Scheepers P T J, Beckmann G, Biesterbos J W H, et al. Biomarkers of environmental risk factors for prevention and research[J]. Trends in Analytical Chemistry, 2013, 52:275-281
|
Anway M D, Rekow S S, Skinner M K. Transgenerational epigenetic programming of the embryonic testis transcriptome[J]. Genomics, 2008, 91:30-40
|
Kitamura S, Suzuki T, Sanoh S, et al. Comparative study of the endocrine-disrupting activity of bisphenol A and 19 related compounds[J]. Toxicological Sciences, 2005, 84(2):249-259
|
文育, 雷炳莉, 康佳, 等. 双酚A类同系物的雌激素效应及对MCF-7细胞的毒性[J]. 上海大学学报:自然科学版, 2015, 21(4):515-524
Wen Y, Lei B L, Kang J, et al. Estrogen activity and toxicity efects of bisphenol A analogues on MCF-7 cells[J]. Journal of Shanghai University:Natural Science, 2015, 21(4):515-524(in Chinese)
|
Jensen A A, Leffers H. Emerging endocrine disrupters:Perfluoroalkylated substances[J]. International Journal of Andrology, 2008, 31(2):161-169
|
Lau C, Butenhoff J L, Rogers J M. The developmental toxicity of perfluoroalkyl acids and their derivatives[J]. Toxicology and Applied Pharmacology, 2004, 198(2):231-241
|
Shi X, Liu C, Wu G, et al. Waterborne exposure to PFOS causes disruption of the hypothalamus-pituitary-thyroid axis in zebrafish larvae[J]. Chemosphere, 2009, 77(7):1010-1018
|
Austin M E, Kasturi B S, Barber M, et al. Neuroendocrine effects of perfluorooctane sulfonate in rats[J]. Environmental Health Perspectives, 2003, 111(12):1485-1489
|
Lau C, Thibodeaux J R, Hanson R G, et al. Exposure to perfluorooctane sulfonate during pregnancy in rat and mouse. Ⅱ:Postnatal evaluation[J]. Toxicological Sciences, 2003, 74(2):382-392
|
Xu D, Li C, Chen H, et al. Cellular response of freshwater green algae to perfluorooctanoic acid toxicity[J]. Ecotoxicology and Environmental Safety, 2013, 88:103-107
|
Du G, Huang H, Hu J, et al. Endocrine-related effects of perfluorooctanoic acid (PFOA) in zebrafish, H295R steroidogenesis and receptor reporter gene assays[J]. Chemosphere, 2013, 91(8):1099-1106
|
Oakes K D, Sibley P K, Solomon K R, et al. Impact of perfluorooctanoic acid on fathead minnow (Pimephales promelas) fatty acyl-CoA oxidase activity, circulating steroids, and reproduction in outdoor microcosms[J]. Environmental Toxicology and Chemistry, 2004, 23(8):1912-1919
|
Wei Y, Chan L L, Wang D, et al. Proteomic analysis of hepatic protein profiles in rare minnow (Gobiocypris rarus) exposed to perfluorooctanoic acid[J]. Journal of Proteome Research, 2008, 7(4):1729-1739
|
Ji K, Kim Y, Oh S, et al. Toxicity of perfluorooctane sulfonic acid and perfluorooctanoic acid on freshwater macroinvertebrates (Daphnia magna and Moina macrocopa) and fish (Oryzias latipes)[J]. Environmental Toxicology and Chemistry, 2008, 27(10):2159-2168
|
Lehmler H J. Synthesis of environmentally relevant fluorinated surfactants-A review[J]. Chemosphere, 2005, 58(11):1471-1496
|
Wang Y, Zhou Q, Wang C, et al. Estrogen-like response of perfluorooctyl iodide in male medaka (Oryzias latipes) based on hepatic vitellogenin induction[J]. Environmental Toxicology, 2013, 28(10):571-578
|
钟利桥. 类雌激素生物标志物VTG及潜在生物标志物Vigilin的研究[D]. 北京:中国科学院大学, 2014:5-80 Zhong L Q. Research on VTG biomarker and vigilin potential biomarker of xenoestrogen[D]. Beijing:University of Chinese Academy of Sciences, 2014:5
