Flow-induced stress on adherent cells in microfluidic devices.
暂无分享,去创建一个
Majid Ebrahimi Warkiani | Melissa L Knothe Tate | Guan Heng Yeoh | Jonathan Shemesh | M. K. Knothe Tate | I. Jalilian | Majid Ebrahimi Warkiani | J. Shemesh | Iman Jalilian | Anthony Shi | Guan Heng Yeoh | A. Shi
[1] Glenn J Jaffe,et al. A centrifugal fluidic immunoassay for ocular diagnostics with an enzymatically hydrolyzed fluorogenic substrate. , 2014, Lab on a chip.
[2] S. Bhatia,et al. An extracellular matrix microarray for probing cellular differentiation , 2005, Nature Methods.
[3] David A. Schultz,et al. A mechanosensory complex that mediates the endothelial cell response to fluid shear stress , 2005, Nature.
[4] Achim Wixforth,et al. A novel tool for dynamic cell adhesion studies--the De-Adhesion Number Investigator DANI. , 2014, Lab on a chip.
[5] David J. Mooney,et al. Engineering approaches for inducing blood vessel formation , 2014 .
[6] D. Ingber,et al. Reconstituting Organ-Level Lung Functions on a Chip , 2010, Science.
[7] Guillaume Lambert,et al. A microfluidic device for continuous cancer cell culture and passage with hydrodynamic forces. , 2010, Lab on a chip.
[8] T. Peterson,et al. Fluid shear stress stimulates mitogen-activated protein kinase in endothelial cells. , 1995, Circulation research.
[9] Jerry Westerweel,et al. Tapered microfluidic chip for the study of biochemical and mechanical response at subcellular level of endothelial cells to shear flow. , 2009, Lab on a chip.
[10] D. Ingber,et al. Mechanotransduction across the cell surface and through the cytoskeleton , 1993 .
[11] S. Chakraborty,et al. Emerging trends in the pathophysiology of lymphatic contractile function. , 2015, Seminars in cell & developmental biology.
[12] Jianxin Chen,et al. Twisting integrin receptors increases endothelin-1 gene expression in endothelial cells. , 2001, American journal of physiology. Cell physiology.
[13] Jonathan W. Song,et al. RhoA mediates flow-induced endothelial sprouting in a 3-D tissue analogue of angiogenesis. , 2012, Lab on a chip.
[14] M. Malmsten,et al. Blood-flow sensing by anionic biopolymers , 1996 .
[15] K. Lau,et al. Fluid flow shear stress stimulates human osteoblast proliferation and differentiation through multiple interacting and competing signal transduction pathways. , 2003, Bone.
[16] Shinji Sugiura,et al. Microfluidic perfusion culture chip providing different strengths of shear stress for analysis of vascular endothelial function. , 2014, Journal of bioscience and bioengineering.
[17] Gary Rosengarten,et al. Cardiac-like flow generator for long-term imaging of endothelial cell responses to circulatory pulsatile flow at microscale. , 2013, Lab on a chip.
[18] Melody A Swartz,et al. Tumor cell invasion is promoted by interstitial flow-induced matrix priming by stromal fibroblasts. , 2011, Cancer research.
[19] Eric J. Anderson,et al. Open access to novel dual flow chamber technology for in vitro cell mechanotransduction, toxicity and pharamacokinetic studies , 2007, Biomedical engineering online.
[20] Shu Chien,et al. Vascular endothelial responses to altered shear stress: Pathologic implications for atherosclerosis , 2009, Annals of medicine.
[21] S. Takayama,et al. Gravity-driven microfluidic particle sorting device with hydrodynamic separation amplification. , 2007, Analytical chemistry.
[22] J. Folkman,et al. Migration and proliferation of endothelial cells in preformed and newly formed blood vessels during tumor angiogenesis. , 1977, Microvascular research.
