Toxicol Vitr 2011, 25:1820–1827 CrossRef 33 Yuan JF, Gao HG, Sui

Toxicol Vitr 2011, 25:1820–1827.CrossRef 33. Yuan JF, Gao HG, Sui JJ, Duan HW, Chen Liproxstatin-1 in vitro WN, Ching CB: Cytotoxicity evaluation of oxidized single-walled carbon nanotubes and graphene oxide on human hepatoma HepG2 cells: an iTRAQ-coupled 2D LC-MS/MS

proteome analysis. Toxicol Sci 2012, 126:149–161.CrossRef 34. Yuan JF, Gao HC, Ching CB: Comparative protein profile of human hepatoma HepG2 cells treated with graphene and single-walled carbon nanotubes: an iTRAQ-coupled 2D LC-MS/MS proteome analysis. Toxicol Lett 2011, 207:213–221.CrossRef 35. Liu ZB, Zhou B, Wang HY, Zhang HL, Liu LX, Zhu DW, Leng XG: Effect of functionalized multi-walled carbon nanotubes on L02 cells. CAMS 2010, 32:449–455.CrossRef 36. Matsuda S, Matsui S, Shimizu Y, Matsuda T: Genotoxicity of colloidal fullerene C60. Environ Sci Technol 2011, 45:4133–4138.CrossRef 37. Nakagawa Y, Suzuki T, Ishii H, Nakae D, Ogata A: Cytotoxic effects of hydroxylated fullerenes on isolated rat hepatocytes via mitochondrial dysfunction. Arch Toxicol PLX-4720 order 2011, 85:1429–1440.CrossRef 38. Wang X, Xia T, Matthew CD, Ji ZX, Zhang HY, Li RB, Sun B, Lin S, Meng H, Liao Y-P, Wang M, Song T-B, Yang Y, Hersam M, Nel A: Pluronic F108 coating decreases the lung fibrosis potential of multiwall

carbon nanotubes by reducing lysosomal injury. Nano Lett 2012, 12:3050–3061.CrossRef 39. Anna AS, Antonio P, Bengt F, Valerian EK: Mechanisms of carbon nanotube-induced toxicity: focus on oxidative stress. Toxicol Appl Pharmacol 2012, 261:121–133.CrossRef 40. Andón FT, Fadeel B: Programmed cell death: molecular mechanisms and implications for safety assessment of nanomaterials. Acc Chem Res 2012. 41. Nan L, Zhiyong W, Keke Z, Zujin S, Zhennan G, Shukun X: Synthesis of single-wall carbon nanohorns by arc-discharge in air and their formation mechanism. Carbon 2010, 48:1580–1585.CrossRef

42. Jack F, Ming J, Jo M: Cancer-specific functions of SIRT1 enable human epithelial cancer cell growth and survival. Cancer Res 2005, 65:10457–10463.CrossRef Oxaprozin 43. Ryuji H, Yoichi F, Masashi M, Yuko I, Fabio PS, Meihua L, Ryuichiro Y, Yusuke N: SMYD3 encodes a histone methyltransferase involved in the proliferation of cancer cells. Nat Cell Biol 2004, 6:731–740.CrossRef 44. Alano CC, Tran A, Tao R, Ying W, Karliner JS, Swanson RA: Differences among cell types in NAD (+) compartmentalization: a comparison of neurons, astrocytes, and cardiac myocytes. J Neurosci Res 2007, 85:3378–3385.CrossRef 45. Alano CC, Garnier P, Ying W, Higashi Y, Kauppinen TM, Swanson RA: NAD+ depletion is necessary and sufficient for poly(ADP-ribose) polymerase-1-mediated neuronal death. J Neurosci 2010, 30:2967–2978.CrossRef 46. Alano CC, Kauppinen TM, Valls AV, Swanson RA: Minocycline inhibits poly (ADP-ribose) polymerase-1 at nanomolar concentrations. Proc Natl Acad Sci USA 2006, 103:9685–9690.CrossRef 47.

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