A multishear microfluidic device for quantitative analysis of calcium dynamics in osteoblasts.
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Jingjun Xu | Leiting Pan | Songzi Kou | Danny van Noort | Leiting Pan | D. van Noort | Songzi Kou | Imshik Lee | Haiying Sun | Haiying Sun | Imshik Lee | Guixian Meng | Xian Wu | Guixian Meng | Xian Wu | Jingjun Xu
[1] Janet Rubin,et al. Molecular pathways mediating mechanical signaling in bone. , 2006, Gene.
[2] Hanry Yu,et al. Stem cells in microfluidics , 2009, Biotechnology progress.
[3] Qiaobing Xu,et al. Fluid Flow Induced Calcium Response in Bone Cell Network , 2008, Cellular and molecular bioengineering.
[4] Michael Doran,et al. A novel multishear microdevice for studying cell mechanics. , 2009, Lab on a chip.
[5] J. Voldman,et al. Microfluidic arrays for logarithmically perfused embryonic stem cell culture. , 2006, Lab on a chip.
[6] Christopher R Jacobs,et al. Effects of short-term recovery periods on fluid-induced signaling in osteoblastic cells. , 2005, Journal of biomechanics.
[7] Xiujun Li,et al. Microfluidic selection and retention of a single cardiac myocyte, on-chip dye loading, cell contraction by chemical stimulation, and quantitative fluorescent analysis of intracellular calcium. , 2005, Analytical chemistry.
[8] Aaron R Wheeler,et al. Microfluidic device for single-cell analysis. , 2003, Analytical chemistry.
[9] Huabing Yin,et al. A microfluidic‐based system for analysis of single cells based on Ca2+ flux , 2006, Electrophoresis.
[10] A. Groisman,et al. Microfluidic devices for studies of shear-dependent platelet adhesion. , 2008, Lab on a chip.
[11] C. Hung,et al. Real‐Time Calcium Response of Cultured Bone Cells to Fluid Flow , 1995, Clinical orthopaedics and related research.
[12] T. Takano-Yamamoto,et al. Fluid Shear Stress Induces Less Calcium Response in a Single Primary Osteocyte Than in a Single Osteoblast: Implication of Different Focal Adhesion Formation , 2006, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[13] Christopher R Jacobs,et al. Osteocyte mechanobiology and pericellular mechanics. , 2010, Annual review of biomedical engineering.
[14] Jonathan M Cooper,et al. Influence of hydrodynamic conditions on quantitative cellular assays in microfluidic systems. , 2007, Analytical chemistry.
[15] C. Hung,et al. Serum modulates the intracellular calcium response of primary cultured bone cells to shear flow. , 2000, Journal of biomechanics.
[16] Imshik Lee,et al. A quantitative study on morphological responses of osteoblastic cells to fluid shear stress. , 2010, Acta biochimica et biophysica Sinica.
[17] Leiting Pan,et al. Exogenous nitric oxide-induced release of calcium from intracellular IP3 receptor-sensitive stores via S-nitrosylation in respiratory burst-dependent neutrophils. , 2008, Biochemical and biophysical research communications.
[18] F. Guilak,et al. Hyper-osmotic stress induces volume change and calcium transients in chondrocytes by transmembrane, phospholipid, and G-protein pathways. , 2001, Journal of biomechanics.
[19] H. Donahue,et al. From streaming‐potentials to shear stress: 25 years of bone cell mechanotransduction , 2009, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[20] L V McIntire,et al. Flow effects on prostacyclin production by cultured human endothelial cells. , 1985, Science.
[21] Efthimia K Basdra,et al. Signaling networks and transcription factors regulating mechanotransduction in bone , 2009, BioEssays : news and reviews in molecular, cellular and developmental biology.
[22] Chao Liu,et al. Effects of cyclic hydraulic pressure on osteocytes. , 2010, Bone.
[23] Clark T Hung,et al. Chondrocyte intracellular calcium, cytoskeletal organization, and gene expression responses to dynamic osmotic loading. , 2006, American journal of physiology. Cell physiology.
[24] R. Ogawa,et al. Mechanotransduction in bone repair and regeneration , 2010, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[25] C. Hung,et al. Intracellular Ca2+ stores and extracellular Ca2+ are required in the real-time Ca2+ response of bone cells experiencing fluid flow. , 1996, Journal of biomechanics.
[26] G. Whitesides,et al. Soft Lithography. , 1998, Angewandte Chemie.
[27] Hanry Yu,et al. A novel 3D mammalian cell perfusion-culture system in microfluidic channels. , 2007, Lab on a chip.
[28] H J Donahue,et al. Differential effect of steady versus oscillating flow on bone cells. , 1998, Journal of biomechanics.
[29] M. Berridge,et al. Calcium signalling: dynamics, homeostasis and remodelling , 2003, Nature reviews. Molecular cell biology.
[30] C. Taylor. Controlling Calcium Entry , 2002, Cell.
[31] Christopher R Jacobs,et al. Osteoblastic cells have refractory periods for fluid-flow-induced intracellular calcium oscillations for short bouts of flow and display multiple low-magnitude oscillations during long-term flow. , 2003, Journal of biomechanics.
[32] H. Pak,et al. Real-time observations of mechanical stimulus-induced enhancements of mechanical properties in osteoblast cells. , 2008, Ultramicroscopy.
[33] R L Duncan,et al. Ca(2+) regulates fluid shear-induced cytoskeletal reorganization and gene expression in osteoblasts. , 2000, American journal of physiology. Cell physiology.
[34] D. Beebe,et al. Physics and applications of microfluidics in biology. , 2002, Annual review of biomedical engineering.
[35] Douglas A Lauffenburger,et al. Microfluidic shear devices for quantitative analysis of cell adhesion. , 2004, Analytical chemistry.
[36] Juyoung Yoon,et al. Fluorescent molecular logic gates using microfluidic devices. , 2008, Angewandte Chemie.