott, Green, A. A., Urich, D., Soberanes, S., Chiarella, S. E., Alheid, G. F., McCrimmon, D. F., Szleifer, I. and M. C. Hersam (2010). Biocompatible Nanoscale Dispersion of Single-Walled Carbon Nanotubes Minimizes in vivo Pulmonary Toxicity. Nano Letters. 10(5): 1664–1670, doi:10.1093/annhyg/meq012. Abstract
- Nakajima, N., Nishi, C., Li, F. M., & Ikada, Y. (1996). Photo-induced cytotoxicity of water-soluble fullerene. Fullerene Science & Technology, 4(1): 1-19.
- Murdock, R. C., Braydich-Stolle, L. et al. (2008). Characterization of Nanomaterial Dispersion in Solution Prior to In Vitro Exposure Using Dynamic Light Scattering Technique. Toxicol. Sci., 101:239-253. Abstract
- National Institute of Environmental Health Sciences, National Toxicology Program. (December 2006). Nanoscale Silver - Nomination and Review of Toxicological Literature. Document
- Niwa, Y., Hiura, Y., Sawamura, H., Iwai, N. (January 2008). Inhalation exposure to carbon black induces inflammatory response in rats. Circulation Journal, 72 (1): 144-149. Article.
- Nohynek, G.J., Lademann, J., Ribaud, C., Roberts, M.S. (March 2007). Grey Goo on the Skin? Nanotechnology, Cosmetic and Sunscreen Safety. Critical Reviews in Toxicology, 37(3): 251 - 277. Abstract
- Oberdörster, E., Zhu, S., Blickley, T.M., McClellan-Green, P., Haasch, M.L. (2006). Ecotoxicology of carbon-based engineered nanoparticles: Effects of fullerene (C60) on aquatic organisms. Carbon, 44: 1112–1120
- Oberdorster, E. (2004). Manufactured nanomaterials (fullerenes, C 60) induce oxidative stress in the brain of juvenile largemouth bass. Environmental Health Perspectives, 112(10), 1058-1062.
- Oesterling, E; Chopra, N; Gavalas, V. et al. (May 2008). Alumina nanoparticles induce expression of endothelial cell adhesion molecules. Toxicology Letters, 178 (3): 160-166.
- - NEW - Orr GA, Chrisler WB, Cassens KJ, Tan R, Tarasevich BJ, Markillie LM, Zangar RC, Thrall BD.(2011). Cellular recognition and trafficking of amorphous silica nanoparticles by macrophage scavenger receptor A. Nanotoxicology, 5:296-311, PMID: 20849212. Abstract.
- Panessa-Warren, B.J., Warren, J.B., et al. Human epithelial cell processing of carbon and gold nanoparticles. International Journal Of Nanotechnology, 5 (1): 55-91.
- Panessa-Warren, B.J., Warren, J.B., Wong1, S.S., and Misewich, J.A. (August 2006). Biological cellular response to carbon nanoparticle toxicity. Journal of Physics: Condensed Matter, 18, S2185-S2201
Article
- Park, E.J, Bae, E., Yi, J., Kim, Y., Choi, K., Lee, S. H., Yoon, Y., Lee, B.C., and Park, K.(2010). Repeated-dose toxicity and inflammatory responses in mice by oral administration of silver nanoparticles Environmental Toxicology and Pharmacology. 30(2): 162-168. Abstract.
- Park EJ, Yi J, Kim Y, Choi K, Park K.(2010). Silver nanoparticles induce cytotoxicity by a Trojan-horse type mechanism. Toxicology in Vitro , 24(3):872-8.PMID: 19969064 Abstract
- Patlolla A, Knighten B, Tchounwou P.(2010). Multi-walled carbon nanotubes induce cytotoxicity, genotoxicity and apoptosis in normal human dermal fibroblast cells. Ethnicity and Disease. Winter;20(1 Suppl 1):S1-65-72. Abstract
- Patlolla A, McGinnis B, Tchounwou P. (2010). Biochemical and histopathological evaluation of functionalized single-walled carbon nanotubes in Swiss-Webster mice. Journal of Applied Toxicology, Epub ahead of print, PMID: 20737426. Abstract
- Patra, H.K., Banerjee, S., Chaudhuri, U. (June 2007). Cell selective response to gold nanoparticles. Nanomedicine, 3 (2): 111-119.