[23] M. Karkkainen,et al. Lymphatic vasculature: development, molecular regulation and role in tumor metastasis and inflammation. , 2004, Trends in immunology.
[24] Donald E Ingber,et al. Mechanotransduction of fluid stresses governs 3D cell migration , 2014, Proceedings of the National Academy of Sciences.
[25] C. S. Chen,et al. Geometric control of cell life and death. , 1997, Science.
[26] Howard A Stone,et al. Characterization of syringe-pump-driven induced pressure fluctuations in elastic microchannels. , 2015, Lab on a chip.
[27] Michael F Insana,et al. Spatial Regulation of Inflammation by Human Aortic Endothelial Cells in a Linear Gradient of Shear Stress , 2008, Microcirculation.
[28] David J Beebe,et al. Flow rate analysis of a surface tension driven passive micropump. , 2007, Lab on a chip.
[29] Mario Moisés Alvarez,et al. Continuous flow micro-bioreactors for the production of biopharmaceuticals: the effect of geometry, surface texture, and flow rate. , 2014, Lab on a chip.
[30] Hanry Yu,et al. A practical guide to microfluidic perfusion culture of adherent mammalian cells. , 2007, Lab on a chip.
[31] Jing Zhou,et al. Polycystins 1 and 2 mediate mechanosensation in the primary cilium of kidney cells , 2003, Nature Genetics.
[32] Sanghyo Kim,et al. Pumpless steady-flow microfluidic chip for cell culture. , 2013, Analytical biochemistry.
[33] Jianping Fu,et al. Global architecture of the F-actin cytoskeleton regulates cell shape-dependent endothelial mechanotransduction. , 2014, Integrative biology : quantitative biosciences from nano to macro.
[34] Junghyun Kim,et al. Hydrodynamic effects on bacterial biofilm development in a microfluidic environment. , 2013, Lab on a chip.
[35] L K Chin,et al. Study of endothelial cell apoptosis using fluorescence resonance energy transfer (FRET) biosensor cell line with hemodynamic microfluidic chip system. , 2013, Lab on a chip.
[36] Shuichi Takayama,et al. Pumps for microfluidic cell culture , 2014, Electrophoresis.
[37] R. Booth,et al. A multiple-channel, multiple-assay platform for characterization of full-range shear stress effects on vascular endothelial cells. , 2014, Lab on a chip.
[38] Xiaochun Li,et al. DVD technology-based molecular diagnosis platform: quantitative pregnancy test on a disc. , 2014, Lab on a chip.
[39] Peter L. Voyvodic,et al. A multichannel dampened flow system for studies on shear stress-mediated mechanotransduction. , 2012, Lab on a chip.
[40] Craig R Forest,et al. Microfluidic system for simultaneous optical measurement of platelet aggregation at multiple shear rates in whole blood. , 2012, Lab on a chip.
[41] Aaas News,et al. Book Reviews , 1893, Buffalo Medical and Surgical Journal.
[42] Marco Rasponi,et al. Controlled electromechanical cell stimulation on-a-chip , 2015, Scientific Reports.
[43] N Verdonschot,et al. A medium throughput device to study the effects of combinations of surface strains and fluid-flow shear stresses on cells. , 2015, Lab on a chip.
[44] Min Jae Song,et al. Mechanical modulation of nascent stem cell lineage commitment in tissue engineering scaffolds. , 2013, Biomaterials.
[45] Toshiro Ohashi,et al. A new experimental system for simultaneous application of cyclic tensile strain and fluid shear stress to tenocytes in vitro , 2013, Biomedical microdevices.
[46] Uri Dinnar,et al. A parametric study of human fibroblasts culture in a microchannel bioreactor. , 2007, Lab on a chip.
[47] Jianping Fu,et al. Elastomeric microposts integrated into microfluidics for flow-mediated endothelial mechanotransduction analysis. , 2012, Lab on a chip.
