Theoretical analysis of the dose dependence of the oxygen enhancement ratio and its relevance for clinical applications
暂无分享,去创建一个
[1] U Oelfke,et al. A phenomenological model for the relative biological effectiveness in therapeutic proton beams. , 2004, Physics in medicine and biology.
[2] B. Vojnovic,et al. The irradiation of V79 mammalian cells by protons with energies below 2 MeV. Part I: Experimental arrangement and measurements of cell survival. , 1989, International journal of radiation biology.
[3] P. Vaupel,et al. Hypoxia in cancer: significance and impact on clinical outcome , 2007, Cancer and Metastasis Reviews.
[4] E. Hall,et al. Radiobiology for the radiologist , 1973 .
[5] J. Lyman,et al. In vivo cell survival and volume response characteristics of rat rhabdomyosarcoma tumors irradiated in the extended peak region of carbon- and neon-ion beams. , 1980, Radiation research.
[6] J. Lyman,et al. Survival of oxygenated and hypoxic tumor cells in the extended-peak regions of heavy charged-particle beams. , 1982, Radiation research.
[7] J. Lyman,et al. Inactivation of human kidney cells by high-energy monoenergetic heavy-ion beams. , 1979, Radiation research.
[8] J. Fowler,et al. Radiosensitization of Chinese hamster cells by oxygen and misonidazole at low X-ray doses. , 1986, International journal of radiation biology and related studies in physics, chemistry, and medicine.
[9] David J. Carlson,et al. Effects of oxygen on intrinsic radiation sensitivity: A test of the relationship between aerobic and hypoxic linear-quadratic (LQ) model parametersa). , 2006, Medical physics.
[10] Daniela Thorwarth,et al. Implementation of hypoxia imaging into treatment planning and delivery. , 2010, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[11] David J. Carlson,et al. Comparison of in vitro and in vivo a/ ratios for prostate cancer , 2004 .
[12] S. Curtis. Letter: The OER of mixed high- and low-LET radiation. , 1976, Radiation research.
[13] M. Dewhirst,et al. Tumor hypoxia adversely affects the prognosis of carcinoma of the head and neck. , 1997, International journal of radiation oncology, biology, physics.
[14] R. A. Cox,et al. OER and RBE for negative pion beams of different peak widths. , 1979, The British journal of radiology.
[15] Daniela Thorwarth,et al. Modelling and simulation of [18F]fluoromisonidazole dynamics based on histology-derived microvessel maps , 2011, Physics in medicine and biology.
[16] A. Begg,et al. Resistance of hypoxic cells to ionizing radiation is influenced by homologous recombination status. , 2006, International journal of radiation oncology, biology, physics.
[17] E. Hall. The effect of hypoxia on the repair of sublethal radiation damage in cultured mammalian cells. , 1972, Radiation research.
[18] C. J. Gillespie,et al. The inactivation of Chinese hamster cells by x rays: the effects of chemical modifiers on single- and double-events. , 1975, Radiation research.
[19] J P Logue,et al. Tumour oxygenation levels correlate with dynamic contrast-enhanced magnetic resonance imaging parameters in carcinoma of the cervix. , 2000, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[20] J P Freyer,et al. Oxygen enhancement ratio as a function of dose and cell cycle phase for radiation-resistant and sensitive CHO cells. , 1991, Radiation research.
[21] D. Hristov,et al. Adapting radiotherapy to hypoxic tumours , 2006, Physics in medicine and biology.
[22] L. Skarsgard,et al. Dose dependence of the oxygen enhancement ratio (OER) in radiation inactivation of Chinese hamster V79-171 cells. , 1991, Radiation Research.
[23] Jan J Wilkens,et al. Modelling of the oxygen enhancement ratio for ion beam radiation therapy , 2011, Physics in medicine and biology.
[24] T. Kanai,et al. Inactivation of Aerobic and Hypoxic Cells from Three Different Cell Lines by Accelerated 3He-, 12C- and 20Ne-Ion Beams , 2000, Radiation research.
