Meta-Analysis of Nanoparticle Cytotoxicity via Data-Mining the Literature.
暂无分享,去创建一个
Hagar I. Labouta | Nasimeh Asgarian | Kristina D. Rinker | David T. Cramb | Nasimeh Asgarian | D. Cramb | K. Rinker | H. I. Labouta
[1] Arezou A Ghazani,et al. Assessing the effect of surface chemistry on gold nanorod uptake, toxicity, and gene expression in mammalian cells. , 2008, Small.
[2] อนิรุธ สืบสิงห์,et al. Data Mining Practical Machine Learning Tools and Techniques , 2014 .
[3] Alberto Maria Segre,et al. Programs for Machine Learning , 1994 .
[4] Sotiris B. Kotsiantis,et al. Decision trees: a recent overview , 2011, Artificial Intelligence Review.
[5] H. Byrne,et al. Spectroscopic analysis confirms the interactions between single walled carbon nanotubes and various dyes commonly used to assess cytotoxicity , 2007 .
[6] H. Byrne,et al. Probing the interaction of single walled carbon nanotubes within cell culture medium as a precursor to toxicity testing , 2007 .
[7] Peter Wick,et al. The reliability and limits of the MTT reduction assay for carbon nanotubes-cell interaction , 2007 .
[8] D. Cramb,et al. Understanding and improving assays for cytotoxicity of nanoparticles: what really matters? , 2018, RSC advances.
[9] Teófilo Rojo,et al. The challenge to relate the physicochemical properties of colloidal nanoparticles to their cytotoxicity. , 2013, Accounts of chemical research.
[10] Eugenia Valsami-Jones,et al. A strategy for grouping of nanomaterials based on key physico-chemical descriptors as a basis for safer-by-design NMs , 2014 .
[11] Igor Linkov,et al. For nanotechnology decisions, use decision analysis , 2013 .
[12] Christie M Sayes,et al. A framework for grouping nanoparticles based on their measurable characteristics , 2013, International journal of nanomedicine.
[13] Wolfhard Semmler,et al. Silica- and alkoxysilane-coated ultrasmall superparamagnetic iron oxide particles: a promising tool to label cells for magnetic resonance imaging. , 2007, Langmuir : the ACS journal of surfaces and colloids.
[14] Alexandra Kroll,et al. Interference of engineered nanoparticles with in vitro toxicity assays , 2012, Archives of Toxicology.
[15] N. Tufenkji,et al. Physicochemical characterization of engineered nanoparticles under physiological conditions: effect of culture media components and particle surface coating. , 2012, Colloids and surfaces. B, Biointerfaces.
[16] Iqbal Ahmad,et al. Genotoxic potential of copper oxide nanoparticles in human lung epithelial cells. , 2010, Biochemical and biophysical research communications.
[17] A. Walker,et al. Inaccuracies in MTS assays: major distorting effects of medium, serum albumin, and fatty acids. , 2004, BioTechniques.
[18] Joel G Pounds,et al. Particokinetics in vitro: dosimetry considerations for in vitro nanoparticle toxicity assessments. , 2007, Toxicological sciences : an official journal of the Society of Toxicology.
[19] Verena Wilhelmi,et al. Evaluation of apoptosis induced by nanoparticles and fine particles in RAW 264.7 macrophages: facts and artefacts. , 2012, Toxicology in vitro : an international journal published in association with BIBRA.
[20] Igor L. Medintz,et al. Meta-analysis of cellular toxicity for cadmium-containing quantum dots. , 2016, Nature nanotechnology.
[21] Myrtill Simkó,et al. Pooling and Analysis of Published in Vitro Data: A Proof of Concept Study for the Grouping of Nanoparticles , 2015, International journal of molecular sciences.
[22] A. Kinsner-Ovaskainen,et al. Quantification of the cellular dose and characterization of nanoparticle transport during in vitro testing , 2015, Particle and Fibre Toxicology.
[23] Robert N Grass,et al. Exposure of engineered nanoparticles to human lung epithelial cells: influence of chemical composition and catalytic activity on oxidative stress. , 2007, Environmental science & technology.