-80(in Chinese)
|
Dolinoy D C, Jirtle R L. Environmental epigenomics in human health and disease[J]. Environmental and Molecular Mutagenesis, 2008, 49(1):4-8
|
Kundakovic M, Champagne F A. Epigenetic perspective on the developmental effects of bisphenol A[J]. Brain, Behavior and Immunity, 2011, 25(6):1084-1093
|
夏天, 肖丙秀, 郭俊明. 长链非编码RNA的作用机制及其研究方法[J]. 遗传, 2013, 35(3):269-280
Xia T, Xiao B X, Guo J M. Acting mechanisms and research methods of long noncoding RNAs[J]. Genetic, 2013, 35(3):269-280(in Chinese)
|
Dempsey J L, Cui J Y. Long non-coding RNAs:A novel paradigm for toxicology[J]. Toxicological Sciences, 2016, 155(1):3-21
|
Choudhuri S, Cui Y, Klaassen C D. Molecular targets of epigenetic regulation and effectors of environmental influences[J]. Toxicology and Applied Pharmacology, 2010, 245(3):378-393
|
Gao H, Chakraborty G, Lee-Lim A P, et al. Forward genetic screens in mice uncover mediators and suppressors of metastatic reactivation[J]. Proceedings of the National Academy of Sciences, 2014, 111(46):16532-16537
|
孙瑛蔚, 柯洪, 赵梓亦, 等. 阿魏酸通过雌激素受体α调控人乳腺癌细胞系的增殖、迁移及侵袭[J]. 基础医学与临床, 2018, 38(12):1708-1712
Sun Y W, Ke H, Zhao Z Y, et al. Ferulic acid regulates the proliferation, migration and invasion through estrogen receptor α in human breast cancer cell line[J]. Basic & Clinical Medicine, 2018, 38(12):1708-1712(in Chinese)
|
Bernard D, Prasanth K V, Tripathi V, et al. A long nuclear-retained non-coding RNA regulates synaptogenesis by modulating gene expression[J]. The EMBO Journal, 2010, 29(18):3082-3093
|
Lipovich L, Dachet F, Cai J, et al. Activity-dependent human brain coding/noncoding gene regulatory networks[J]. Genetics, 2012, 192(3):1133-1148
|
Kryger R, Fan L, Wilce P A, et al. MALAT-1, a non protein-coding RNA is upregulated in the cerebellum, hippocampus and brain stem of human alcoholics[J]. Alcohol, 2012, 46(7):629-634
|
Cao M X, Song F, Yang X, et al. Identification of potential lncRNA biomarker of mercury compounds in zebrafish embryos[J]. Chemical Research in Toxicology, 2019, 32(5):878-886
|
Livak K J, Schmittgen T D. Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCT method[J]. Methods, 2001, 25(4):402-408
|
Kimmel C B, Patterson J, Kimmel R O. The development and behavioral characteristics of the startle response in the zebrafish[J]. Developmental Psychobiology, 1974, 7(1):47-60
|
Chou J, Wang B, Zheng T, et al. MALAT-1 induced migration and invasion of human breast cancer cells by competitively binding miR-1 with cdc42[J]. Biochemical and Biophysical Research Communications, 2016, 472(1):262-269
|
Huang N, Chi Y, Xue J, et al. Long non-coding RNA metastasis associated in lung adenocarcinoma transcript 1(MALAT-1) interacts with estrogen receptor and predicted poor survival in breast cancer[J]. Oncotarget, 2016, 7(25):37957
|
Ulitsky I, Shkumatava A, Jan C H, et al. Conserved function of lincRNAs in vertebrate embryonic development despite rapid sequence evolution[J]. Cell, 2011, 147:1537-1550
|
Pastori C, Wahlestedt C. Involvement of long noncoding RNAs in diseases affecting the central nervous system[J]. RNA Biology, 2012, 9:860-870
|
Bernard D, Prasanth K V, Tripathi V, et al. A long nuclear-retained non-coding RNA regulates synaptogenesis by modulating gene expression[J]. The EMBO Journal, 2010, 29(18):3082-3093
|