The impact of hypoxia and its modification of the outcome of radiotherapy
暂无分享,去创建一个
[1] J. Bussink,et al. Biology of hypoxia. , 2015, Seminars in nuclear medicine.
[2] 岡本祥三. High reproducibility of tumor hypoxia evaluated by 18 F-fluoromisonidazole PET for head and neck cancer. , 2014 .
[3] R. Bristow,et al. Reprogramming Metabolism with Metformin Improves Tumor Oxygenation and Radiotherapy Response , 2013, Clinical Cancer Research.
[4] M. Horsman,et al. Induction of hypoxia by vascular disrupting agents and the significance for their combination with radiation therapy , 2013, Acta oncologica.
[5] Hao Li,et al. Association of metformin use with cancer incidence and mortality: a meta-analysis. , 2013, Cancer epidemiology.
[6] Keiichi Magota,et al. High Reproducibility of Tumor Hypoxia Evaluated by 18F-Fluoromisonidazole PET for Head and Neck Cancer , 2013, The Journal of Nuclear Medicine.
[7] J. Petersen,et al. Imaging hypoxia to improve radiotherapy outcome , 2012, Nature Reviews Clinical Oncology.
[8] Steen Jakobsen,et al. FAZA PET/CT hypoxia imaging in patients with squamous cell carcinoma of the head and neck treated with radiotherapy: results from the DAHANCA 24 trial. , 2012, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[9] Johannes H Kaanders,et al. Accelerated radiotherapy with carbogen and nicotinamide for laryngeal cancer: results of a phase III randomized trial. , 2012, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[10] C. Hoff. Importance of hemoglobin concentration and its modification for the outcome of head and neck cancer patients treated with radiotherapy , 2012, Acta oncologica.
[11] P. Glazer,et al. Molecular and Cellular Pharmacology of the Hypoxia-Activated Prodrug TH-302 , 2011, Molecular Cancer Therapeutics.
[12] B. S. Sørensen,et al. Development of a hypoxia gene expression classifier with predictive impact for hypoxic modification of radiotherapy in head and neck cancer. , 2011, Cancer research.
[13] Christine Bayer,et al. Acute versus chronic hypoxia: why a simplified classification is simply not enough. , 2011, International journal of radiation oncology, biology, physics.
[14] W. Wilson,et al. Targeting hypoxia in cancer therapy , 2011, Nature Reviews Cancer.
[15] Jan J Wilkens,et al. Modelling of the oxygen enhancement ratio for ion beam radiation therapy , 2011, Physics in medicine and biology.
[16] P. Hoskin,et al. Radiotherapy with concurrent carbogen and nicotinamide in bladder carcinoma. , 2010, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[17] Y. Shibamoto,et al. Efficacy of novel hypoxic cell sensitiser doranidazole in the treatment of locally advanced pancreatic cancer: long-term results of a placebo-controlled randomised study. , 2008, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[18] J. Bussink,et al. Imaging hypoxia in xenografted and murine tumors with 18F-fluoroazomycin arabinoside: a comparative study involving microPET, autoradiography, PO2-polarography, and fluorescence microscopy. , 2008, International journal of radiation oncology, biology, physics.
[19] M. Horsman. Angiogenesis and vascular targeting: Relevance for hyperthermia , 2008, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[20] J. Overgaard,et al. Hyperthermia: a potent enhancer of radiotherapy. , 2007, Clinical oncology (Royal College of Radiologists (Great Britain)).
[21] K. Williams,et al. Bioreductive drugs: from concept to clinic. , 2007, Clinical oncology (Royal College of Radiologists (Great Britain)).
[22] M. Horsman,et al. Pathophysiologic effects of vascular-targeting agents and the implications for combination with conventional therapies. , 2006, Cancer research.
[23] D. Brizel,et al. Prognostic value of tumor oxygenation in 397 head and neck tumors after primary radiation therapy. An international multi-center study. , 2005, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[24] W. Mendenhall,et al. Radiotherapy alone or combined with carbogen breathing for squamous cell carcinoma of the head and neck , 2005, Cancer.
[25] P. LoRusso,et al. Differentiation and definition of vascular-targeted therapies. , 2005, Clinical cancer research : an official journal of the American Association for Cancer Research.