[48] B. Chen,et al. Distinct roles for the small GTPases Cdc42 and Rho in endothelial responses to shear stress. , 1999, The Journal of clinical investigation.
[49] Corie Lok,et al. Mining the microbial dark matter , 2015, Nature.
[50] M. Francolini,et al. Testing Aβ toxicity on primary CNS cultures using drug-screening microfluidic chips. , 2014, Lab on a chip.
[51] H. Maeda,et al. The EPR effect for macromolecular drug delivery to solid tumors: Improvement of tumor uptake, lowering of systemic toxicity, and distinct tumor imaging in vivo. , 2013, Advanced drug delivery reviews.
[52] Roger D Kamm,et al. A quantitative microfluidic angiogenesis screen for studying anti-angiogenic therapeutic drugs. , 2014, Lab on a chip.
[53] B. Hardy,et al. The deformation of flexible PDMS microchannels under a pressure driven flow. , 2009, Lab on a chip.
[54] Sarah H. McBride,et al. Mechanical modulation of osteochondroprogenitor cell fate. , 2008, The international journal of biochemistry & cell biology.
[55] Roger D Kamm,et al. Mechanism of a flow-gated angiogenesis switch: early signaling events at cell-matrix and cell-cell junctions. , 2012, Integrative biology : quantitative biosciences from nano to macro.
[56] Hanseup Kim,et al. Characterization of a microfluidic in vitro model of the blood-brain barrier (μBBB). , 2012, Lab on a chip.
[57] J. Tarbell,et al. Shear-induced endothelial NOS activation and remodeling via heparan sulfate, glypican-1, and syndecan-1. , 2014, Integrative biology : quantitative biosciences from nano to macro.
[58] S. Chakraborty,et al. Oscillatory shear stress induced calcium flickers in osteoblast cells. , 2014, Integrative biology : quantitative biosciences from nano to macro.
[59] L. Ignarro,et al. Endothelium-derived relaxing factor produced and released from artery and vein is nitric oxide. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[60] Melissa L Knothe Tate,et al. "Culture shock" from the bone cell's perspective: emulating physiological conditions for mechanobiological investigations. , 2004, American journal of physiology. Cell physiology.
[61] Sujitha Martin,et al. Electronic control of elastomeric microfluidic circuits with shape memory actuators. , 2008, Lab on a chip.
[62] A. Feher,et al. Peroxynitrite Disrupts Endothelial Caveolae Leading to eNOS Uncoupling and Diminished Flow-Mediated Dilation in Coronary Arterioles of Diabetic Patients , 2014, Diabetes.
[63] Axel Scherer,et al. A microfluidic processor for gene expression profiling of single human embryonic stem cells. , 2008, Lab on a chip.
[64] Lance L. Munn,et al. Fluid forces control endothelial sprouting , 2011, Proceedings of the National Academy of Sciences.
[65] Roland Zengerle,et al. Centrifugo-pneumatic valve for metering of highly wetting liquids on centrifugal microfluidic platforms. , 2009, Lab on a chip.
[66] Eric J. Anderson,et al. The imperative for controlled mechanical stresses in unraveling cellular mechanisms of mechanotransduction , 2006, Biomedical engineering online.
[67] Guoqing Hu,et al. A Microfluidic-Based Multi-Shear Device for Investigating the Effects of Low Fluid-Induced Stresses on Osteoblasts , 2014, PloS one.
[68] K. Konstantopoulos,et al. Selectin-mediated adhesion in shear flow using micropatterned substrates: multiple-bond interactions govern the critical length for cell binding. , 2012, Integrative biology : quantitative biosciences from nano to macro.
[69] J. Tarbell,et al. The Endothelial Glycocalyx: A Mechano-Sensor and -Transducer , 2008, Science Signaling.
[70] Axel Günther,et al. Bubbles no more: in-plane trapping and removal of bubbles in microfluidic devices. , 2012, Lab on a chip.