- Peters, K., Unger, R.E., Kirkpatrick, C.J., Gatti, A.M., Monari, E. (2004). Effects of nano-scaled particles on endothelial cell function in vitro: Studies on viability, proliferation, and inflammation. J. Mater, Scie: Mater. Med. 15: 321-325.
- Pickering, K. D. & Wiesner, M .R. (2005). Fullerol-sensitized production of reactive oxygen species in aqueous solution. Environmental Science & Technology, 39, 1359-1365.
- Pisanic, T.R., Blackwell, J.D. et al. (June 2007). Nanotoxicity of iron oxide nanoparticle internalization in growing neurons. Biomaterials, 28(16): 2572-2581. Article
- Ponti, J., Colognato, R., Frnachini, F., Gioia, S., Simonelli, F., Abbas, K., Uboldi, C., Kirkpatrick, J., Holzwatch, U., Rossi, F.(2009). A quantitative in vitro approach to study the intracellular fate of gold nanoparticles: from synthesis to cytotoxicity.Nanotoxicology, 3(4): 296 - 306. Abstract
- Porter, A.E., Muller, K., Skepper, J., Midgley, P., Welland, M. (July 2006). Uptake of C(60) by human monocyte macrophages, its localization and implications for toxicity: studied by high resolution electron microscopy and electron tomography. Acta Biomater, 2(4): 409-19.
- Potapovich, A., Osipov, A. N., Kisin, E. R., Schwegler, B. D., Shvedova, A. A., & Kagan, V. E. (2005). Single-walled carbon nanotbues activate raw 264.7 macrophages: role in oxidative stress and inflammatory response. Toxicologist, 84(Suppl 1), 468.
- - NEW - Pujalté I, Passagne I, Brouillaud B, Tréguer M, Durand E, Ohayon-Courtès C, L'Azou B. (2011). Cytotoxicity and oxidative stress induced by different metallic nanoparticles on human kidney cells. Particle & Fibre Toxicology,
8:10, PMID: 21371295 Abstract.
- Powers, C. M., Wrench, N., Ryde, I. T., Smith, A M., Seidler, F. J., Slotkin, T. A. (2010). Silver impairs neurodevelopment: Studies in PC12 cells Nanotoxicology, 118(1): 73-79. Abstract & Article
- Powers, C. M., Badireddy, A. P., Ryde, I. T., Seidler, F. J., Slotkin, T. A. (2010). Silver Nanoparticles Compromise Neurodevelopment in PC12 Cells: Critical Contributions of Silver Ion, Particle Size, Coating and Composition. Environmental Health Perspectives , Online ahead of print. Article
- Pulskamp, K., Worle-Knirsch, JM., Hennrich, F. (October 2007). Human lung epithelial cells show biphasic oxidative burst after single-walled carbon nanotube contact. Carbon, 45(11): 2241-2249.
- Pulskamp, K., Diabaté, S. and Krug, H.F. (January 2007). Carbon nanotubes show no sign of acute toxicity but induce intracellular reactive oxygen species in dependence on contaminants. Toxicology Letters, 168(1): 58-74. Article.
- Qi, SJ; Yi, CQ; Chen, WW; Fong, CC; Lee, ST; Yang, MS. (July 2007). Effects of silicon nanowires on HepG2 cell adhesion and spreading. ChemBioChem, 8 (10): 1115-1118. Article
- Raja, P.M.V., Connolley, J., et al. (February 2007). Impact of carbon nanotube exposure, dosage and aggregation on smooth muscle cells. Toxicology Letters, 169(1): 51-63. Article.
- Ravichandran P, Baluchamy S, Sadanandan B, Gopikrishnan R, Biradar S, Ramesh V, Hall JC, Ramesh GT. (2010). Multiwalled carbon nanotubes activate NF-kappaB and AP-1 signaling pathways to induce apoptosis in rat lung epithelial cells. Apoptosis., EPub Ahead of Print, PMID: 20694747 Abstract.
- Ravichandran P, Periyakaruppan A, Sadanandan B, Ramesh V, Hall JC, Jejelowo O, Ramesh GT. (2009). Induction of apoptosis in rat lung epithelial cells by multiwalled carbon nanotubes. J Biochem Mol Toxicol. , 23(5):333-44. PMID: 19827037. Abstract.
