Prediction of Drug-Induced Liver Injury in Micropatterned Co-cultures Containing iPSC-Derived Human Hepatocytes.
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Salman R Khetani | S. Khetani | D. Berger | B. Ware | Brenton R Ware | Dustin R Berger | Dustin R. Berger
[1] K I Kaitin,et al. Deconstructing the Drug Development Process: The New Face of Innovation , 2010, Clinical pharmacology and therapeutics.
[2] Weida Tong,et al. Toward predictive models for drug-induced liver injury in humans: are we there yet? , 2014, Biomarkers in medicine.
[3] M. Rawlins. Cutting the cost of drug development? , 2004, Nature Reviews Drug Discovery.
[4] H Fang,et al. The Liver Toxicity Knowledge Base: A Systems Approach to a Complex End Point , 2013, Clinical pharmacology and therapeutics.
[5] Yvonne Will,et al. Use of micropatterned cocultures to detect compounds that cause drug-induced liver injury in humans. , 2013, Toxicological sciences : an official journal of the Society of Toxicology.
[6] P. Bernardi,et al. High concordance of drug-induced human hepatotoxicity with in vitro cytotoxicity measured in a novel cell-based model using high content screening , 2006, Archives of Toxicology.
[7] D. Hay,et al. Developing High‐Fidelity Hepatotoxicity Models From Pluripotent Stem Cells , 2013, Stem cells translational medicine.
[8] Takao Hayakawa,et al. 3D spheroid culture of hESC/hiPSC-derived hepatocyte-like cells for drug toxicity testing. , 2013, Biomaterials.
[9] S. Gerbal-Chaloin,et al. Human induced pluripotent stem cells in hepatology: beyond the proof of concept. , 2014, The American journal of pathology.
[10] Melvin E Andersen,et al. Long‐Term Stability of Primary Rat Hepatocytes in Micropatterned Cocultures , 2013, Journal of biochemical and molecular toxicology.
[11] K. Tilmant,et al. Characterization of primary human hepatocytes, HepG2 cells, and HepaRG cells at the mRNA level and CYP activity in response to inducers and their predictivity for the detection of human hepatotoxins , 2012, Cell Biology and Toxicology.
[12] Takao Hayakawa,et al. The promotion of hepatic maturation of human pluripotent stem cells in 3D co-culture using type I collagen and Swiss 3T3 cell sheets. , 2012, Biomaterials.
[13] H Green,et al. Serial cultivation of strains of human epidermal keratinocytes: the formation of keratinizing colonies from single cells. , 1975, Cell.
[14] H. Green,et al. Seria cultivation of strains of human epidemal keratinocytes: the formation keratinizin colonies from single cell is , 1975, Cell.
[15] M. Yarmush,et al. Oxygen-mediated enhancement of primary hepatocyte metabolism, functional polarization, gene expression, and drug clearance , 2009, Proceedings of the National Academy of Sciences.
[16] A. Guillouzo,et al. Liver cell models in in vitro toxicology. , 1998, Environmental health perspectives.
[17] P. David Josephy. The Molecular Toxicology of Acetaminophen , 2005, Drug metabolism reviews.
[18] A. Li,et al. Effects of organic solvents on the activities of cytochrome P450 isoforms, UDP-dependent glucuronyl transferase, and phenol sulfotransferase in human hepatocytes. , 2001, Drug metabolism and disposition: the biological fate of chemicals.
[19] Neil Kaplowitz,et al. Idiosyncratic drug hepatotoxicity , 2005, Nature Reviews Drug Discovery.
[20] P Smith,et al. Concordance of the toxicity of pharmaceuticals in humans and in animals. , 2000, Regulatory toxicology and pharmacology : RTP.
[21] M. Andersen,et al. Bioactivation and Toxicity of Acetaminophen in a Rat Hepatocyte Micropatterned Coculture System , 2013, Journal of biochemical and molecular toxicology.
[22] I. Rusyn,et al. High-content assays for hepatotoxicity using induced pluripotent stem cell-derived cells. , 2014, Assay and drug development technologies.
[23] O. J. Trask,et al. A micropatterned hepatocyte coculture model for assessment of liver toxicity using high-content imaging analysis. , 2014, Assay and drug development technologies.
[24] M. D. Davidson,et al. Enhancing the functional maturity of induced pluripotent stem cell–derived human hepatocytes by controlled presentation of cell–cell interactions in vitro , 2015, Hepatology.
[25] M L Yarmush,et al. Effect of cell–cell interactions in preservation of cellular phenotype: cocultivation of hepatocytes and nonparenchymal cells , 1999, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[26] Clay W Scott,et al. Human induced pluripotent stem cells and their use in drug discovery for toxicity testing. , 2013, Toxicology letters.
[27] Luke P. Lee,et al. Physiologically relevant organs on chips , 2014, Biotechnology journal.
[28] Frank Stahl,et al. Comparison of primary human hepatocytes and hepatoma cell line Hepg2 with regard to their biotransformation properties. , 2003, Drug metabolism and disposition: the biological fate of chemicals.
[29] Takanori Takebe,et al. Vascularized and functional human liver from an iPSC-derived organ bud transplant , 2013, Nature.
[30] Agustín Lahoz,et al. Development of a multiparametric cell-based protocol to screen and classify the hepatotoxicity potential of drugs. , 2012, Toxicological sciences : an official journal of the Society of Toxicology.
[31] Samantha A. Morris,et al. CellNet: Network Biology Applied to Stem Cell Engineering , 2014, Cell.
[32] Ignazio Grattagliano,et al. Biochemical mechanisms in drug-induced liver injury: certainties and doubts. , 2009, World journal of gastroenterology.
[33] Peter V. Henstock,et al. Cellular imaging predictions of clinical drug-induced liver injury. , 2008, Toxicological sciences : an official journal of the Society of Toxicology.
[34] N. Kaplowitz,et al. Mechanisms of drug-induced liver injury. , 2013, Clinics in liver disease.
[35] C. Guillemette,et al. Three-dimensional culture and cAMP signaling promote the maturation of human pluripotent stem cell-derived hepatocytes , 2013, Development.
[36] D. B. Duignan,et al. Assessment of a Micropatterned Hepatocyte Coculture System to Generate Major Human Excretory and Circulating Drug Metabolites , 2010, Drug Metabolism and Disposition.
[37] Adam S. Hayward,et al. Recent advances in 2D and 3D in vitro systems using primary hepatocytes, alternative hepatocyte sources and non-parenchymal liver cells and their use in investigating mechanisms of hepatotoxicity, cell signaling and ADME , 2013, Archives of Toxicology.
[38] S. Bhatia,et al. Pluripotent stem cell-derived hepatocyte-like cells. , 2014, Biotechnology advances.