[71] Shu Chien,et al. Roles of cell confluency and fluid shear in 3-dimensional intracellular forces in endothelial cells , 2012, Proceedings of the National Academy of Sciences.
[72] Menahem Y. Rotenberg,et al. A multi-shear perfusion bioreactor for investigating shear stress effects in endothelial cell constructs. , 2012, Lab on a chip.
[73] Roger D. Kamm,et al. A three-dimensional microfluidic tumor cell migration assay to screen the effect of anti-migratory drugs and interstitial flow , 2012 .
[74] Melissa L Knothe Tate,et al. Solid-supported lipid bilayers to drive stem cell fate and tissue architecture using periosteum derived progenitor cells. , 2013, Biomaterials.
[75] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[76] G. Koh,et al. Shear stress activates Tie2 receptor tyrosine kinase in human endothelial cells. , 2003, Biochemical and biophysical research communications.
[77] William C. Messner,et al. Probing Cellular Dynamics with a Chemical Signal Generator , 2009, PloS one.
[78] K. Mouridsen,et al. The relationship between tumor blood flow, angiogenesis, tumor hypoxia, and aerobic glycolysis. , 2013, Cancer research.
[79] Guanghui Wang,et al. A lab-in-a-droplet bioassay strategy for centrifugal microfluidics with density difference pumping, power to disc and bidirectional flow control. , 2013, Lab on a chip.
[80] S. Chien,et al. A positive feedback mechanism governs the polarity and motion of motile cilia , 2007, Nature.
[81] Shu Chien,et al. Mechanotransduction in Response to Shear Stress , 1999, The Journal of Biological Chemistry.
[82] R Zengerle,et al. Centrifugo-pneumatic multi-liquid aliquoting - parallel aliquoting and combination of multiple liquids in centrifugal microfluidics. , 2015, Lab on a chip.
[83] Sonia Grego,et al. A biomimetic multicellular model of the airways using primary human cells. , 2014, Lab on a chip.
[84] B. Berk,et al. Ligand-Independent Activation of Vascular Endothelial Growth Factor Receptor 2 by Fluid Shear Stress Regulates Activation of Endothelial Nitric Oxide Synthase , 2003, Circulation research.
[85] Paolo P. Provenzano,et al. Mechanical signaling through the cytoskeleton regulates cell proliferation by coordinated focal adhesion and Rho GTPase signaling , 2011, Journal of Cell Science.
[86] Ismail Emre Araci,et al. Microfluidic very large scale integration (mVLSI) with integrated micromechanical valves. , 2012, Lab on a chip.
[87] J. Hinchion,et al. Releasing pressure in tumors: what do we know so far and where do we go from here? A review. , 2014, Cancer research.
[88] C. Esmon. The regulation of natural anticoagulant pathways , 1987, Science.
[89] Melissa L Knothe Tate,et al. Modulation of stem cell shape and fate B: mechanical modulation of cell shape and gene expression. , 2008, Tissue engineering. Part A.
[90] T. Peterson,et al. Protein kinases as mediators of fluid shear stress stimulated signal transduction in endothelial cells: a hypothesis for calcium-dependent and calcium-independent events activated by flow. , 1995, Journal of biomechanics.
[91] Jerry Westerweel,et al. Micro-Particle Image Velocimetry (microPIV): recent developments, applications, and guidelines. , 2009, Lab on a chip.
[92] J. Shyy,et al. Mechanotransduction in endothelial responses to shear stress: review of work in Dr. Chien's laboratory. , 2001, Biorheology.
[93] Shuichi Takayama,et al. Acoustically detectable cellular-level lung injury induced by fluid mechanical stresses in microfluidic airway systems , 2007, Proceedings of the National Academy of Sciences.
[94] Ashutosh Sharma,et al. Low voltage non-gassing electro-osmotic pump with zeta potential tuned aluminosilicate frits and organic dye electrodes , 2014 .