- Reddy AR, Reddy YN, Krishna DR, Himabindu V.(2010). Multi wall carbon nanotubes induce oxidative stress and cytotoxicity in human embryonic kidney (HEK293) cells. Toxicology, 272(1-3):11-6, PMID: 20371264. Abstract.
- Reijnders, L. (June 2007). Biological effects of nanoparticles used as glidants in powders Powder Technology, 175 (3): 142-145.
- Roberts, A.P., Mount, A.S., Seda, B., et al. (March 2007). In vivo Biomodification of Lipid-Coated Carbon Nanotubes by Daphnia magna. Environ. Sci. Technol. Abstract.
- Rogers EJ, Hsieh SF, Organti N, Schmidt D, Bello D. (2008). A high throughput in vitro analytical approach to screen for oxidative stress potential exerted by nanomaterials using a biologically relevant matrix: Human blood serum. Toxicol In Vitro. Abstract.
- Rohner, F., Ernst, FO., Arnold, M., et al. (March 2007). Synthesis, characterization, and bioavailability in rats of ferric phosphate nanoparticles. Journal of Nutrition, 137(3): 614-619.
- Rothen-Rutishauser B, Brown DM, Piallier-Boyles M, Kinloch IA, Windle AH, Gehr P, Stone V. (2010). Relating the physicochemical characteristics and dispersion of multiwalled carbon nanotubes in different suspension media to their oxidative reactivity in vitro and inflammation in vivo. Nanotoxicology, 4(3):331-42. PMID: 20795914. Abstract.
- Ruizendaal. L., Bhattacharjee, S., Pournazari, K., Rosso-Vasic, M., de Haan, L. H. J., Alink, G. M., Marcelis, T. M., Zuilhof, H. (2009). Synthesis and cytotoxicity of silicon nanoparticles with covalently attached organic monolayers, Pages 339 - 347. Nanotoxicology, 3(4): 339-347. Abstract
- Rushton, E. K., Oberdorster, G., & Finkelstein, J. (2005). Nanoparticles are capable of producing reactive oxygen species, upregulation of inflammatory cytokine expression and causing increased cytotoxicity. Paper presented at the 2nd International Symposium on Nanotechnology and Occupational Health. Oct.
3-6, Minneapolis, MN.
- Ryman-Rasmussen, J.P., Riviere, J.E., and Monteiro-Riviere, N.A. (August 2006). Surface Coatings Determine Cytotoxicity and Irritation Potential of Quantum Dot Nanoparticles in Epidermal Keratinocytes. Journal of Investigative Dermatology, Abstract. Article
- Sakai, A. Yamakoshi, Y., & Miyata, N. (1999). Visible light irradiation of 60 fullerene causes killing and initiation of transformation in BALB/3T3 cells. Fullerene Science & Technology, 7: 743-756.
- Samberg, M. E., Oldenburg, S. J., Monteiro-Riviere, N. A. (2010). Evaluation of Silver Nanoparticle Toxicity in Skin in Vivo and Keratinocytes in Vitro
Environmental Health Perspectives. , 118(3): 407-413, doi:10.1289/ehp.0901398. Article.
- Sarkar, S., Sharma,C., Yog, R., Periakaruppan, A., Jejelowo, O., Thomas, R., Barrera, E. V., Rice-Ficht, A. C., Wilson, B. L., and Ramesh, G. T.(2010). Analysis of Stress Responsive Genes Induced by Single-Walled Carbon Nanotubes in BJ Foreskin Cells. Journal of Nanoscience & Nanotechnology. 10(5): 1664–1670, doi:10.1093/annhyg/meq012. Article
- Saxena, R.K., Williams, W. et al. (December 2007). Enhanced in vitro and in vivo toxicity of poly-dispersed acid-functionalized single-wall carbon nanotubes. Nanotoxicology, 1(4): 291-300. Abstract.
