Interplay of space radiation and microgravity in DNA damage and DNA damage response
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Honglu Wu | T. Lu | M. Moreno-Villanueva | Honglu Wu | María Moreno-Villanueva | Michael Wong | Tao Lu | Ye Zhang | Ye Zhang | Michael Wong
[1] F. Sung,et al. Oxidative DNA damage estimated by urinary 8-hydroxydeoxyguanosine and indoor air pollution among non-smoking office employees. , 2007, Environmental research.
[2] H. Hang,et al. Effects of Simulated Microgravity on Embryonic Stem Cells , 2011, PloS one.
[3] A. Franco-Obregón,et al. Calcium‐dependent deceleration of the cell cycle in muscle cells by simulated microgravity , 2013, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[4] X. Lao,et al. Neoplastic Transformation In Vitro by Mixed Beams of High-Energy Iron Ions and Protons , 2011, Radiation research.
[5] N. Pellis,et al. Modeled microgravity inhibits apoptosis in peripheral blood lymphocytes , 2001, In Vitro Cellular & Developmental Biology - Animal.
[6] F A Cucinotta,et al. Chromosome Aberrations in the Blood Lymphocytes of Astronauts after Space Flight , 2001, Radiation research.
[7] Wei Wei,et al. Simulated microgravity increases heavy ion radiation-induced apoptosis in human B lymphoblasts. , 2014, Life sciences.
[8] A. Takahashi,et al. Alkylating agent (MNU)-induced mutation in space environment. , 2001, Advances in space research : the official journal of the Committee on Space Research.
[9] W. Teughels,et al. Effect of simulated microgravity on salivary and serum oxidants, antioxidants, and periodontal status. , 2011, Journal of periodontology.
[10] A. Takahashi,et al. Detection of DNA damage induced by space radiation in Mir and space shuttle. , 2002, Journal of radiation research.
[11] D. Lewis,et al. Technical aspects. , 1999, Journal of aerosol medicine : the official journal of the International Society for Aerosols in Medicine.
[12] B. Sutherland,et al. Split-dose exposures versus dual ion exposure in human cell neoplastic transformation , 2007, Radiation and environmental biophysics.
[13] Guangming Zhou,et al. Proton-HZE-Particle Sequential Dual-Beam Exposures Increase Anchorage-Independent Growth Frequencies in Primary Human Fibroblasts , 2006, Radiation research.
[14] M. Mognato,et al. Modeled microgravity affects cell survival and HPRT mutant frequency, but not the expression of DNA repair genes in human lymphocytes irradiated with ionising radiation. , 2005, Mutation research.
[15] Alan Feiveson,et al. Cellular responses and gene expression profile changes due to bleomycin-induced DNA damage in human fibroblasts in space , 2017, PloS one.
[16] L. Stodieck,et al. Detection of DNA damage by space radiation in human fibroblasts flown on the International Space Station. , 2017, Life sciences in space research.
[17] C. Mukai,et al. Acclimation during space flight: effects on human physiology , 2009, Canadian Medical Association Journal.
[18] Elena Reddi,et al. “Modeled Microgravity” Affects Cell Response to Ionizing Radiation and Increases Genomic Damage , 2005, Radiation research.
[19] A. Takahashi,et al. The effects of microgravity on ligase activity in the repair of DNA double-strand breaks. , 2000, International journal of radiation biology.
[20] G Horneck,et al. Impact of microgravity on radiobiological processes and efficiency of DNA repair. , 1999, Mutation research.
[21] J Kiefer,et al. Space radiation effects and microgravity. , 1999, Mutation research.
[22] P. Glazer,et al. Interplay between DNA repair and inflammation, and the link to cancer , 2014, Critical reviews in biochemistry and molecular biology.
[23] A. Hargens,et al. Long-duration bed rest as an analog to microgravity. , 2016, Journal of applied physiology.
[24] P. Mosesso,et al. X-ray-induced chromosome aberrations in human lymphocytes in vitro are potentiated under simulated microgravity conditions (Clinostat). , 2001, Physica medica (Testo stampato).
[25] I. Koturbash,et al. Combined exposure to protons and (56)Fe leads to overexpression of Il13 and reactivation of repetitive elements in the mouse lung. , 2015, Life sciences in space research.
[26] B. Fubini,et al. Free-radical chemistry as a means to evaluate lunar dust health hazard in view of future missions to the moon. , 2015, Astrobiology.
[27] M. Durante,et al. Chromosome aberration dosimetry in cosmonauts after single or multiple space flights , 2004, Cytogenetic and Genome Research.
[28] P. Pippia,et al. 5‐Lipoxygenase‐dependent apoptosis of human lymphocytes in the International Space Station: data from the ROALD experiment , 2012, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[29] Kaoru Sugasawa,et al. Frozen human cells can record radiation damage accumulated during space flight: mutation induction and radioadaptation , 2011, Radiation and environmental biophysics.
[30] A. Takahashi,et al. Detection of space radiation-induced double strand breaks as a track in cell nucleus. , 2009, Biochemical and biophysical research communications.
[31] Hong Zhang,et al. Simulated microgravity conditions and carbon ion irradiation induce spermatogenic cell apoptosis and sperm DNA damage. , 2013, Biomedical and environmental sciences : BES.