[95] Xin Zhang,et al. The use of controlled surface topography and flow-induced shear stress to influence renal epithelial cell function. , 2012, Integrative biology : quantitative biosciences from nano to macro.
[96] Sang-Hoon Lee,et al. Gradient generation by an osmotic pump and the behavior of human mesenchymal stem cells under the fetal bovine serum concentration gradient. , 2007, Lab on a chip.
[97] Jagannathan Rajagopalan,et al. MEMS sensors and microsystems for cell mechanobiology , 2011, Journal of micromechanics and microengineering : structures, devices, and systems.
[98] Julie A. Theriot,et al. Mechanism of shape determination in motile cells , 2008, Nature.
[99] Li Wang,et al. Patterning cells and shear flow conditions: convenient observation of endothelial cell remoulding, enhanced production of angiogenesis factors and drug response. , 2011, Lab on a chip.
[100] Yuzuru Takamura,et al. Circumventing air bubbles in microfluidic systems and quantitative continuous-flow PCR applications , 2006, Analytical and bioanalytical chemistry.
[101] Kristian Pietras,et al. High interstitial fluid pressure — an obstacle in cancer therapy , 2004, Nature Reviews Cancer.
[102] K. Suh,et al. A multi-layer microfluidic device for efficient culture and analysis of renal tubular cells. , 2010, Lab on a chip.
[103] Melody A Swartz,et al. A driving force for change: interstitial flow as a morphoregulator. , 2007, Trends in cell biology.
[104] D. Ingber,et al. Human gut-on-a-chip inhabited by microbial flora that experiences intestinal peristalsis-like motions and flow. , 2012, Lab on a chip.
[105] Min Jae Song,et al. Mapping the Mechanome of Live Stem Cells Using a Novel Method to Measure Local Strain Fields In Situ at the Fluid-Cell Interface , 2012, PloS one.
[106] M. Schwartz,et al. Mechanotransduction in vascular physiology and atherogenesis , 2009, Nature Reviews Molecular Cell Biology.
[107] Andre Sharon,et al. A microfluidic platform for rapid, stress-induced antibiotic susceptibility testing of Staphylococcus aureus. , 2012, Lab on a chip.
[108] M. Sefton,et al. Tissue engineering. , 1998, Journal of cutaneous medicine and surgery.
[109] D. Kent,et al. High-throughput analysis of single hematopoietic stem cell proliferation in microfluidic cell culture arrays , 2011, Nature Methods.
[110] P. Carmeliet. Angiogenesis in health and disease , 2003, Nature Medicine.
[111] C. Zarins,et al. Carotid Bifurcation Atherosclerosis: Quantitative Correlation of Plaque Localization with Flow Velocity Profiles and Wall Shear Stress , 1983, Circulation research.
[112] Arnan Mitchell,et al. A shear gradient–dependent platelet aggregation mechanism drives thrombus formation , 2009, Nature Medicine.
[113] Rene,et al. THE AMERICAN JOURNAL OF PHYSIOLOGY. , 1897, Science.
[114] Douglas A Lauffenburger,et al. Microfluidic shear devices for quantitative analysis of cell adhesion. , 2004, Analytical chemistry.
[115] Weihua Huang,et al. Engineering interconnected 3D vascular networks in hydrogels using molded sodium alginate lattice as the sacrificial template. , 2014, Lab on a chip.
[116] J. Choe,et al. Human follicular dendritic cells and fibroblasts share the 3C8 antigen. , 2003, Biochemical and biophysical research communications.
[117] Yong Ren,et al. Cell culture using centrifugal microfluidic platform with demonstration on Pichia pastoris , 2013, Biomedical microdevices.
[118] O. B. Usta,et al. Dynamic interplay of flow and collagen stabilizes primary hepatocytes culture in a microfluidic platform. , 2014, Lab on a chip.
[119] W. Marsden. I and J , 2012 .