[24] K M Crofton,et al. Evaluation of the ToxRTool's ability to rate the reliability of toxicological data for human health hazard assessments. , 2015, Regulatory toxicology and pharmacology : RTP.
[25] Paavo Honkakoski,et al. Substrates and inhibitors of efflux proteins interfere with the MTT assay in cells and may lead to underestimation of drug toxicity. , 2004, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[26] Shareen H. Doak,et al. Dextran Coated Ultrafine Superparamagnetic Iron Oxide Nanoparticles: Compatibility with Common Fluorometric and Colorimetric Dyes , 2011, Analytical chemistry.
[27] Alexander Tropsha,et al. Best Practices for QSAR Model Development, Validation, and Exploitation , 2010, Molecular informatics.
[28] Nasimeh Asgarian,et al. Learning to predict relapse in invasive ductal carcinomas based on the subcellular localization of junctional proteins , 2010, Breast Cancer Research and Treatment.
[29] C. Lehr,et al. Relevance of the colloidal stability of chitosan/PLGA nanoparticles on their cytotoxicity profile. , 2009, International journal of pharmaceutics.
[30] Eleonore Fröhlich,et al. The role of surface charge in cellular uptake and cytotoxicity of medical nanoparticles , 2012, International journal of nanomedicine.
[31] D. Scudiero,et al. Evaluation of a soluble tetrazolium/formazan assay for cell growth and drug sensitivity in culture using human and other tumor cell lines. , 1988, Cancer research.
[32] M. Meltz,et al. Antioxidant compounds interfere with the 3. , 2000, Cancer detection and prevention.
[33] Pratim Biswas,et al. Validation of an LDH assay for assessing nanoparticle toxicity. , 2011, Toxicology.
[34] Jeremy M. Gernand,et al. A Meta‐Analysis of Carbon Nanotube Pulmonary Toxicity Studies—How Physical Dimensions and Impurities Affect the Toxicity of Carbon Nanotubes , 2014, Risk analysis : an official publication of the Society for Risk Analysis.
[35] Michael S Koch,et al. Adaptation of the ToxRTool to Assess the Reliability of Toxicology Studies Conducted with Genetically Modified Crops and Implications for Future Safety Testing , 2016, Critical reviews in food science and nutrition.
[36] R A Knight,et al. Guidelines for the use and interpretation of assays for monitoring cell death in higher eukaryotes , 2009, Cell Death and Differentiation.
[37] N. Monteiro-Riviere,et al. Limitations and relative utility of screening assays to assess engineered nanoparticle toxicity in a human cell line. , 2009, Toxicology and applied pharmacology.
[38] Maria Dusinska,et al. Toxicity screenings of nanomaterials: challenges due to interference with assay processes and components of classic in vitro tests , 2015, Nanotoxicology.
[39] Radford M. Neal. Pattern Recognition and Machine Learning , 2007, Technometrics.
[40] C. Lehr,et al. Bacteriomimetic invasin-functionalized nanocarriers for intracellular delivery. , 2015, Journal of controlled release : official journal of the Controlled Release Society.
[41] Liping Tang,et al. Nanomaterial cytotoxicity is composition, size, and cell type dependent , 2010, Particle and Fibre Toxicology.
[42] Elizabeth A Casman,et al. Nanotoxicology: Seeing the trees for the forest. , 2016, Nature nanotechnology.
[43] Oded Maimon,et al. Predictive toxicology of cobalt nanoparticles and ions: comparative in vitro study of different cellular models using methods of knowledge discovery from data. , 2011, Toxicological sciences : an official journal of the Society of Toxicology.
[44] Ritesh K Shukla,et al. ROS-mediated genotoxicity induced by titanium dioxide nanoparticles in human epidermal cells. , 2011, Toxicology in vitro : an international journal published in association with BIBRA.
[45] T. Lee,et al. Differential cytotoxic effects of arsenic on human and animal cells. , 1994, Environmental health perspectives.
[46] Yuliang Zhao,et al. Cytotoxicity of carbon nanomaterials: single-wall nanotube, multi-wall nanotube, and fullerene. , 2005, Environmental science & technology.