[25] David J Brenner,et al. The linear-quadratic model is an appropriate methodology for determining isoeffective doses at large doses per fraction. , 2008, Seminars in radiation oncology.
[26] P. Vaupel,et al. Hypoxia and Radiation Response in Human Tumors. , 1996, Seminars in radiation oncology.
[27] R. A. Cox,et al. A heavy particle comparative study. Part III: OER and RBE. , 1978, The British journal of radiology.
[28] Jian Z. Wang,et al. Comparison of in vitro and in vivo alpha/beta ratios for prostate cancer. , 2004, Physics in medicine and biology.
[29] Dag Rune Olsen,et al. Strategies for biologic image-guided dose escalation: a review. , 2009, International journal of radiation oncology, biology, physics.
[30] P. Keall,et al. Hypofractionation results in reduced tumor cell kill compared to conventional fractionation for tumors with regions of hypoxia. , 2011, International journal of radiation oncology, biology, physics.
[31] K. Prise,et al. The irradiation of V79 mammalian cells by protons with energies below 2 MeV. Part II. Measurement of oxygen enhancement ratios and DNA damage. , 1990, International journal of radiation biology.
[32] Vladimir A Semenenko,et al. Effects of oxygen on intrinsic radiation sensitivity: A test of the relationship between aerobic and hypoxic linear-quadratic (LQ) model parameters. , 2006, Medical physics.
[33] Georgios S Stamatakos,et al. A spatio-temporal simulation model of the response of solid tumours to radiotherapy in vivo: parametric validation concerning oxygen enhancement ratio and cell cycle duration. , 2004, Physics in medicine and biology.
[34] TIKVAH ALPER,et al. Role of Oxygen in Modifying the Radiosensitivity of E. Coli B. , 1956, Nature.
[35] R. Shridhar,et al. Characteristic 8 keV X Rays Possess Radiobiological Properties of Higher-LET Radiation , 2010, Radiation research.
[36] A. Maggi,et al. Relationships between cell killing, mutation induction and DNA damage in X-irradiated V79 cells: the influence of oxygen and DMSO. , 1991, International journal of radiation biology.
[37] T L Phillips,et al. Oxygen in human tumors: correlations between methods of measurement and response to therapy. Summary of a workshop held November 19-20, 1992, at the National Cancer Institute, Bethesda, Maryland. , 1993, Radiation research.
[38] A. Kellerer,et al. A generalized formulation of dual radiation action. , 2012, Radiation research.
[39] P. Vaupel,et al. Tumor hypoxia: definitions and current clinical, biologic, and molecular aspects. , 2001, Journal of the National Cancer Institute.
[40] R K Sachs,et al. The link between low-LET dose-response relations and the underlying kinetics of damage production/repair/misrepair. , 1997, International journal of radiation biology.
[41] L. Verhey,et al. Relative biological effectiveness of a high energy modulated proton beam using a spontaneous murine tumor in vivo. , 1980, International journal of radiation oncology, biology, physics.
[42] H. Lyng,et al. Hypoxia-induced treatment failure in advanced squamous cell carcinoma of the uterine cervix is primarily due to hypoxia-induced radiation resistance rather than hypoxia-induced metastasis , 2000, British Journal of Cancer.
[43] X. Li,et al. Dose escalation to combat hypoxia in prostate cancer: a radiobiological study on clinical data. , 2006, The British journal of radiology.
[44] Steven F Petit,et al. Intra-voxel heterogeneity influences the dose prescription for dose-painting with radiotherapy: a modelling study , 2009, Physics in medicine and biology.
[45] B. Wouters,et al. Cells at intermediate oxygen levels can be more important than the "hypoxic fraction" in determining tumor response to fractionated radiotherapy. , 1997, Radiation research.
[46] E. Malaise,et al. Measurement of RBE, OER, and recovery of potentially lethal damage of a 645 MeV helium ion beam using EMT6 cells. , 1977, Radiation research.
[47] Harald Paganetti,et al. Relative biological effectiveness (RBE) values for proton beam therapy. , 2002, International journal of radiation oncology, biology, physics.