Evaluation of nonthreshold leukemogenic response to methyl nitrosourea in p53-deficient C3H/He mice.
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Isao Yoshimura | Jun Kanno | Yukio Kodama | Yuji Kurokawa | Yoko Hirabayashi | Tohru Inoue | J. Kanno | S. Aizawa | Y. Hirabayashi | Y. Kodama | Y. Kurokawa | I. Yoshimura | Kazuko Yoshida | Tohru Inoue | Kazuko Yoshida | Shin-ichi Aizawa
[1] D. Cooper,et al. DNA repair: kinetics and thresholds. , 2000, Toxicologic pathology.
[2] R. Fry. The question of thresholds for carcinogenesis. , 1989, Cancer investigation.
[3] E. Cronkite,et al. Residual toxicity in hematopoietic cells following a single dose of methylnitrosourea. , 1984, Leukemia research.
[4] F. Oesch,et al. Metabolic Detoxification: Implications for Thresholds , 2000, Toxicologic pathology.
[5] O. Sansom,et al. Heterozygosity for p53 promotes microsatellite instability and tumorigenesis on a Msh2 deficient background , 2002, Oncogene.
[6] C. Richard Cothern,et al. Risk assessment and risk management of industrial and environmental chemicals , 1988 .
[7] T. Suda,et al. Stimulatory effects of granulocyte colony-stimulating factor on colony-forming units-spleen (CFU-S) differentiation and pre-CFU-S proliferation in mice. , 1991, Blood.
[8] C. Kemp. Hepatocarcinogenesis in p53‐deficient mice , 1995, Molecular carcinogenesis.
[9] B. D. Beck,et al. Implications of arsenic genotoxicity for dose response of carcinogenic effects. , 1996, Regulatory toxicology and pharmacology : RTP.
[10] H Greim,et al. International Commission for Protection against Environmental Mutagens and Carcinogens. ICPEMC publication no. 10. Review of the evidence for the presence or absence of thresholds in the induction of genetic effects by genotoxic chemicals. , 1983, Mutation research.
[11] Simon A. Levin,et al. Introduction to Mathematics for Life Scientists. , 1972 .
[12] Y. Seo,et al. p53 regulation of DNA excision repair pathways. , 2002, Mutagenesis.
[13] A. Povey. DNA Adducts: Endogenous and Induced , 2000, Toxicologic pathology.
[14] L. Strong,et al. Germ line p53 mutations in a familial syndrome of breast cancer, sarcomas, and other neoplasms. , 1990, Science.
[15] Annette J. Dobson,et al. An introduction to generalized linear models , 1991 .
[16] J. Goodman,et al. Hypomethylation of DNA: a possible epigenetic mechanism involved in tumor promotion. , 1995, Progress in clinical and biological research.
[17] J. Till,et al. A direct measurement of the radiation sensitivity of normal mouse bone marrow cells. , 1961, Radiation research.
[18] A Elhajouji,et al. Concepts of threshold in mutagenesis and carcinogenesis. , 2000, Mutation research.
[19] G M Williams,et al. Mechanistic Basis for Nonlinearities and Thresholds in Rat Liver Carcinogenesis by the DNA-Reactive Carcinogens 2-Acetylaminofluorene and Diethylnitrosamine , 2000, Toxicologic pathology.
[20] G. Blau,et al. Mechanisms of carcinogenesis: dose response. , 1978, Journal of environmental pathology and toxicology.
[21] W. Bursch,et al. Dose-response and threshold effects in cytotoxicity and apoptosis. , 2000, Mutation research.
[22] T. Yagi,et al. Enhanced proliferative potential in culture of cells from p53-deficient mice. , 1993, Oncogene.
[23] E A Crouch,et al. Dose-response relationships for carcinogens: a review. , 1987, Environmental health perspectives.
[24] S. Amundson,et al. Implication of p53 in base excision DNA repair: in vivo evidence , 2002, Oncogene.
[25] S. Wakana,et al. Rapid induction of more malignant tumors by various genotoxic carcinogens in transgenic mice harboring a human prototype c-Ha-ras gene than in control non-transgenic mice. , 1996, Carcinogenesis.
[26] P. Shubik,et al. A New, Quantitative, Approach to the Study of the Stages of Chemical Carcinogenesis in the Mouse's Skin , 1947, British Journal of Cancer.
[27] D. Gaylor,et al. Journal Abstracts , 1979, Journal of environmental pathology and toxicology.
[28] Loss of heterozygosity frequency at the Trp53 locus in p53-deficient (+/-) mouse tumors is carcinogen-and tissue-dependent. , 2001, Carcinogenesis.
