Microfluidics‐based 3D cell culture models: Utility in novel drug discovery and delivery research
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Vivek Gupta | Nilesh Gupta | Jeffrey R. Liu | Brijeshkumar Patel | Deepak E. Solomon | Bhuvaneshwar Vaidya | B. Vaidya | Vivek Gupta | N. Gupta | Brijeshkumar S. Patel | Deepak E. Solomon | Jeffrey R. Liu | Bhuvaneshwar Vaidya
[1] Jr-Lung Lin,et al. Development of an Integrated Microfluidic Perfusion Cell Culture System for Real-Time Microscopic Observation of Biological Cells , 2011, Sensors.
[2] R. Kamm,et al. Cell migration into scaffolds under co-culture conditions in a microfluidic platform. , 2009, Lab on a chip.
[3] Andrés J. García,et al. Engineering more than a cell: vascularization strategies in tissue engineering. , 2010, Current opinion in biotechnology.
[4] Steve R. Gonda,et al. Skeletal muscle satellite cells cultured in simulated microgravity , 1997, In Vitro Cellular & Developmental Biology - Animal.
[5] Hanry Yu,et al. A gel-free 3D microfluidic cell culture system. , 2008, Biomaterials.
[6] Glyn Stacey,et al. Current developments in cell culture technology. , 2012, Advances in experimental medicine and biology.
[7] Gurusingham Sitta Sittampalam,et al. Activity of anticancer agents in a three-dimensional cell culture model. , 2010, Assay and drug development technologies.
[8] Tetsuya Horiuchi,et al. E-cadherin-dependent intercellular adhesion enhances chemoresistance. , 2003, International journal of molecular medicine.
[9] Megan L. McCain,et al. Ensembles of engineered cardiac tissues for physiological and pharmacological study: heart on a chip. , 2011, Lab on a chip.
[10] Dorota Stadnik,et al. Miniaturized tools and devices for bioanalytical applications: an overview , 2009, Analytical and bioanalytical chemistry.
[11] Seiji Miura,et al. Mind the gap: a survey of how cancer drug carriers are susceptible to the gap between research and practice. , 2013, Journal of controlled release : official journal of the Controlled Release Society.
[12] H. Kurosawa. Methods for inducing embryoid body formation: in vitro differentiation system of embryonic stem cells. , 2007, Journal of bioscience and bioengineering.
[13] Ali Khademhosseini,et al. Microfluidic chip-based fabrication of PLGA microfiber scaffolds for tissue engineering. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[14] Yahya E Choonara,et al. Diverse approaches for the enhancement of oral drug bioavailability , 2011, Biopharmaceutics & drug disposition.
[15] A. Prina‐Mello,et al. Multifactorial determinants that govern nanoparticle uptake by human endothelial cells under flow , 2012, International journal of nanomedicine.
[16] D. Wolf,et al. Reduced shear stress: A major component in the ability of mammalian tissues to form three‐dimensional assemblies in simulated microgravity , 1993, Journal of cellular biochemistry.
[17] Juergen Friedrich,et al. Spheroid-based drug screen: considerations and practical approach , 2009, Nature Protocols.
[18] Bing Chen,et al. Phenotypical analysis of adult rat olfactory ensheathing cells on 3-D collagen scaffolds , 2006, Neuroscience Letters.
[19] Catarina Brito,et al. Human liver cell spheroids in extended perfusion bioreactor culture for repeated‐dose drug testing , 2012, Hepatology.
[20] Maria Bokhari,et al. Culture of HepG2 liver cells on three dimensional polystyrene scaffolds enhances cell structure and function during toxicological challenge , 2007, Journal of anatomy.
[21] Feng Xu,et al. Engineering three-dimensional cell mechanical microenvironment with hydrogels , 2012, Biofabrication.
[22] R L Reis,et al. Proliferation and differentiation of goat bone marrow stromal cells in 3D scaffolds with tunable hydrophilicity. , 2009, Journal of biomedical materials research. Part B, Applied biomaterials.
[23] J. Burdick,et al. Cellular Encapsulation in 3D Hydrogels for Tissue Engineering , 2009, Journal of visualized experiments : JoVE.