- Sayes, C.M., Marchione, A.A., Reed, K.L., Warheit, D.B. (August 2007). Comparative pulmonary toxicity assessments of C-60 water suspensions in rats: Few differences in fullerene toxicity in vivo in contrast to in vitro profiles. Nano Letters, 7 (8): 2399-2406. Abstract
- Sayes, C.M., Feng L., Hudson J.L., Mendez J., WenhuA.G., Beach J.M., Moore V.C., Doyle C.D., West J.L., Billups W.E., Ausman K.D., Colvin V.L. (February 2006). Functionalization density dependence of single-walled carbon nanotubes cytotoxicity in vitro. Toxicology Letters, Volume 161, Issue 2, 135-142. Abstract. Article
- Sayes, C. M., Fortner, J. D., Guo, W., lLyon, D., Boyd, A. M., Ausman, K. D., Tao, Y. J., Sitharaman, B., Wilson, L. J., Hughes, J. B., West, J. L. & Colvin, V. (2004). The differential cytotoxicity of water-soluble fullerenes. Nano Letters, 4(10): 1881-1887.
- Sayes, C. M., Gobin, A. M., Ausman, K. D., Mendez, J., West, J. L. & Colvin, V. L. (2005). Nano-C60 cytotoxicity is due to lipid peroxidation. Biomaterials, 26, 7587-7595.
- Schulze, C., Kroll, A., Lehr, C.M. et al. (June 2008). Not ready to use - overcoming pitfalls when dispersing nanoparticles in physiological media. Nanotoxicology, 2(2): 51-61. Abstract.
- Schuster, D.I., Wilson, S.R., & Schinazi, R.F. (1996). Anti-human immunodeficiency virus activity and cytotoxicity of derivatized buckminsterfullerenes. Bioorganiic & Medicinal Chemistry Letters, 6(11): 1253-1256.
- Scrivens, W. A. & Tour, J. M. (1994). Synthesis of 14C-Labeled C60, its suspension in water, and its uptake by human keratinocytes. Journal of the American Chemical Society, 116: 4517-4518.
- Sharma, C.S., Sarkar, S., Periyakaruppan, A. et al. (July 2007). Single-walled carbon nanotubes induces oxidative stress in rat lung epithelial cells, Journal of Nanoscience and Nanotechnology, 7 (7): 2466-2472. Abstract
- Shavandi Z, Ghazanfari T, Moghaddam KN. (2010). In vitro toxicity of silver nanoparticles on murine peritoneal macrophages. Immunopharmacol Immunotoxicol. , Online ahead of print. PMID: 20507217. Abstract
- >Shvedova, A.A., Fabisiak, J.P., Kisin, E.R. et al. (Published Online December 2007). Sequential Exposure to Carbon Nanotubes and Bacteria Enhances Pulmonary Inflammation and Infectivity. Am. J. Respir. Cell Mol. Biol. Abstract
- Shvedova, A. A., Castranova, V., Kisin, E. R., et al. 2003. Exposure to carbon nanotube
material: Assessment of nanotube cytotoxicity using human keratinocyte cells. Journal of Toxicology and Environmental Health, Part A (66), 1909-1926.
- Shvedova AA, Kagan VE, Fadeel B.(2010). Close encounters of the small kind: adverse effects of man-made materials interfacing with the nano-cosmos of biological systems. Annual Review of Pharmacology & Toxicology, 50: 63-88. PMID: 20055698. Abstract.
- Singh, S., Nalwa, H.S. (September 2007). Nanotechnology and health safety - Toxicity and risk assessments of nanostructured materials on human health. Journal of Nanoscience and Nanotechnology, 7 (9): 3048-3070.
- Smart S.K., Cassady A.I., Lu G.Q., and Martin, D.J. (2006). The biocompatibility of carbon nanotubes. Carbon, 44: 1034–1047
- Smith, C.J., Shaw, B.J., Handy, R.D. (May 2007). Toxicity of single walled carbon nanotubes to rainbow trout, (Oncorhynchus mykiss): Respiratory toxicity, organ pathologies, and other physiological effects. Aquatic Toxicology, 82 (2): 94-109. Abstract.
- Simon, A., Thiebault, C., et al. (September 2006). Toxicity of oxide nanoparticles and carbon nanotubes on cultured pneumocytes: Impact of size, structure and surface charge. Toxicology Letters, 164, Suppl. 1: 222. Abstract.
