A physical sciences network characterization of circulating tumor cell aggregate transport.
暂无分享,去创建一个
Peter Kuhn | Sandra M. Baker-Groberg | Paolo Decuzzi | Anand Kolatkar | Kelly Bethel | Owen J T McCarty | Kevin G Phillips | Sandra M Baker-Groberg | Tae-Rin Lee | Madelyn Luttgen | P. Decuzzi | O. McCarty | R. Carr | M. King | Tae-Rin Lee | P. Kuhn | Siddarth Chandrasekaran | K. Phillips | A. Kolatkar | Madelyn S Luttgen | K. Bethel | Michael R King | S. M. Baker-Groberg | Matthew J. McGuire | Rachel A Rigg | Annachiara Mitrugno | Siddarth Chandrasekaran | Adelaide M E de Guillebon | Matthew J McGuire | Russell T Carr | R. Rigg | Annachiara Mitrugno | Adelaide de Guillebon | Rachel A. Rigg | Madelyn S. Luttgen
[1] Monica T. Hinds,et al. Measurement Science in the Circulatory System , 2014, Cellular and molecular bioengineering.
[2] Joshua M. Kunken,et al. Fluid biopsy in patients with metastatic prostate, pancreatic and breast cancers , 2012, Physical biology.
[3] Christopher S. Poultney,et al. A physical sciences network characterization of non-tumorigenic and metastatic cells , 2013, Scientific Reports.
[4] H. Goldsmith,et al. Margination of leukocytes in blood flow through small tubes. , 1984, Microvascular research.
[5] M. King,et al. Physical Biology in Cancer. 3. The role of cell glycocalyx in vascular transport of circulating tumor cells , 2013, American journal of physiology. Cell physiology.
[6] M. King,et al. Phenotypic Switch in Blood: Effects of Pro-Inflammatory Cytokines on Breast Cancer Cell Aggregation and Adhesion , 2013, PloS one.
[7] R K Jain,et al. Role of erythrocytes in leukocyte-endothelial interactions: mathematical model and experimental validation. , 1996, Biophysical journal.
[8] G. Nash,et al. Rheological properties of the blood influencing selectin-mediated adhesion of flowing leukocytes. , 2003, American journal of physiology. Heart and circulatory physiology.
[9] Jacob G. Scott,et al. A filter-flow perspective of haematogenous metastasis offers a non-genetic paradigm for personalised cancer therapy. , 2013, European journal of cancer.
[10] Hydrodynamic Interactions Between Rolling Leukocytes In Vivo , 2003, Microcirculation.
[11] S. Jacques,et al. Measurement of single cell refractive index, dry mass, volume, and density using a transillumination microscope. , 2012, Physical review letters.
[12] K. Konstantopoulos,et al. Platelet-induced enhancement of LS174T colon carcinoma and THP-1 monocytoid cell adhesion to vascular endothelium under flow. , 2004, American journal of physiology. Cell physiology.
[13] M. King,et al. Glycomechanics of the Metastatic Cascade: Tumor Cell–Endothelial Cell Interactions in the Circulation , 2011, Annals of Biomedical Engineering.
[14] G. Nash,et al. Characteristics of leucocyte adhesion directly observed in flowing whole blood in vitro , 2001, British journal of haematology.
[15] N. Bander,et al. Circulating Tumor Cells from Prostate Cancer Patients Interact with E-Selectin under Physiologic Blood Flow , 2013, PloS one.
[16] Noo Li Jeon,et al. A microfluidic platform for quantitative analysis of cancer angiogenesis and intravasation. , 2014, Biomicrofluidics.
[17] O. McCarty,et al. Physical biology in cancer. 2. The physical biology of circulating tumor cells. , 2014, American journal of physiology. Cell physiology.
[18] J. Rao,et al. Nanomechanical analysis of cells from cancer patients. , 2007, Nature nanotechnology.
[19] Yaling Liu,et al. Rheology of red blood cell aggregation by computer simulation , 2006, J. Comput. Phys..
[20] Peter Kuhn,et al. Characterization of circulating tumor cell aggregates identified in patients with epithelial tumors , 2012, Physical biology.
[21] Ut-Binh T. Giang,et al. Microfabrication of cavities in polydimethylsiloxane using DRIE silicon molds. , 2007, Lab on a chip.
[22] G. Nash,et al. ADHESION OF FLOWING NEUTROPHILS TO MODEL VESSEL SURFACES: CONSTRAINT AND REGULATION BY THE LOCAL HEMODYNAMIC ENVIRONMENT , 2006 .
[23] L. DeLouise,et al. Effect of homotypic and heterotypic interaction in 3D on the E-selectin mediated adhesive properties of breast cancer cell lines. , 2012, Biomaterials.
[24] Sandra M. Baker-Groberg,et al. Quantitative optical microscopy: measurement of cellular biophysical features with a standard optical microscope. , 2014, Journal of visualized experiments : JoVE.
[25] Wing Kam Liu,et al. Immersed finite element method for rigid body motions in the incompressible Navier–Stokes flow , 2008 .
[26] Interactions between stably rolling leukocytes in vivo , 2003, physics/0310082.
[27] Matteo Moretti,et al. In vitro models of the metastatic cascade: from local invasion to extravasation. , 2014, Drug discovery today.
[28] R. Kamm,et al. Three-dimensional microfluidic model for tumor cell intravasation and endothelial barrier function , 2012, Proceedings of the National Academy of Sciences.
[29] Lucy T. Zhang,et al. Immersed finite element method , 2004 .
[30] A. Pries,et al. Radial distribution of white cells during blood flow in small tubes. , 1985, Microvascular research.
[31] Michael R. King,et al. Unnatural killer cells: TRAIL-coated leukocytes that kill cancer cells in the circulation , 2014, NEBEC 2014.
[32] Vadim Backman,et al. Network signatures of nuclear and cytoplasmic density alterations in a model of pre and postmetastatic colorectal cancer , 2014, Journal of biomedical optics.