[24] Ivan Martin,et al. Engineering of osteoinductive grafts by isolation and expansion of ovine bone marrow stromal cells directly on 3D ceramic scaffolds , 2006, Biotechnology and bioengineering.
[25] Cheul H Cho,et al. A multicellular 3D heterospheroid model of liver tumor and stromal cells in collagen gel for anti-cancer drug testing. , 2013, Biochemical and biophysical research communications.
[26] Lil Pabon,et al. Scaffold-free human cardiac tissue patch created from embryonic stem cells. , 2009, Tissue engineering. Part A.
[27] J. Kelm,et al. 3D cell culture systems modeling tumor growth determinants in cancer target discovery. , 2014, Advanced drug delivery reviews.
[28] V. Torchilin,et al. Generation and functional assessment of 3D multicellular spheroids in droplet based microfluidics platform. , 2016, Lab on a chip.
[29] Jan Böttger,et al. “Artificial micro organs”—a microfluidic device for dielectrophoretic assembly of liver sinusoids , 2011, Biomedical microdevices.
[30] Shuichi Takayama,et al. High-throughput 3D spheroid culture and drug testing using a 384 hanging drop array. , 2011, The Analyst.
[31] Samir Mitragotri,et al. Multifunctional nanoparticles for drug delivery and molecular imaging. , 2013, Annual review of biomedical engineering.
[32] Samir Mitragotri,et al. Flow and adhesion of drug carriers in blood vessels depend on their shape: a study using model synthetic microvascular networks. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[33] Jong Hwan Sung,et al. A micro cell culture analog (microCCA) with 3-D hydrogel culture of multiple cell lines to assess metabolism-dependent cytotoxicity of anti-cancer drugs. , 2009, Lab on a chip.
[34] E. Verpoorte,et al. Microfluidic devices for in vitro studies on liver drug metabolism and toxicity. , 2011, Integrative biology : quantitative biosciences from nano to macro.
[35] Yubing Xie,et al. A novel 3-D model for cell culture and tissue engineering , 2009, Biomedical microdevices.
[36] Yi Wang,et al. Adhesive Interaction of Functionalized Particles and Endothelium in Idealized Microvascular Networks , 2013, Microvascular research.
[37] Gwo-Bin Lee,et al. Microfluidic cell culture systems for drug research. , 2010, Lab on a chip.
[38] Po Ki Yuen,et al. Perfusion-based microfluidic device for three-dimensional dynamic primary human hepatocyte cell culture in the absence of biological or synthetic matrices or coagulants. , 2010, Lab on a chip.
[39] Dominique Zosso,et al. Synergistic NGF/B27 Gradients Position Synapses Heterogeneously in 3D Micropatterned Neural Cultures , 2011, PloS one.
[40] Z. Nie,et al. Microfluidic 3D cell culture: potential application for tissue-based bioassays. , 2012, Bioanalysis.
[41] Genee Y. Lee,et al. Three-dimensional culture models of normal and malignant breast epithelial cells , 2007, Nature Methods.
[42] David J. Beebe,et al. Automation of Three-Dimensional Cell Culture in Arrayed Microfluidic Devices , 2011, Journal of laboratory automation.
[43] Robert Langer,et al. Microfluidic platform for combinatorial synthesis and optimization of targeted nanoparticles for cancer therapy. , 2013, ACS nano.
[44] Navid Ghorashian,et al. Microfluidic System for Automated Cell-Based Assays , 2007, JALA.
[45] Bingcheng Lin,et al. Carcinoma-associated fibroblasts promoted tumor spheroid invasion on a microfluidic 3D co-culture device. , 2010, Lab on a chip.
[46] Ali Khademhosseini,et al. Biomimetic tissues on a chip for drug discovery. , 2012, Drug discovery today.
[47] C. Ries,et al. Comparison of 3D and 2D tumor models reveals enhanced HER2 activation in 3D associated with an increased response to trastuzumab , 2009, Oncogene.
[48] Brijeshkumar Patel,et al. Fasudil and SOD packaged in peptide-studded-liposomes: Properties, pharmacokinetics and ex-vivo targeting to isolated perfused rat lungs. , 2015, International journal of pharmaceutics.