- Singh, S., Shi, T.M., Duffin, R. et al. (July 2007). Endocytosis, oxidative stress and IL-8 expression in human lung epithelial cells upon treatment with fine and ultrafine TiO2: Role of the specific surface area and of surface methylation of the particles. Toxicology And Applied Pharmacology, 222 (2): 141-151. Article
- Smith, C.J., Shaw, B.J., Handy, R.D. (May 2007). Toxicity of single walled carbon nanotubes to rainbow trout, (Oncorhynchus mykiss): Respiratory toxicity, organ pathologies, and other physiological effects. Aquatic Toxicology, 82 (2): 94-109. Abstract.
- Sohaebuddin, S. K., Thevenot, P. T., Baker, D., Eaton, J. W., Tang, L. (2010). Nanomaterial cytotoxicity is composition, size, and cell type dependent, article and Fibre Toxicology, 7(22), doi:10.1186/1743-8977-7-22. Article.
- Soto, K.F., Carrasco, A., Powell, T.G., Garza, K.M., and Murr, L.E. (2005). Comparative in vitro cytotoxicity assessment of some manufactured nanoparticulate materials characterized by transmission electron microscopy. Journal of Nanoparticle Research, 7: 145-169. Abstract
- Srivastava RK, Pant AB, Kashyap MP, Kumar V, Lohani M, Jonas L, Rahman Q. (2010). Multi-walled carbon nanotubes induce oxidative stress and apoptosis in human lung cancer cell line-A549. Nanotoxicology, 5(2): 195-207 (doi:10.3109/17435390.2010.503944). Abstract.
- - NEW - Stebounova LV, Adamcakova-Dodd A, Kim JS, Park H, O'Shaughnessy PT, Grassian VH, Thorne PS.(2011). Nanosilver induces minimal lung toxicity or inflammation in a subacute murine inhalation model. Particle and Fibre Toxicology. 8(1): 5, PMID: 21266073. Abstract.
- Sweet, L., Strohm, B. (June 2006). Nanotechnology - Life-cycle risk management. Human and Ecological Risk Assessment, 12 (3): 528-551
- Su Y, Hu M, Fan C, He Y, Li Q, Li W, Wang LH, Shen P, Huang Q. (2010). The cytotoxicity of CdTe quantum dots and the relative contributions from released cadmium ions and nanoparticle properties. Biomaterials, 3118):4829-34.PMID: 20346495. Abstract.
- Sur I, Cam D, Kahraman M, Baysal A, Culha M. (2010). Interaction of multi-functional silver nanoparticles with living cells. Nanotechnology, 21(17):175104. PMID: 20368680. Abstract
- - NEW - Thomas, K. V., Farkas, J., Farmen, E., Christian, P., Langford, K., Wu, Q., Tollefsen, K. E.(2011). Effects of dispersed aggregates of carbon and titanium dioxide engineered nanoparticles on rainbow trout hepatocytes. Journal of Toxicology and Environmental Health, Part A, 74(7-9), 466-477, PMID: 21391092. Abstract.
- Thubagere A, Reinhard BM. (2010). Nanoparticle-induced apoptosis propagates through hydrogen-peroxide-mediated bystander killing: insights from a human intestinal epithelium in vitro model. ACS Nano, 4(7):3611-22. PMID: 20560658. Abstract.
- Thurnherr, T., Su, S. S., Diener, L., Weinberg, G., Manswer, P., Pfander, N., Arrigo, R., Schuster, M.E., Wick, P., Krug, H. F. (2009). Comprehensive evaluation of in vitro toxicity of three large-scale produced carbon nanotubes on human Jurkat T cells and a comparison to crocidolite asbestos. Nanotoxicology, 3(4): 319-338. Abstract
- Vankoningsloo S, Piret JP, Saout C, Noel F, Mejia J, Zouboulis CC, Delhalle J, Lucas S, Toussaint O. (2010). Cytotoxicity of multi-walled carbon nanotubes in three skin cellular models: effects of sonication, dispersive agents and corneous layer of reconstructed epidermis. Nanotoxicology, 4(1):84-97. PMID: 20795904. Abstract.
