Measurement of pressure-displacement kinetics of hemoglobin in normal breast tissue with near-infrared spectral imaging.
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Brian W Pogue | Keith D Paulsen | Shudong Jiang | Ashley M Laughney | Ashley M. Laughney | B. Pogue | K. Paulsen | Shudong Jiang | C. Kogel | Christine A Kogel
[1] B. Pogue,et al. Combining near-infrared tomography and magnetic resonance imaging to study in vivo breast tissue: implementation of a Laplacian-type regularization to incorporate magnetic resonance structure. , 2005, Journal of biomedical optics.
[2] D. Boas,et al. Compression-induced changes in the physiological state of the breast as observed through frequency domain photon migration measurements. , 2006, Journal of Biomedical Optics.
[3] Rui Yang,et al. Elevated Physiologic Tumor Pressure Promotes Proliferation and Chemosensitivity in Human Osteosarcoma , 2005, Clinical Cancer Research.
[4] Sergio Fantini,et al. Spatial and Spectral Information in Optical Mammography , 2005, Technology in cancer research & treatment.
[5] R K Jain,et al. Microvascular pressure is the principal driving force for interstitial hypertension in solid tumors: implications for vascular collapse. , 1992, Cancer research.
[6] E. Conant,et al. Breast Cancer Detection Based on Incremental Biochemical and Physiological Properties of Breast Cancers , 2005 .
[7] Donald McLean,et al. The application of breast compression in mammography: a new perspective , 2004 .
[8] Yuri Parisky,et al. Alternative breast-imaging approaches. , 2007, Radiologic clinics of North America.
[9] B. Pogue,et al. Image-guided optical spectroscopy provides molecular-specific information in vivo: MRI-guided spectroscopy of breast cancer hemoglobin, water, and scatterer size. , 2007, Optics letters.
[10] Brian W Pogue,et al. In vivo near-infrared spectral detection of pressure-induced changes in breast tissue. , 2003, Optics letters.
[11] B. Tromberg,et al. In vivo absorption, scattering, and physiologic properties of 58 malignant breast tumors determined by broadband diffuse optical spectroscopy. , 2006, Journal of biomedical optics.
[12] Keith D. Paulsen,et al. A three-parameter mechanical property reconstruction method for MR-based elastic property imaging , 2005, IEEE Transactions on Medical Imaging.
[13] B. Pogue,et al. Spectral priors improve near-infrared diffuse tomography more than spatial priors. , 2005, Optics letters.
[14] B. Pogue,et al. Spectrally constrained chromophore and scattering near-infrared tomography provides quantitative and robust reconstruction. , 2005, Applied optics.
[15] Kristian Pietras,et al. High interstitial fluid pressure — an obstacle in cancer therapy , 2004, Nature Reviews Cancer.
[16] R. Reed,et al. Fluid pressure in human dermal fibroblast aggregates measured with micropipettes. , 2003, American journal of physiology. Cell physiology.
[17] Brian W. Pogue,et al. Interpreting hemoglobin and water concentration, oxygen saturation, and scattering measured in vivo by near-infrared breast tomography , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[18] Stephen P Povoski,et al. Dynamic schema for near infrared detection of pressure-induced changes in solid tumors. , 2008, Applied optics.
[19] K D Paulsen,et al. Elasticity reconstruction from experimental MR displacement data: initial experience with an overlapping subzone finite element inversion process. , 2000, Medical physics.
[20] M. Doyley,et al. Interstitial fluid pressure in soft tissue as a result of an externally applied contact pressure , 2007, Physics in medicine and biology.
[21] Hamid Dehghani,et al. Breast deformation modelling for image reconstruction in near infrared optical tomography. , 2004, Physics in medicine and biology.