[26] J. L. Roti,et al. Introduction: Radiosensitization by hyperthermia , 2004, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[27] J. Bussink,et al. ARCON: a novel biology-based approach in radiotherapy. , 2002, The Lancet. Oncology.
[28] Rakesh K. Jain,et al. Normalizing tumor vasculature with anti-angiogenic therapy: A new paradigm for combination therapy , 2001, Nature Medicine.
[29] H. Kampinga,et al. Hyperthermic radiosensitization: mode of action and clinical relevance , 2001, International journal of radiation biology.
[30] M. Horsman,et al. Targeting tumor blood vessels: an adjuvant strategy for radiation therapy. , 2000, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[31] C C Ling,et al. Towards multidimensional radiotherapy (MD-CRT): biological imaging and biological conformality. , 2000, International journal of radiation oncology, biology, physics.
[32] J. Crook,et al. The importance of hemoglobin levels during radiotherapy for carcinoma of the cervix , 1999, Cancer.
[33] M. Horsman,et al. Measurement of tumor oxygenation. , 1998, International journal of radiation oncology, biology, physics.
[34] L. Bastholt,et al. A randomized double-blind phase III study of nimorazole as a hypoxic radiosensitizer of primary radiotherapy in supraglottic larynx and pharynx carcinoma. Results of the Danish Head and Neck Cancer Study (DAHANCA) Protocol 5-85. , 1998, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[35] Rakesh K. Jain,et al. Interstitial pH and pO2 gradients in solid tumors in vivo: High-resolution measurements reveal a lack of correlation , 1997, Nature Medicine.
[36] M. Dewhirst,et al. Fluctuations in red cell flux in tumor microvessels can lead to transient hypoxia and reoxygenation in tumor parenchyma. , 1996, Cancer research.
[37] W. Curran,et al. Results of an RTOG phase III trial (RTOG 85-27) comparing radiotherapy plus etanidazole with radiotherapy alone for locally advanced head and neck carcinomas. , 1995, International journal of radiation oncology, biology, physics.
[38] M. Horsman,et al. Further evaluation of nicotinamide and carbogen as a strategy to reoxygenate hypoxic cells in vivo: importance of nicotinamide dose and pre-irradiation breathing time. , 1993, British Journal of Cancer.
[39] J. Horiot,et al. A trial of Ro 03-8799 (pimonidazole) in carcinoma of the uterine cervix: an interim report from the Medical Research Council Working Party on advanced carcinoma of the cervix. , 1993, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[40] J. Overgaard,et al. Combination of nicotinamide and hyperthermia to eliminate radioresistant chronically and acutely hypoxic tumor cells. , 1990, Cancer research.
[41] J. Overgaard,et al. Misonidazole combined with split-course radiotherapy in the treatment of invasive carcinoma of larynx and pharynx: report from the DAHANCA 2 study. , 1989, International journal of radiation oncology, biology, physics.
[42] D. Chaplin,et al. Intermittent blood flow in a murine tumor: radiobiological effects. , 1987, Cancer research.
[43] S. Rockwell. Effect of some proliferative and environmental factors on the toxicity of mitomycin C to tumor cells in vitro , 1986, International journal of cancer.
[44] D. Siemann,et al. Tumor radiosensitization through reductions in hemoglobin affinity. , 1986, International journal of radiation oncology, biology, physics.
[45] M. Lemmon,et al. SR-4233: a new bioreductive agent with high selective toxicity for hypoxic mammalian cells. , 1986, International journal of radiation oncology, biology, physics.
[46] R. McClelland,et al. The oxygen dependence of the reduction of nitroimidazoles in a radiolytic model system. , 1984, International journal of radiation oncology, biology, physics.
[47] P. Keng,et al. In vitro hypoxic cytotoxicity of nitroimidazoles: uptake and cell cycle phase specificity. , 1982, International journal of radiation oncology, biology, physics.
[48] J. Hanley,et al. Carbogen breathing during radiation therapy-the Radiation Therapy Oncology Group Study. , 1979, International journal of radiation oncology, biology, physics.
[49] J M Brown,et al. Evidence for acutely hypoxic cells in mouse tumours, and a possible mechanism of reoxygenation. , 1979, The British journal of radiology.
