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Integrating toxicogenomics into human health risk assessment: lessons learned from the benzo[a]pyrene case study.将毒理基因组学整合到人类健康风险评估中:从苯并[a]芘案例研究中吸取的经验教训。
Crit Rev Toxicol. 2015 Jan;45(1):44-52. doi: 10.3109/10408444.2014.973935.
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Systematic Omics Analysis Review (SOAR) tool to support risk assessment.支持风险评估的系统组学分析综述(SOAR)工具。
PLoS One. 2014 Dec 22;9(12):e110379. doi: 10.1371/journal.pone.0110379. eCollection 2014.
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A comprehensive assessment of RNA-seq accuracy, reproducibility and information content by the Sequencing Quality Control Consortium.测序质量控制联盟对RNA测序准确性、可重复性和信息含量的全面评估。
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Transcriptional responses in the rat nasal epithelium following subchronic inhalation of naphthalene vapor.萘蒸气亚慢性吸入后大鼠鼻上皮中的转录反应。
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Mode of action human relevance (species concordance) framework: Evolution of the Bradford Hill considerations and comparative analysis of weight of evidence.作用模式的人体相关性(物种一致性)框架:布拉德福德·希尔考量因素的演变及证据权重的比较分析
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A framework for the next generation of risk science.下一代风险科学的框架。
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The noncoding RNA revolution-trashing old rules to forge new ones.非编码 RNA 革命——打破旧规则,开创新局面。
Cell. 2014 Mar 27;157(1):77-94. doi: 10.1016/j.cell.2014.03.008.
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Long noncoding RNAs: emerging stars in gene regulation, epigenetics and human disease.长链非编码RNA:基因调控、表观遗传学及人类疾病领域的后起之秀
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Mapping the human toxome by systems toxicology.通过系统毒理学绘制人类毒物组。
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基因表达谱在环境化学物质人体健康风险评估中的应用技术指南。

Technical guide for applications of gene expression profiling in human health risk assessment of environmental chemicals.

作者信息

Bourdon-Lacombe Julie A, Moffat Ivy D, Deveau Michelle, Husain Mainul, Auerbach Scott, Krewski Daniel, Thomas Russell S, Bushel Pierre R, Williams Andrew, Yauk Carole L

机构信息

Water and Air Quality Bureau, Health Canada, Ottawa, ON, Canada.

Water and Air Quality Bureau, Health Canada, Ottawa, ON, Canada.

出版信息

Regul Toxicol Pharmacol. 2015 Jul;72(2):292-309. doi: 10.1016/j.yrtph.2015.04.010. Epub 2015 May 2.

DOI:10.1016/j.yrtph.2015.04.010
PMID:25944780
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7970737/
Abstract

Toxicogenomics promises to be an important part of future human health risk assessment of environmental chemicals. The application of gene expression profiles (e.g., for hazard identification, chemical prioritization, chemical grouping, mode of action discovery, and quantitative analysis of response) is growing in the literature, but their use in formal risk assessment by regulatory agencies is relatively infrequent. Although additional validations for specific applications are required, gene expression data can be of immediate use for increasing confidence in chemical evaluations. We believe that a primary reason for the current lack of integration is the limited practical guidance available for risk assessment specialists with limited experience in genomics. The present manuscript provides basic information on gene expression profiling, along with guidance on evaluating the quality of genomic experiments and data, and interpretation of results presented in the form of heat maps, pathway analyses and other common approaches. Moreover, potential ways to integrate information from gene expression experiments into current risk assessment are presented using published studies as examples. The primary objective of this work is to facilitate integration of gene expression data into human health risk assessments of environmental chemicals.

摘要

毒理基因组学有望成为未来环境化学物质对人类健康风险评估的重要组成部分。基因表达谱的应用(例如用于危害识别、化学物质优先级排序、化学物质分组、作用机制发现以及反应的定量分析)在文献中的应用日益增多,但监管机构在正式风险评估中对其使用相对较少。尽管特定应用需要额外验证,但基因表达数据可立即用于增强对化学评估的信心。我们认为,目前缺乏整合的一个主要原因是,对于在基因组学方面经验有限的风险评估专家而言,可用的实际指导有限。本手稿提供了基因表达谱分析的基本信息,以及评估基因组实验和数据质量的指导,以及以热图、通路分析和其他常见方法呈现的结果解读。此外,以已发表的研究为例,介绍了将基因表达实验信息整合到当前风险评估中的潜在方法。这项工作的主要目标是促进将基因表达数据整合到环境化学物质对人类健康的风险评估中。