- Audette, G., van Schail, E. J., Hazes, B., & Irvin, R. T., (2004). DNA-binding protein nanotubes: Learning from nature's nanotech examples. Nano Letters, 4(10): 1897-1902.
- Bernstein, R., Prat, F., & Foote, C. (1999). On the mechanism of DNA cleavage by fullerenes investigated in model systems: Electron transfer guanosine and 8-oxo-guanosine derivatives to C60.
- Braydich-Stolle L, Hussain S, Schlager JJ, Hofmann MC. In Vitro cytotoxicity of nanoparticles in mammalian germline stem cells. Toxicol Sci. 2005;88(2):412-419.
- Cheng, J., Flahaut, E., Cheng, S.H. (April 2007). Effect of carbon nanotubes on developing zebrafish embryos. Environmental Toxicology and Chemistry, 26(4): 708–716. Abstract.
- Ding, L., Stilwell, J., Zhang, T., Elboudwarej, O., Jiang, H., Selegue, J. P., Cooke, P. A., Gray, J. W. & Chen, F. F. (2005). Molecular characterization of the cytotoxic mechanism of multiwall carbon nanotubes and nano-onions on human skin fibroblast. Nano Letters, In Press.
- Dunford, R., Salinaro, A., Cai, L., Serpone, N., Horikoshi, S., Hidaka, H., Knowland, J. 1997. Chemical oxidation and DNA damage catalyzed by inorganic sunscreen ingredients. FEBS Letters, 418, 97-90.
- Gallagher, J., Sams, R., Inmon, J., Gelein, R., Elder, A. Oberdorster, G., Prahalad, A.K. (2003). Formation of 8-oxo-7,8-dihydro-2'-deoxyguanosine in rat lung DNA following subchronic inhalation of carbon black. Toxicology and Applied Pharmacology, 190: 224-231.
- Green, M. & Howman, E. (2005). Semiconductor quantum dots and free radical induced DNA nicking. Chemical Communications, 1, 121-1213.
- - NEW - 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
- Gulston, M. & Knowland, J. (1999) Illumination of human keratinocytes in the presence of the sunscreen ingredient padimate-O and through an SPF-15 sunscreen reduces direct photodamage to DNA but increases strand breaks. Mutation Research, 444: 49-60.
- Hidaka, H., Horikoshi, S., Serpone, N., & Knowland, J. (1997). In vitro photochemical damage to DNA, RNA and their bases by an inorganic sunscreen agent on exposure to UVA and UVB radiation. Journal of photochemistry and Photobiology A: Chemistry, 111(1-3): 205-213.
- - NEW - Hougaard K, Jackson P, Jensen K, Vogel U, Wallin H (2009. Nano-sized titanium dioxide: Effects of gestational exposure.Reproductive Toxicology, 28: 122.
- Lu, P. J., Ho, I. C., Lee, T. C. (1998). Induction of sister chromatid exchanges and micronuclei by titanium dioxide in Chinese hamster ovary-K1 cells. Mutation Research, 414, 15-20.
- Nakagawa, Y., Wakuri, S., Sakamoto, K., & Tanaka, N. (1997). The photogenotoxicity of titanium dioxide particles. Mutation Research, 394, 125-132.
- Rahman, Q., Lohani, M., Dopp, Elke, Pemsel, H, Jonas, L. Weiss, D. G., & Shiffmann, D. (2002). Evidence that ultrafine titanium dioxide induces micronuclei and apoptosis in Syrian hamster embryo fibroblasts. Environmental Health Perspectives, 110(8), 797-800.
- Sera, N., Tokiwa, H. & Miyata, N. (1996). Mutagenicity of the fullerene C60-generated singlet oxygen dependent formation of lipid peroxides. Carcinogenesis, 17, 2163-2169.
- - NEW - Shimizu M, Tainaka H, Oba T, Mizuo K, Umezawa M, Takeda K. 2009. Maternal exposure to nanoparticulate titanium dioxide during the prenatal period alters gene expression related to brain development in the mouse. Particle and Fibre Toxicology, 6:20.
- Takeda K, Suzuki K, 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(1):95-102.
- - NEW - Trouiller, B., Reliene, R., Westbrook, A., Solaimani, P., Schiestl, R. (2009). Titanium dioxide nanoparticles induce DNA damage and genetic instability in vivo in mice Cancer Research, 69(22: 8784-8789.
- Tsuchiya, T., Oguri, I., Nakajima, Y., Yamakoshi, N., Miyata, N. (1996). Novel harmful effects of [60]fullerene on mouse embryos in vitro and in vivo. FEBS Letters, 393, 139-145.
- Vinardell, M. (2005). In vitro cytotoxicity of nanoparticles in mammalian germ-line stem cell. Toxicological Sciences, 88(2): 285-286. 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.
- - NEW - Wick, P. Malek, A., Manser, P., Meili, D., Maeder-Althaus, X., Diener, L., Diener, P., Zisch, A., Krug, A. F., von Mandach, U. (2009). Barrier capacity of human placental for nanosized materials. Environmental Health Perspectives , Article .
- Wootlif, B. 2004. Nanoparticles might move from mom to fetus. SmallTimes, London, Jan. 14.
- Yi, C.Q., Fong, C.C., Chen, W.W., Qi, S.J., Tzang, C.H., Lee, S.T., Yang, M.S. (January 2007). Interactions between carbon nanotubes and DNA polymerase and restriction endonucleases. Nanotechnology,18(2). Abstract.
- Zhao, X., Striolo, A. & Cummings, P.T. (2005). C60 binds to and deforms nucleotides. Biophysical Journal 89: 3856-3862.
- 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
- Zhu, L., Chang, D.W. et al. (November 2007). DNA Damage Induced by Multiwalled Carbon Nanotubes in Mouse Embryonic Stem Cells. Nano Lett., 7(12): 3592-3597. Abstract
- Zhu, X., Zhu, L., Li, Y., Duan, Z., Chen, W., Alvarez, P.J.J. (May 2007). Developmental toxicity in zebrafish (danio rerio) embryos after exposure to manufactured nanomaterials: buckminsterfullerene aggregates (nC60) and fullerol. Environmental Toxicology and Chemistry, 26(5): 976–979. Abstract.
Last updated November 2009 - Maria Powell