Chromosome Aberrations in the Blood Lymphocytes of Astronauts after Space Flight
暂无分享,去创建一个
F A Cucinotta | M. Durante | G. Badhwar | F. Cucinotta | K. George | M Durante | K George | H Wu | V Willingham | G Badhwar | H. Wu | V. Willingham | Marco Durante | Honglu Wu | Kerry George | Francis A. Cucinotta
[1] M. Durante,et al. High-LET radiation-induced aberrations in prematurely condensed G2 chromosomes of human fibroblasts. , 2000, International journal of radiation biology.
[2] T. Ivanova,et al. Do Quiescent Human Peripheral Lymphocytes Repair Radiation-Induced Chromosome Damage? , 2000, Radiation research.
[3] M. Durante,et al. A simple method for simultaneous interphase-metaphase chromosome analysis in biodosimetry. , 1998, International journal of radiation biology.
[4] Icrp. 1990 Recommendations of the International Commission on Radiological Protection , 1991 .
[5] G. Badhwar,et al. The radiation environment in low-Earth orbit. , 1997, Radiation research.
[6] G. Reitz,et al. Chromosomal aberrations in blood lymphocytes of astronauts after long-term space flights. , 1997, International journal of radiation biology.
[7] K. George,et al. Estimate of true incomplete exchanges using fluorescence in situ hybridization with telomere probes. , 1998, International journal of radiation biology.
[8] M. Durante,et al. Rejoining and misrejoining of radiation-induced chromatin breaks. III. Hypertonic treatment. , 1998, Radiation research.
[9] M. Durante,et al. Induction of chromosome aberrations in human cells by charged particles. , 1997, Radiation research.
[10] R. Sievert,et al. Book Reviews : Recommendations of the International Commission on Radiological Protection (as amended 1959 and revised 1962). I.C.R.P. Publication 6. 70 pp. PERGAMON PRESS. Oxford, London and New York, 1964. £1 5s. 0d. [TB/54] , 1964 .
[11] D. Goodhead,et al. Complex chromosome aberrations in peripheral blood lymphocytes as a potential biomarker of exposure to high-LET alpha-particles. , 2000, International journal of radiation biology.
[12] L. Sabatier,et al. Biological dosimetry for astronauts: a real challenge. , 1999, Mutation research.
[13] F A Cucinotta,et al. Analysis of MIR-18 results for physical and biological dosimetry: radiation shielding effectiveness in LEO. , 2000, Radiation measurements.
[14] E. Tawn,et al. Cells with multiple chromosome aberrations in control individuals. , 1985, Mutation research.
[15] L Sabatier,et al. Radiation-induced chromosome damage in astronauts' lymphocytes. , 1996, International Journal of Radiation Biology.
[16] P. V. van Buul,et al. Chromosomal radiosensitivity of human leucocytes in relation to sampling time. , 1980, Mutation research.
[17] J. Lucas,et al. The persistence of chromosome translocations in a radiation worker accidentally exposed to tritium. , 1992, Cytogenetics and cell genetics.
[18] D. Pinkel,et al. Rapid translocation frequency analysis in humans decades after exposure to ionizing radiation. , 1992, International journal of radiation biology.
[19] M. Durante,et al. Biodosimetry results from space flight Mir-18. , 1997, Radiation research.
[20] J. Lucas. Dose reconstruction for individuals exposed to ionizing radiation using chromosome painting. , 1997, Radiation research.
[21] M. Durante,et al. Rejoining and misrejoining of radiation-induced chromatin breaks. IV. Charged particles. , 1998, Radiation research.
[22] T. Kawata,et al. High- and low-LET induced chromosome damage in human lymphocytes: a time-course of aberrations in metaphase and interphase , 2001, International journal of radiation biology.
[23] M. Durante,et al. Association between G2-phase block and repair of radiation-induced chromosome fragments in human lymphocytes. , 1999, Radiation research.
[24] G D Badhwar,et al. Effective Dose Equivalent on the Ninth Shuttle–Mir Mission (STS-91) , 2000, Radiation research.
[25] S. Ritter,et al. Analysis of chromosome damage based on the time course of aberrations. , 1998, International journal of radiation biology.
[26] G. Obe,et al. The human leukocyte test system. III. Premature chromosome condensation from chemically and x-ray induced micronuclei. , 1975, Mutation research.
[27] D. Lloyd,et al. Radiation-induced chromosome damage in human lymphocytes , 1977, British journal of industrial medicine.
[28] F A Cucinotta,et al. Once we know all the radiobiology we need to know, how can we use it to predict space radiation risks and achieve fame and fortune? , 2001, Physica medica : PM : an international journal devoted to the applications of physics to medicine and biology : official journal of the Italian Association of Biomedical Physics.
[29] D. Lloyd,et al. Fluorescence in situ hybridization detection of chromosomal aberrations in human lymphocytes: applicability to biological dosimetry. , 1995, International journal of radiation biology.
[30] A A Edwards,et al. The use of chromosomal aberrations in human lymphocytes for biological dosimetry. , 1997, Radiation research.
[31] J. Neel. An association, in adult Japanese, between the occurrence of rogue cells among cultured lymphocytes (JC virus activity) and the frequency of "simple" chromosomal damage among the lymphocytes of persons exhibiting these rogue cells. , 1998, American journal of human genetics.
[32] B. Dutrillaux,et al. Chromosomal aberrations induced in human lymphocytes by high-LET irradiation. , 1997, International journal of radiation biology.
[33] J. Savage,et al. Dose-response curves for simple and complex chromosome aberrations induced by X-rays and detected using fluorescence in situ hybridization. , 1996, International journal of radiation biology.
[34] J. Savage,et al. On the scoring of FISH-"painted" chromosome-type exchange aberrations. , 1994, Mutation research.
[35] J. Lucas,et al. Emerging technological bases for retrospective dosimetry , 1997, Stem cells.
[36] J. Neel,et al. Cytogenetic "rogue" cells: what is their frequency, origin, and evolutionary significance? , 1986, Proceedings of the National Academy of Sciences of the United States of America.