Effects of Extremely Low-Frequency Electromagnetic Fields on Delayed Chromosomal Instability Induced by Bleomycin in Normal Human Fibroblast Cells
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Hye Kyoung Jeon | H. Chung | Y. Cho | Hai Won Chung | Yoon Hee Cho | H. K. Jeon | Y. Cho
[1] Keiji Suzuki,et al. Radiation-induced DNA damage and delayed induced genomic instability , 2003, Oncogene.
[2] D. Petering,et al. DNA strand breakage in isolated nuclei subjected to bleomycin or hydrogen peroxide. , 1994, Biochemical pharmacology.
[3] Robert Winker,et al. Chromosomal damage in human diploid fibroblasts by intermittent exposure to extremely low-frequency electromagnetic fields. , 2005, Mutation research.
[4] Keiji Suzuki,et al. Involvement of reactive oxygen species (ROS) in the induction of genetic instability by radiation. , 2004, Journal of radiation research.
[5] C. Streffer,et al. A cytogenetic analysis of the long-term effect of uranium mining on peripheral lymphocytes using the micronucleus–centromere assay , 2001, International journal of radiation biology.
[6] I. Lagroye,et al. The effect of 50 Hz electromagnetic fields on the formation of micronuclei in rodent cell lines exposed to gamma radiation. , 1997, International journal of radiation biology.
[7] H. Rüdiger,et al. Cell type-specific genotoxic effects of intermittent extremely low-frequency electromagnetic fields. , 2005, Mutation research.
[8] N. Wertheimer,et al. Electrical wiring configurations and childhood cancer. , 1979, American journal of epidemiology.
[9] K. Münger,et al. Centrosome abnormalities, genomic instability and carcinogenic progression. , 2001, Biochimica et biophysica acta.
[10] A. Boninsegna,et al. 50-Hz extremely low frequency electromagnetic fields enhance cell proliferation and DNA damage: possible involvement of a redox mechanism. , 2005, Biochimica et biophysica acta.
[11] J. Day,et al. Genomic instability induced by ionizing radiation. , 1996, Radiation research.
[12] R. Hesketh,et al. Biological responses to electromagnetic fields 1 , 1998, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[13] W. Morgan. Is there a common mechanism underlying genomic instability, bystander effects and other nontargeted effects of exposure to ionizing radiation? , 2003, Oncogene.
[14] A. Miller,et al. Leukemia following occupational exposure to 60-Hz electric and magnetic fields among Ontario electric utility workers. , 1996, American journal of epidemiology.
[15] J. Walleczek,et al. Increase in radiation-induced HPRT gene mutation frequency after nonthermal exposure to nonionizing 60 Hz electromagnetic fields. , 1999, Radiation research.
[16] W. Löscher,et al. Animal studies on the role of 50/60-Hertz magnetic fields in carcinogenesis. , 1994, Life sciences.
[17] K. Trott,et al. Delayed cytotoxic and genotoxic effects in a human cell line following X-irradiation. , 1999, International journal of radiation biology.
[18] M. Simkó,et al. Absence of synergistic effects on micronucleus formation after exposure to electromagnetic fields and asbestos fibers in vitro. , 1999, Toxicology letters.
[19] G. Wahl,et al. Sensitivity and selectivity of the DNA damage sensor responsible for activating p53-dependent G1 arrest. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[20] W. Wharton. Repression of G0/G1 Traverse in Human Fibroblasts Exposed to Low Levels of Ionizing Radiation* , 2004, Journal of Biological Chemistry.
[21] C. Mothersill,et al. High yields of lethal mutations in somatic mammalian cells that survive ionizing radiation. , 1986, International journal of radiation biology and related studies in physics, chemistry, and medicine.
[22] T. Rytömaa,et al. Possible cocarcinogenic effects of ELF electromagnetic fields may require repeated long-term interaction with known carcinogenic factors. , 2000, Bioelectromagnetics.
[23] H. Chung,et al. The effect of extremely low frequency electromagnetic fields (ELF-EMF) on the frequency of micronuclei and sister chromatid exchange in human lymphocytes induced by benzo(a)pyrene. , 2003, Toxicology letters.