- VanWinkle, B. A., De Messy Bently, K. L., Malecki, J. M., Gunter, K. K., Evans, I. M., Elder, A., Finkelstein, J. N., Oberdorster, G., Gunter, T. E.(2009). Nanoparticle (NP) uptake by type I alveolar epithelial cells and their oxidant stress response.Nanotoxicology, 3(4): 307-318. Abstract
- Vinardell, M. (2005). In vitro cytotoxicity of nanoparticles in mammalian germ-line stem cell. Toxicological Sciences, 88(2): 285-286. Abstract
- Wagner, A.J., Bleckmann, C.A. et al. (June 2007). Cellular Interaction of Different Forms of Aluminum Nanoparticles in Rat Alveolar Macrophages. J. Phys. Chem. B, 111 (25), 7353 -7359. Abstract.
- Wallace, W.E., Keane, M.J., Murray, D.K., Chisholm, W.P., Maynard, A.D., and Ong, T.M. (January 2007). Phospholipid lung surfactant and nanoparticle surface toxicity: Lessons from diesel soots and silicate dusts. Journal of Nanoparticle Research, 9,1: 23-38. Abstract.
- - NEW - Wang G, Dewilde AH, Zhang J, Pal A, Vashist M, Bello D, Marx KA, Braunhut SJ, Therrien JM.(2011). A living cell quartz crystal microbalance biosensor for continuous monitoring of cytotoxic responses of macrophages to single-walled carbon nanotubes. Particle and Fibre Toxicology, 8(4),PMID: 21266033. Abstract.
- Wang, B., Feng, W.Y. et al. (February 2008). Acute toxicological impact of nano- and submicro-scaled zinc oxide powder on healthy adult mice. Journal of Nanoparticle Research, 10 (2): 263-276. Abstract.
- Wang, J.J., Wang, H., Sanderson, B.J.S. (April 2007). Ultrafine Quartz-Induced Damage in Human Lymphoblastoid Cells in vitro Using Three Genetic Damage End-Points. Toxicology Mechanisms and Methods, 17(4): 223-232. Abstract.
- Wang, J.X., Zhou, G.Q., Chen, C.Y. et al. (January 2007). Acute toxicity and biodistribution of different sized titanium dioxide particles in mice after oral administration. Toxicology Letters, 168 (2): 176-185.
- Warheit, D.B. (February 2008). How meaningful are the results of nanotoxicity studies in the absence of adequate material characterization? Toxicological Sciences, 101 (2): 183-185. Article.
- Warheit, D.B. (2006). What is currently known about the health risks related to carbon nanotube exposures? Carbon, 44: 1064–1069
- Wick, P., Manser, P., Limbach, L. et ali. (January 2007). The degree and kind of agglomeration affect carbon nanotube cytotoxicity. Toxicology Letters, 168(2): 121-131. Abstract.
- Wick, P., Manser, P., Spohn, P., Bruinink, A. (October 2006). In vitro evaluation of possible adverse effects of nanosized materials. Physica Status Solidi (b), 243(13): 3556 - 3560. Abstract.
- Wise, J.P., Goodale, B. C., Wise, S. S., Craig, G. A., Pongan, A. F., Walter, R. B., Thompson, W. D., Ng, A. K., Aboueissa, A. M., Mitani, H., Spalding, M. J., Mason, M. D. (2010). Silver nanospheres are cytotoxic and genotoxic to fish cells. Aquatic Toxicology, 97(1): 34-41. Abstract
- Witasp E, Shvedova AA, Kagan VE, Fadeel B. (2009). Single-walled carbon nanotubes impair human macrophage engulfment of apoptotic cell corpses. Inhalation Toxicology, Jul;21 Suppl 1:131-6. Abstract.
- Xia, T; Kovochich, M. et al. (January 2008). Cationic polystyrene nanosphere toxicity depends on cell-specific endocytic and mitochondrial injury pathways. ACS Nano, 2(1): 85-96. Abstract.
