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DOI10.1289/ehp.1409029
Using ToxCast (TM) Data to Reconstruct Dynamic Cell State Trajectories and Estimate Toxicological Points of Departure
Shah, Imran1; Setzer, R. Woodrow1; Jack, John2; Houck, Keith A.1; Judson, Richard S.1; Knudsen, Thomas B.1; Liu, Jie3,7; Martin, Matthew T.1; Reif, David M.4; Richard, Ann M.1; Thomas, Russell S.1; Crofton, Kevin M.1; Dix, David J.1,5; Kavlock, Robert J.1,6
发表日期2016-07-01
ISSN0091-6765
卷号124期号:7页码:910-919
英文摘要

BACKGROUND: High-content imaging (HCI) allows simultaneous measurement of multiple cellular phenotypic changes and is an important tool for evaluating the biological activity of chemicals.


OBJECTIVES: Our goal was to analyze dynamic cellular changes using HCI to identify the "tipping point" at which the cells did not show recovery towards a normal phenotypic state.


METHODS: HCI was used to evaluate the effects of 967 chemicals (in concentrations ranging from 0.4 to 200 mu M) on HepG2 cells over a 72-hr exposure period. The HCI end points included p53, c-Jun, histone H2A. x, alpha-tubulin, histone H3, alpha tubulin, mitochondrial membrane potential, mitochondrial mass, cell cycle arrest, nuclear size, and cell number. A computational model was developed to interpret HCI responses as cell-state trajectories.


RESULTS: Analysis of cell-state trajectories showed that 336 chemicals produced tipping points and that HepG2 cells were resilient to the effects of 334 chemicals up to the highest concentration (200 mu M) and duration (72 hr) tested. Tipping points were identified as concentration-dependent transitions in system recovery, and the corresponding critical concentrations were generally between 5 and 15 times (25th and 75th percentiles, respectively) lower than the concentration that produced any significant effect on HepG2 cells. The remaining 297 chemicals require more data before they can be placed in either of these categories.


CONCLUSIONS: These findings show the utility of HCI data for reconstructing cell state trajectories and provide insight into the adaptation and resilience of in vitro cellular systems based on tipping points. Cellular tipping points could be used to define a point of departure for risk-based prioritization of environmental chemicals.


语种英语
WOS记录号WOS:000380749300011
来源期刊ENVIRONMENTAL HEALTH PERSPECTIVES
来源机构美国环保署
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/60862
作者单位1.US EPA, Natl Ctr Computat Toxicol, Off Res & Dev, Res Triangle Pk, NC 27711 USA;
2.North Carolina State Univ, Dept Stat, Raleigh, NC USA;
3.US DOE, ORISE, Oak Ridge, TN USA;
4.North Carolina State Univ, Dept Biol Sci, Raleigh, NC USA;
5.US EPA, Off Sci Coordinat & Policy, Washington, DC 20460 USA;
6.US EPA, Off Res & Dev, Washington, DC 20460 USA;
7.US FDA, Ctr Food Safety & Appl Nutr, Off Food Addit Safety, College Pk, MD USA
推荐引用方式
GB/T 7714
Shah, Imran,Setzer, R. Woodrow,Jack, John,et al. Using ToxCast (TM) Data to Reconstruct Dynamic Cell State Trajectories and Estimate Toxicological Points of Departure[J]. 美国环保署,2016,124(7):910-919.
APA Shah, Imran.,Setzer, R. Woodrow.,Jack, John.,Houck, Keith A..,Judson, Richard S..,...&Kavlock, Robert J..(2016).Using ToxCast (TM) Data to Reconstruct Dynamic Cell State Trajectories and Estimate Toxicological Points of Departure.ENVIRONMENTAL HEALTH PERSPECTIVES,124(7),910-919.
MLA Shah, Imran,et al."Using ToxCast (TM) Data to Reconstruct Dynamic Cell State Trajectories and Estimate Toxicological Points of Departure".ENVIRONMENTAL HEALTH PERSPECTIVES 124.7(2016):910-919.
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