[50] L. Gerweck,et al. Response of cells to hyperthermia under acute and chronic hypoxic conditions. , 1979, Cancer research.
[51] R. Hill,et al. The importance of the pre-irradiation breathing times of oxygen and carbogen (5% CO2: 95% O2) on the in vivo radiation response of a murine sarcoma. , 1977, International journal of radiation oncology, biology, physics.
[52] J. Overgaard,et al. The influence of hypoxia and acidity on the hyperthermic response of malignant cells in vitro. , 1977, Radiology.
[53] G. Adams,et al. Electron-affinic sensitization. VII. A correlation between structures, one-electron reduction potentials, and efficiencies of nitroimidazoles as hypoxic cell radiosensitizers. , 1976, Radiation research.
[54] P. Band,et al. Radiation and high-dose metronidazole in supratentorial glioblastomas. , 1976, The New England journal of medicine.
[55] David R. Woerner,et al. Oxygen, oxygen plus carbon dioxide, and radiation therapy of a mouse mammary carcinoma , 1972, Cancer.
[56] G. W. Barendsen,et al. RESPONSES OF CULTURED CELLS, TUMOURS, AND NORMAL TISSUES TO RADIATIONS OF DIFFERENT LINEAR ENERGY TRANSFER. , 1968 .
[57] E. Kirchner,et al. Münchener Medizinische Wochenschrift , 1968 .
[58] Dusault La. THE EFFECT OF OXYGEN ON THE RESPONSE OF SPONTANEOUS TUMOURS IN MICE TO RADIOTHERAPY. , 1963 .
[59] L. H. Gray,et al. The Histological Structure of Some Human Lung Cancers and the Possible Implications for Radiotherapy , 1955, British Journal of Cancer.
[60] L. H. Gray,et al. The concentration of oxygen dissolved in tissues at the time of irradiation as a factor in radiotherapy. , 1953, The British journal of radiology.
[61] S. Jakobsen,et al. PET hypoxia imaging with FAZA: reproducibility at baseline and during fractionated radiotherapy in tumour-bearing mice , 2012, European Journal of Nuclear Medicine and Molecular Imaging.
[62] Gig Mageras,et al. Reproducibility of intratumor distribution of (18)F-fluoromisonidazole in head and neck cancer. , 2008, International journal of radiation oncology, biology, physics.
[63] Dietmar W. Siemann,et al. Vascular targeted therapies in oncology , 2008, Cell and Tissue Research.
[64] W. Dobrowsky,et al. AK-2123 (Sanazol) as a radiation sensitizer in the treatment of stage III cervical cancer: results of an IAEA multicentre randomised trial. , 2007, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[65] J. R. Roti Roti. Introduction: radiosensitization by hyperthermia. , 2004, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[66] F. Eschwège,et al. Results of a European randomized trial of Etanidazole combined with radiotherapy in head and neck carcinomas. , 1997, International journal of radiation oncology, biology, physics.
[67] M. Horsman,et al. Nicotinamide and other benzamide analogs as agents for overcoming hypoxic cell radiation resistance in tumours. A review. , 1995, Acta oncologica.
[68] J. Overgaard. Clinical evaluation of nitroimidazoles as modifiers of hypoxia in solid tumors. , 1994, Oncology research.
[69] J. Overgaard. Sensitization of hypoxic tumour cells--clinical experience. , 1989, International journal of radiation biology.
[70] S. Rockwell. Use of a perfluorochemical emulsion to improve oxygenation in a solid tumor. , 1985, International journal of radiation oncology, biology, physics.
[71] G. Adams,et al. Electron-affinic sensitization. I. A structural basis for chemical radiosensitizers in bacteria. , 1969, International Journal of Radiation Biology and Related Studies in Physics Chemistry and Medicine.
[72] P. Kolstad,et al. Clinical trial with atmospheric oxygen breathing during radiotherapy of cancer of the cervix. , 1968, Scandinavian journal of clinical and laboratory investigation. Supplementum.
[73] I. Churchill-Davidson. The Oxygen Effect in Radiotherapy — Historical Review , 1968 .
[74] L. Dusault. THE EFFECT OF OXYGEN ON THE RESPONSE OF SPONTANEOUS TUMOURS IN MICE TO RADIOTHERAPY. , 1963, The British journal of radiology.