[24] D. T. Goodhead,et al. α-particle-induced chromosomal instability in human bone marrow cells , 1994, The Lancet.
[25] M. Ramírez,et al. Micronuclei, centromere-positive micronuclei and chromosome nondisjunction in cytokinesis blocked human lymphocytes following mitomycin C or vincristine treatment. , 1997, Mutation research.
[26] L. Povirk,et al. Genotoxicity of bleomycin. , 1991, Mutation research.
[27] R. Heim,et al. Heterozygous manifestations in four autosomal recessive human cancer-prone syndromes: ataxia telangiectasia, xeroderma pigmentosum, Fanconi anemia, and Bloom syndrome. , 1992, Mutation research.
[28] D. T. Goodhead,et al. Transmission of chromosomal instability after plutonium α-particle irradiation , 1992, Nature.
[29] W. Löscher,et al. A histopathological study on alterations in DMBA-induced mammary carcinogenesis in rats with 50 Hz, 100 muT magnetic field exposure. , 1995, Carcinogenesis.
[30] J. Phillips,et al. Differential induction of chromosomal instability by DNA strand-breaking agents. , 1997, Cancer research.
[31] G. Obe,et al. Cytological effects of 50 Hz electromagnetic fields on human lymphocytes in vitro. , 1995, Mutation research.
[32] J. Little,et al. Evidence that DNA double-strand breaks initiate the phenotype of delayed reproductive death in Chinese hamster ovary cells. , 1992, Radiation research.
[33] J. Little. Genomic instability and bystander effects: a historical perspective , 2003, Oncogene.
[34] J. Little,et al. Delayed appearance of lethal and specific gene mutations in irradiated mammalian cells. , 1990, International journal of radiation oncology, biology, physics.
[35] R. Vallee,et al. Direct Interaction of Pericentrin with Cytoplasmic Dynein Light Intermediate Chain Contributes to Mitotic Spindle Organization , 1999, The Journal of cell biology.
[36] E. Wright,et al. Radiation-induced genomic instability and bystander effects: related inflammatory-type responses to radiation-induced stress and injury? A review , 2003, International journal of radiation biology.
[37] K. Kinzler,et al. Requirement for p53 and p21 to sustain G2 arrest after DNA damage. , 1998, Science.
[38] H. Weier,et al. Analysis of radiation-induced micronuclei by fluorescence in situ hybridization (FISH) simultaneously using telomeric and centromeric DNA probes. , 1992, Radiation research.
[39] D. Bird,et al. Behavior of free-ranging and captive American kestrels under electromagnetic fields. , 2000, Journal of toxicology and environmental health. Part A.
[40] Jostein Dahle,et al. Induction of delayed mutations and chromosomal instability in fibroblasts after UVA-, UVB-, and X-radiation. , 2003, Cancer research.
[41] W. Löscher,et al. Acceleration of mammary tumorigenesis by exposure of 7,12-dimethylbenz[a]anthracene-treated female rats in a 50-Hz, 100-microT magnetic field: replication study. , 1998, Journal of toxicology and environmental health. Part A.
[42] W. Morgan,et al. DNA double-strand breaks, chromosomal rearrangements, and genomic instability. , 1998, Mutation research.
[43] K. Fernie,et al. The Effects of Electromagnetic Fields From Power Lines on Avian Reproductive Biology and Physiology: A Review , 2005, Journal of toxicology and environmental health. Part B, Critical reviews.
[44] C. Streffer,et al. Increased chromosome aberration levels in cells from mouse fetuses after zygote X-irradiation. , 1989, International journal of radiation biology.
[45] M. Fenech. The in vitro micronucleus technique. , 2000, Mutation research.
[46] Howard Frumkin,et al. Residential proximity to electricity transmission and distribution equipment and risk of childhood leukemia, childhood lymphoma, and childhood nervous system tumors: systematic review, evaluation, and meta-analysis , 1994, Cancer Causes & Control.