[120] Jun Fang,et al. The EPR effect: Unique features of tumor blood vessels for drug delivery, factors involved, and limitations and augmentation of the effect. , 2011, Advanced drug delivery reviews.
[121] Craig A Simmons,et al. Macro- and microscale fluid flow systems for endothelial cell biology. , 2010, Lab on a chip.
[122] S. Quake,et al. Monolithic microfabricated valves and pumps by multilayer soft lithography. , 2000, Science.
[123] Herman Goossens,et al. Active liquid degassing in microfluidic systems. , 2013, Lab on a chip.
[124] Grissel Trujillo-de Santiago,et al. Titles of chemical papers in British and foreign journals , 1850 .
[125] Sukhyun Song,et al. Collaborative effects of electric field and fluid shear stress on fibroblast migration. , 2013, Lab on a chip.
[126] D. Zawieja,et al. Molecular Regulation of Lymphatic Contractility , 2008, Annals of the New York Academy of Sciences.
[127] Matti Hoch,et al. Advanced Drug Delivery Reviews , 2017 .
[128] Wei Chen,et al. Endothelial mechanotransduction, nitric oxide and vascular inflammation , 2006, Journal of internal medicine.
[129] Stephen C. Cowin,et al. Mechanotransduction and flow across the endothelial glycocalyx , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[130] Uwe Marx,et al. Integrating biological vasculature into a multi-organ-chip microsystem. , 2013, Lab on a chip.
[131] H. Gong,et al. Fabrication of multi-layer polymeric micro-sieve having narrow slot pores with conventional ultraviolet-lithography and micro-fabrication techniques. , 2011, Biomicrofluidics.
[132] Y. Tashiro,et al. Trends in Cell Biology , 1997 .
[133] Michael Doran,et al. A novel multishear microdevice for studying cell mechanics. , 2009, Lab on a chip.
[134] Yu Sun,et al. Microfabricated perfusable cardiac biowire: a platform that mimics native cardiac bundle. , 2014, Lab on a chip.
[135] Hyunjae Lee,et al. Engineering of functional, perfusable 3D microvascular networks on a chip. , 2013, Lab on a chip.
[136] T. Squires,et al. Induced charge electroosmosis micropumps using arrays of Janus micropillars. , 2014, Lab on a chip.
[137] Roger D Kamm,et al. Microfluidic platforms for mechanobiology. , 2013, Lab on a chip.
[138] S. Chien,et al. Shear stress activates p60src-Ras-MAPK signaling pathways in vascular endothelial cells. , 1998, Arteriosclerosis, thrombosis, and vascular biology.
[139] Z. Kam,et al. Fibroblast polarization is a matrix-rigidity-dependent process controlled by focal adhesion mechanosensing , 2011, Nature Cell Biology.
[140] N. Elvassore,et al. Optimal periodic perfusion strategy for robust long-term microfluidic cell culture. , 2013, Lab on a chip.
[141] T. Hunter,et al. Fluid Shear Stress Activation of Focal Adhesion Kinase , 1997, The Journal of Biological Chemistry.
[142] Jintae Kim,et al. Centrifugal microfluidics for biomedical applications. , 2010, Lab on a chip.
[143] Albert van den Berg,et al. Atherosclerotic geometries exacerbate pathological thrombus formation poststenosis in a von Willebrand factor-dependent manner , 2013, Proceedings of the National Academy of Sciences.
[144] S. Nauli,et al. Ciliary Polycystin-2 Is a Mechanosensitive Calcium Channel Involved in Nitric Oxide Signaling Cascades , 2009, Circulation research.
[145] Kim Van der Heiden,et al. Primary cilia sensitize endothelial cells for fluid shear stress , 2008, Developmental dynamics : an official publication of the American Association of Anatomists.
[146] Dorian Liepmann,et al. Effects of shear stress on endothelial cell haptotaxis on micropatterned surfaces. , 2005, Biochemical and biophysical research communications.