[29] D A Pierce,et al. Radiation-Related Cancer Risks at Low Doses among Atomic Bomb Survivors , 2000, Radiation research.
[30] D. Pierce,et al. Radiation Dose Dependences in the Atomic Bomb Survivor Cancer Mortality Data: A Model-Free Visualization , 2000, Radiation research.
[31] B. Terracini,et al. The roles of age at treatment and dose in carcinogenesis in C3Hf/Dp mice with a single administration of N-nitroso-N-methylurea. , 1976, British Journal of Cancer.
[32] X. Le,et al. Inducible repair of thymine glycol detected by an ultrasensitive assay for DNA damage. , 1998, Science.
[33] D P Lovell. Dose-response and threshold-mediated mechanisms in mutagenesis: statistical models and study design. , 2000, Mutation research.
[34] D. Henschler. New approaches to a definition of threshold values for “irreversible” toxic effects? , 1974, Archives of Toxicology.
[35] R. Eker,et al. Mechanisms of Carcinogenesis1 , 1962 .
[36] P. D. Lawley,et al. Thymomas induced by simple alkylating agents in C57BL/Cbi mice: kinetics of the dose response. , 1980, Journal of the National Cancer Institute.
[37] J. Fraumeni,et al. Soft-tissue sarcomas, breast cancer, and other neoplasms. A familial syndrome? , 1969, Annals of internal medicine.
[38] J. Goodman,et al. Hypomethylation of DNA: a possible epigenetic mechanism involved in tumor promotion. , 1995, Progress in clinical and biological research.
[39] I. Purchase,et al. Thresholds in chemical carcinogenesis. , 1995, Regulatory toxicology and pharmacology : RTP.
[40] E. Moustacchi,et al. DNA damage and repair: consequences on dose-responses. , 2000, Mutation research.
[41] 岩崎 民子. SOURCES AND EFFECTS OF IONIZING RADIATION : United Nations Scientific Committee on the Effects of Atomic Radiation UNSCEAR 2000 Report to the General Assembly, with Scientific Annexes , 2002 .
[42] T. Inoue,et al. Nature of leukemic stem cells in murine myelogenous leukemia. , 1986, International journal of cell cloning.
[43] Gary M Williams,et al. Types and amounts of carcinogens as potential human cancer hazards , 1989, Cell Biology and Toxicology.
[44] A. Balmain,et al. p53-deficient mice are extremely susceptible to radiation-induced tumorigenesis , 1994, Nature Genetics.
[45] S. Aizawa,et al. The p53-deficient hemopoietic stem cells: their resistance to radiation-apoptosis, but lasted transiently. , 1997, Leukemia.
[46] J. Goodman,et al. Hypomethylation of DNA: a possible nongenotoxic mechanism underlying the role of cell proliferation in carcinogenesis. , 1993, Environmental health perspectives.
[47] I. Purchase. Current Knowledge of Mechanisms of Carcinogenicity: Genotoxins versus Non-genotoxins , 1994, Human & experimental toxicology.
[48] E. Friedberg,et al. DNA damage and repair , 2003, Nature.
[49] K. Yoshida,et al. Calorie restriction reduces the incidence of myeloid leukemia induced by a single whole-body radiation in C3H/He mice. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[50] T. Frebourg,et al. Screening for TP53 rearrangements in families with the Li–Fraumeni syndrome reveals a complete deletion of the TP53 gene , 2003, Oncogene.
[51] L. Donehower,et al. Spontaneous and carcinogen–induced tumorigenesis in p53–deficient mice , 1993, Nature Genetics.
[52] R. Jaszewski,et al. Age-associated loss of heterozygosity of tumor suppressor genes in the gastric mucosa of humans. , 2002, American journal of physiology. Gastrointestinal and liver physiology.
[53] B. Bridges,et al. Hypothetical dose-response curves for chronic exposures to mutagens or carcinogens subject to simple enzymatic detoxification in the mammalian body. , 1975, Mutation research.
[54] J A Swenberg,et al. Dose-response relationships for carcinogens. , 1995, Toxicology letters.
[55] Y. Hirabayashi,et al. Stem-cell leukemia: p53 deficiency mediated suppression of leukemic differentiation in C3H/He myeloid leukemia. , 2002, Leukemia research.
[56] A Elhajouji,et al. Indications for a threshold of chemically‐induced aneuploidy in vitro in human lymphocytes , 1995, Environmental and molecular mutagenesis.
[57] M. Qumsiyeh,et al. No Requirement for V(D)J Recombination in p53-Deficient Thymic Lymphoma , 1998, Molecular and Cellular Biology.