Morphologic changes of mammary carcinomas in mice over time as monitored by flat-panel detector volume computed tomography.
暂无分享,去创建一个
Marta Zientkowska | Walter Stühmer | Eckhardt Grabbe | Frauke Alves | Christian Dullin | W. Stühmer | C. Dullin | J. Missbach-Guentner | S. Kimmina | M. Zientkowska | Melanie Domeyer-Missbach | C. Malz | E. Grabbe | F. Alves | Jeannine Missbach-Guentner | Sarah Kimmina | Melanie Domeyer-Missbach | Cordula Malz | Jeannine Missbach-Guentner | Sarah Kimmina | Marta Zientkowska
[1] Aaron Fenster,et al. A new three-dimensional ultrasound microimaging technology for preclinical studies using a transgenic prostate cancer mouse model. , 2005, Cancer research.
[2] H. Augustin. Tubes, branches, and pillars: the many ways of forming a new vasculature. , 2001, Circulation research.
[3] A. D. De Schepper,et al. Reliability of measuring volume by different methods for tumors of the musculoskeletal system. , 2001, Acta orthopaedica Belgica.
[4] D Artemov,et al. Vascular differences detected by MRI for metastatic versus nonmetastatic breast and prostate cancer xenografts. , 2001, Neoplasia.
[5] D W Holdsworth,et al. Fundamental image quality limits for microcomputed tomography in small animals. , 2003, Medical physics.
[6] P. Choyke,et al. Imaging of angiogenesis: from microscope to clinic , 2003, Nature Medicine.
[7] Reto Meuli,et al. CT perfusion scanning with deconvolution analysis: pilot study in patients with acute middle cerebral artery stroke. , 2002, Radiology.
[8] Yanping Sun,et al. Volume Reconstruction Techniques Improve the Correlation Between Histological and in vivo Tumor Volume Measurements in Mouse Models of Human Gliomas , 2004, Journal of Neuro-Oncology.
[9] A. Alavi,et al. Role of radionuclide imaging in trials of antiangiogenic therapy. , 2000, Academic radiology.
[10] Dianna D Cody,et al. In vivo respiratory-gated micro-CT imaging in small-animal oncology models. , 2004, Molecular imaging.
[11] S. Obenauer,et al. Flat-panel-detector-based volumetric CT: performance evaluation of imaging for skeletal structures of small animals in comparison to multislice CT. , 2007, Clinical imaging.
[12] Rakesh K. Jain,et al. Vascular and interstitial barriers to delivery of therapeutic agents in tumors , 1990, Cancer and Metastasis Reviews.
[13] Eckhardt Grabbe,et al. Semi-Automatic Classification of Skeletal Morphology in Genetically Altered Mice Using Flat-Panel Volume Computed Tomography , 2007, PLoS genetics.
[14] Wolfhard Semmler,et al. Volumetric computed tomography (VCT): a new technology for noninvasive, high-resolution monitoring of tumor angiogenesis , 2004, Nature Medicine.
[15] A R Padhani,et al. Challenges for imaging angiogenesis. , 2001, The British journal of radiology.
[16] Kåre Rygaard,et al. Quantitation and Gompertzian analysis of tumor growth , 1997, Breast Cancer Research and Treatment.
[17] M. Port,et al. Preclinical Profile of the Monodisperse Iodinated Macromolecular Blood Pool Agent P743 , 2001, Investigative radiology.
[18] R. Leahy,et al. Optimization and performance evaluation of the microPET II scanner for in vivo small-animal imaging , 2004, Physics in medicine and biology.
[19] L. Clarke,et al. Monitoring brain tumor response to therapy using MRI segmentation. , 1997, Magnetic resonance imaging.
[20] M. Spang‐Thomsen,et al. Growth curves of three human malignant tumors transplanted to nude mice. , 1980, Experimental cell biology.
[21] Liguo Wang,et al. The use of three-dimensional ultrasound micro-imaging to monitor prostate tumor development in a transgenic prostate cancer mouse model. , 2005, The Tohoku journal of experimental medicine.
[22] Aaron Fenster,et al. Three-dimensional high-frequency ultrasound imaging for longitudinal evaluation of liver metastases in preclinical models. , 2005, Cancer research.
[23] K Engelke,et al. [Micro-CT. Technology and application for assessing bone structure]. , 1999, Der Radiologe.
[24] A Del Guerra,et al. Advances in animal PET scanners. , 2002, The quarterly journal of nuclear medicine : official publication of the Italian Association of Nuclear Medicine (AIMN) [and] the International Association of Radiopharmacology.
[25] S. Fox. Tumour angiogenesis and prognosis. , 1997, Histopathology.
[26] Wolfhard Semmler,et al. Potential applications of flat-panel volumetric CT in morphologic and functional small animal imaging. , 2005, Neoplasia.
[27] Chin-Shang Li,et al. Angiogenesis inhibitors in a murine neuroblastoma model: quantitative assessment of intratumoral blood flow with contrast-enhanced gray-scale US. , 2006, Radiology.
[28] W. Seeger,et al. Analysis of tumor vessel supply in Lewis lung carcinoma in mice by fluorescent microsphere distribution and imaging with micro- and flat-panel computed tomography. , 2005, The American journal of pathology.
[29] T. Purdie,et al. Dynamic contrast enhanced CT measurement of blood flow during interstitial laser photocoagulation: comparison with an Arrhenius damage model. , 2000, Physics in medicine and biology.
[30] P. Kuppusamy,et al. Magnetic resonance imaging for in vivo assessment of tissue oxygen concentration. , 2001, Seminars in radiation oncology.
[31] C. Corot,et al. CT pulmonary angiography with a macromolecular contrast medium: a comparative study versus iobitridol in rabbits. , 2001, Investigative radiology.
[32] H. Augustin,et al. Dissociation of angiogenesis and tumorigenesis in follistatin- and activin-expressing tumors. , 2006, Cancer research.
[33] S. Obenauer,et al. Flat-panel detector-based volume computed tomography: a novel 3D imaging technique to monitor osteolytic bone lesions in a mouse tumor metastasis model. , 2007, Neoplasia.
[34] Martin Obert,et al. Flat-Panel Volumetric Computed Tomography: A New Method for Visualizing Fine Bone Detail in Living Mice , 2005, Journal of computer assisted tomography.
[35] Stephen B. Fox,et al. COMMENTARY Tumour angiogenesis and prognosis , 1997, Histopathology.
[36] M. Tomayko,et al. Determination of subcutaneous tumor size in athymic (nude) mice , 2004, Cancer Chemotherapy and Pharmacology.
[37] H E Cline,et al. 3D reconstruction of the brain from magnetic resonance images using a connectivity algorithm. , 1987, Magnetic Resonance Imaging.
[38] P. Okunieff,et al. Blood flow, oxygen and nutrient supply, and metabolic microenvironment of human tumors: a review. , 1989, Cancer research.
[39] Patrick L Chow,et al. Monte carlo simulations of dose from microCT imaging procedures in a realistic mouse phantom. , 2005, Medical physics.
[40] Robert M Hoffman,et al. High correlation of whole-body red fluorescent protein imaging and magnetic resonance imaging on an orthotopic model of pancreatic cancer. , 2005, Cancer research.
[41] Howard J Halpern,et al. Imaging spin probe distribution in the tumor of a living mouse with 250 MHz EPR: Correlation with BOLD MRI , 2002, Magnetic resonance in medicine.