[32] R A Hoffman,et al. Light Flashes Observed by Astronauts on Skylab 4 , 1975, Science.
[33] F. Cucinotta,et al. Comparison of chromosome aberration frequencies in pre- and post-flight astronaut lymphocytes irradiated in vitro with gamma rays. , 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.
[34] M. Durante,et al. Biological dosimetry in Russian and Italian astronauts. , 2003, Advances in space research : the official journal of the Committee on Space Research.
[35] M. Mognato,et al. DNA repair in modeled microgravity: double strand break rejoining activity in human lymphocytes irradiated with gamma-rays. , 2009, Mutation research.
[36] I. Koturbash,et al. A priming dose of protons alters the early cardiac cellular and molecular response to (56)Fe irradiation. , 2016, Life sciences in space research.
[37] T P Stein,et al. Oxidant damage during and after spaceflight. , 2000, American journal of physiology. Endocrinology and metabolism.
[38] John B. West,et al. Historical Perspectives: Physiology in microgravity , 2000 .
[39] Jens Hauslage,et al. Ground-based facilities for simulation of microgravity: organism-specific recommendations for their use, and recommended terminology. , 2013, Astrobiology.
[40] M. Durante,et al. Modelled microgravity does not modify the yield of chromosome aberrations induced by high-energy protons in human lymphocytes , 2005, International journal of radiation biology.
[41] T. Budinger,et al. Visual Perception of Accelerated Nitrogen Nuclei interacting with the Human Retina , 1972, Nature.
[42] J. Rhone,et al. Cytogenetic damage in the blood lymphocytes of astronauts: effects of repeat long-duration space missions. , 2013, Mutation research.
[43] Tim De Meyer,et al. High Content Analysis of Human Fibroblast Cell Cultures after Exposure to Space Radiation , 2009, Radiation Research.
[44] S. Bhasin,et al. Alteration of gene expression profiles in skeletal muscle of rats exposed to microgravity during a spaceflight. , 2002, Journal of gravitational physiology : a journal of the International Society for Gravitational Physiology.
[45] G Horneck,et al. The influence of microgravity on repair of radiation-induced DNA damage in bacteria and human fibroblasts. , 1997, Radiation research.
[46] F. Zipp,et al. Rapid alterations of cell cycle control proteins in human T lymphocytes in microgravity , 2012, Cell Communication and Signaling.
[47] F A Cucinotta,et al. Space Radiation and Cataracts in Astronauts , 2001, Radiation research.
[48] M. Bender,et al. The Gemini XI S-4 spaceflight-radiation interaction experiment: the human blood experiment. , 1968, Radiation research.
[49] B. Crucian,et al. Altered cytokine production by specific human peripheral blood cell subsets immediately following space flight. , 2000, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[50] M. Hada,et al. Chromosome aberrations induced by dual exposure of protons and iron ions , 2007, Radiation and environmental biophysics.
[51] Marco Durante,et al. Cancer risk from exposure to galactic cosmic rays: implications for space exploration by human beings. , 2006, The Lancet. Oncology.
[52] Millennia Foy,et al. Relationship Between Carbon Dioxide Levels and Reported Headaches on the International Space Station , 2014, Journal of occupational and environmental medicine.
[53] J B West. Physiology in microgravity. , 2000, Journal of applied physiology.
[54] J Kiefer,et al. Induction and Repair of DNA Double-Strand Breaks under Irradiation and Microgravity , 2000, Radiation research.
[55] G. Badhwar,et al. Long-term modulation of Galactic Cosmic Radiation and its model for space exploration. , 1994, Advances in space research : the official journal of the Committee on Space Research.
[56] Kamaleshwar P Singh,et al. Simulated microgravity decreases DNA repair capacity and induces DNA damage in human lymphocytes , 2009, Journal of cellular biochemistry.
[57] D. Rickman,et al. Reactive Oxygen Species (ROS) generation by lunar simulants , 2016 .
[58] Yanlei Hao,et al. Hindlimb unloading rodent model : technical aspects , 2002 .
[59] M. Little,et al. Non-targeted effects of ionising radiation--implications for low dose risk. , 2013, Mutation research.
[60] H. Hang,et al. Increased Sensitivity of DNA Damage Response-Deficient Cells to Stimulated Microgravity-Induced DNA Lesions , 2015, PloS one.
[61] Yeqing Sun,et al. Effects of microgravity on DNA damage response in Caenorhabditis elegans during Shenzhou-8 spaceflight , 2015, International journal of radiation biology.
[62] G. Fazio,et al. Generation of Cherenkov Light Flashes by Cosmic Radiation within the Eyes of the Apollo Astronauts , 1970, Nature.
[63] D. Hu,et al. Simulated microgravity induced damage in human retinal pigment epithelial cells. , 2006, Molecular vision.
[64] M. Bender,et al. The Gemini-3 S-4 spaceflight-radiation interaction experiment. , 1967, Radiation research.
[65] Gabriele Sales,et al. Analysis of miRNA and mRNA Expression Profiles Highlights Alterations in Ionizing Radiation Response of Human Lymphocytes under Modeled Microgravity , 2012, PloS one.