[147] Jongyoon Han,et al. An ultra-high-throughput spiral microfluidic biochip for the enrichment of circulating tumor cells. , 2014, The Analyst.
[148] Savas Tasoglu,et al. Flow induces epithelial-mesenchymal transition, cellular heterogeneity and biomarker modulation in 3D ovarian cancer nodules , 2013, Proceedings of the National Academy of Sciences.
[149] Daniel I. C. Wang,et al. Engineering cell shape and function. , 1994, Science.
[150] Ulrich H. von Andrian,et al. Homing and cellular traffic in lymph nodes , 2003, Nature Reviews Immunology.
[151] M. Swartz,et al. Regulation of tumor invasion by interstitial fluid flow , 2011, Physical biology.
[152] G. Whitesides,et al. Solvent compatibility of poly(dimethylsiloxane)-based microfluidic devices. , 2003, Analytical chemistry.
[153] Ben Fabry,et al. Single-cell response to stiffness exhibits muscle-like behavior , 2009, Proceedings of the National Academy of Sciences.
[154] K. O. Mercurius,et al. Stimulation of transcription factors NF kappa B and AP1 in endothelial cells subjected to shear stress. , 1994, Biochemical and biophysical research communications.
[155] K. Fujiwara,et al. Evidence for a role of platelet endothelial cell adhesion molecule-1 in endothelial cell mechanosignal transduction , 2002, The Journal of cell biology.
[156] A. Levchenko,et al. Microengineered platforms for cell mechanobiology. , 2009, Annual review of biomedical engineering.
[157] R S Reneman,et al. Control of arterial branching morphogenesis in embryogenesis: go with the flow. , 2005, Cardiovascular research.
[158] Guruswami Ravichandran,et al. Contractile forces regulate cell division in three-dimensional environments , 2014, The Journal of cell biology.
[159] T. Peterson,et al. MAP kinase activation by flow in endothelial cells. Role of beta 1 integrins and tyrosine kinases. , 1996, Circulation research.
[160] Q. Sun,et al. Well plate-based perfusion culture device for tissue and tumor microenvironment replication. , 2015, Lab on a chip.
[161] S. Diamond,et al. Side view thrombosis microfluidic device with controllable wall shear rate and transthrombus pressure gradient. , 2013, Lab on a chip.
[162] Jie Xu,et al. Use of a porous membrane for gas bubble removal in microfluidic channels: physical mechanisms and design criteria , 2010, 1005.0107.
[163] Xingyu Jiang,et al. A microfluidic flow-stretch chip for investigating blood vessel biomechanics. , 2012, Lab on a chip.
[164] R. Kamm,et al. Three-dimensional microfluidic model for tumor cell intravasation and endothelial barrier function , 2012, Proceedings of the National Academy of Sciences.
[165] Joel Voldman,et al. Fluid shear stress primes mouse embryonic stem cells for differentiation in a self‐renewing environment via heparan sulfate proteoglycans transduction , 2011, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[166] S. Sen,et al. Matrix Elasticity Directs Stem Cell Lineage Specification , 2006, Cell.
[167] Raghu Kalluri,et al. Fibroblasts in cancer , 2006, Nature Reviews Cancer.
[168] R.-J. Yang,et al. Electroosmotic Flow in Microchannels. , 2001, Journal of colloid and interface science.
[169] D. Schaffer,et al. Biophysical regulation of stem cell behavior within the niche , 2012, Stem Cell Research & Therapy.
[170] James C Baygents,et al. Detachment of captured cancer cells under flow acceleration in a bio-functionalized microchannel. , 2009, Lab on a chip.
[171] Thomas Gervais,et al. Flow-induced deformation of shallow microfluidic channels. , 2006, Lab on a chip.
[172] Eleftherios P. Diamandis,et al. Cancer-Associated Fibroblasts Drive the Progression of Metastasis through both Paracrine and Mechanical Pressure on Cancer Tissue , 2012, Molecular Cancer Research.