- Yamashita, K. Yoshioka, Y., Higashisaka, K., Morishita, Y., Yoshida, T., Fujimura, M., Kayamuro, H., Nabeshi, H., Yamashita, T., Nagano, K., Abe, Y., Kamada, H., Kawai, Y., Mayumi, T. Yoshikawa, T., Itoh, N.,Tsunoda, S. (2010. Carbon Nanotubes Elicit DNA Damage and Inflammatory Response Relative to Their Size and Shape. Inflammation. 33(4):276-280, DOI: 10.1007/s10753-010-9182-7. Abstract
- Yamawaki, H., and Iwai, N. (January 2006). Cytotoxicity of water soluble fullerene in vascular endothelial cells. American Journal of Physiology, 290: 1495 – 1502. Abstract. Article
- Yang, R.S.H., Chang, L.Z., et al. (September 2007). Persistent Tissue Kinetics and Redistribution of Nanoparticles, Quantum Dot 705, in Mice: ICP-MS Quantitative Assessment. Environmental Health Perspectives, 115(9): 1339-1343. Abstract.
- Yang, R.S.H., Chang, L.Z., et al. (September 2007). Persistent Tissue Kinetics and Redistribution of Nanoparticles, Quantum Dot 705, in Mice: ICP-MS Quantitative Assessment. Environmental Health Perspectives, 115(9): 1339-1343. Abstract.
- Yang, X., Chen, L., Qiao, X., Fan, C. (May 2007). Photo-Induced Damages of Cytoplasmic and Mitochondrial Membranes by a [C60]Fullerene Malonic Acid Derivative, International Journal of Toxicology, 26(3): 197-201. Abstract.
- Yi, C., Fong, C.C., Chen, W.W. et al. (July 2007). Inhibition of Biochemical Reactions by Silicon Nanowires through Modulating Enzyme Activities. Chembiochem., 8 (11): 1225-1229. Article.
- Zeni, O; Palumbo, R; Bernini, R. et al. (January 2008). Cytotoxicity investigation on cultured human blood cells treated with single-wall carbon nanotubes. Sensors, 8(1): 488-499. Abstract
- Zeyons, O., Thill, A., Chauvat, F., Menguy, N., Cassier-Chauvat, C., Oréar, C., Daraspe, J., Auffan, M., Rose, J., Spalla, O.(2009). Direct and indirect CeO 2 nanoparticles toxicity for Escherichia coli and Synechocystis. Nanotoxicology, 3(4): 284-295. Abstract
- Zhang D, Yi C, Qi S, Yao X, Yang M. (2010). Effects of carbon nanotubes on the proliferation and differentiation of primary osteoblasts. Methods Mol Biol. , 625:41-53, PMID: 20422380. Abstract.
- Zhang Y, Ali SF, Dervishi E, Xu Y, Li Z, Casciano D, Biris AS.(2010). Cytotoxicity effects of graphene and single-wall carbon nanotubes in neural phaeochromocytoma-derived PC12 cells. ACS Nano, 4(6):3181-6. PMID: 20481456. Abstract.
- Zhang, Y.D., Hu, Z.Y., Ye, M.Y. et al. (May 2007). Effect of poly(ethylene glycol)-block-polylactide nanoparticles on hepatic cells of mouse: Low cytotoxicity, but efflux of the nanoparticles by ATP-binding cassette transporters. European Journal of Pharmaceutics and Biopharmaceutics, 66 (2): 268-280.
- Zhang, TT; Stilwell, JL; Gerion, D; Ding, LH; Elboudwarej, O; Cooke, PA; Gray, JW; Alivisatos, AP; Chen, FF (April 2006). Cellular effect of high doses of silica-coated quantum dot profiled with high throughput gene expression analysis and high content cellomics measurements. Nano Letters, 6 (4): 800-808. Abstract. Article
- Zhang Y, Wang B, Meng X, Sun G, Gao C. (2010). Influences of Acid-Treated Multiwalled Carbon Nanotubes on Fibroblasts: Proliferation, Adhesion, Migration, and Wound Healing. Ann Biomed Eng., Epub ahead of print, PMID: 20824344. Abstract.
- Zhang, D.W., Yi, C.Q., Zhang, J.C. et al. (November 2007). The effects of carbon nanotubes on the proliferation and differentiation of primary osteoblasts. Nanotechnology, 18(47). Abstract
- Zhang, L.W., Zeng, L., Barron A.R.B, Monteiro-Riviere, N.A. (March 2007). Biological Interactions of Functionalized Single-Wall Carbon Nanotubes in Human Epidermal Keratinocytes. International Journal of Toxicology, 26(2): 103-113. Abstract
Last updated March 2011 - Maria Powell