[49] Sindy K. Y. Tang,et al. Multizone Paper Platform for 3D Cell Cultures , 2011, PloS one.
[50] Gi Seok Jeong,et al. Microfluidic assay of endothelial cell migration in 3D interpenetrating polymer semi-network HA-Collagen hydrogel , 2011, Biomedical microdevices.
[51] Cervical cancer is the most common type of gynecological malig- nancy and the second leading cause of death in women worldwide , 2007 .
[52] P J Prendergast,et al. A comparison of the osteogenic potential of adult rat mesenchymal stem cells cultured in 2-D and on 3-D collagen glycosaminoglycan scaffolds. , 2007, Technology and health care : official journal of the European Society for Engineering and Medicine.
[53] Katsuhisa Horimoto,et al. Induction of Pluripotent Stem Cells from Human Third Molar Mesenchymal Stromal Cells*♦ , 2010, The Journal of Biological Chemistry.
[54] Artur Dybko,et al. Evaluation of photodynamic therapy (PDT) procedures using microfluidic system. , 2011, Analytica chimica acta.
[55] T. Meyer,et al. A new method for the 3‐D in vitro growth of human RT112bladder carcinoma cells using the alginate culture technique , 1994, Biology of the cell.
[56] Teck Chuan Lim,et al. A microfluidic 3D hepatocyte chip for drug toxicity testing. , 2009, Lab on a chip.
[57] Mandy B. Esch,et al. The role of body-on-a-chip devices in drug and toxicity studies. , 2011, Annual review of biomedical engineering.
[58] Peter T C So,et al. Microfluidics: Simultaneous or Sequential Orthogonal Gradient Formation in a 3D Cell Culture Microfluidic Platform (Small 5/2016). , 2016, Small.
[59] A. Khademhosseini,et al. An integrated microfluidic device for two-dimensional combinatorial dilution. , 2011, Lab on a chip.
[60] Anthony Atala,et al. 3D bioprinting of tissues and organs , 2014, Nature Biotechnology.
[61] Monya Baker,et al. Tissue models: A living system on a chip , 2011, Nature.
[62] Sindy K. Y. Tang,et al. Paper-supported 3D cell culture for tissue-based bioassays , 2009, Proceedings of the National Academy of Sciences.
[63] James A Bankson,et al. Three-dimensional tissue culture based on magnetic cell levitation. , 2010, Nature nanotechnology.
[64] Jong Wook Hong,et al. Micro 3D cell culture systems for cellular behavior studies: Culture matrices, devices, substrates, and in‐situ sensing methods , 2015, Biotechnology journal.
[65] M. Dolovich,et al. Pulmonary drug delivery. Part I: physiological factors affecting therapeutic effectiveness of aerosolized medications. , 2003, British journal of clinical pharmacology.
[66] Grace N Li,et al. Genomic and morphological changes of neuroblastoma cells in response to three-dimensional matrices. , 2007, Tissue engineering.
[67] John W Haycock,et al. 3D cell culture: a review of current approaches and techniques. , 2011, Methods in molecular biology.
[68] Hanry Yu,et al. Cell Culture on MEMS Platforms: A Review , 2009, International journal of molecular sciences.
[69] D. Ingber,et al. Reconstituting Organ-Level Lung Functions on a Chip , 2010, Science.
[70] Takehiko Kitamori,et al. Development of an osteoblast-based 3D continuous-perfusion microfluidic system for drug screening , 2008, Analytical and bioanalytical chemistry.
[71] Marissa Nichole Rylander,et al. Microfluidic culture models to study the hydrodynamics of tumor progression and therapeutic response , 2013, Biotechnology and bioengineering.
[72] Hwan-You Chang,et al. Recent advances in three‐dimensional multicellular spheroid culture for biomedical research , 2008, Biotechnology journal.
[73] Tetsuhiro Kikuchi,et al. Small‐molecule inhibitors of bone morphogenic protein and activin/nodal signals promote highly efficient neural induction from human pluripotent stem cells , 2011, Journal of neuroscience research.
[74] Hanry Yu,et al. HepaRG culture in tethered spheroids as an in vitro three‐dimensional model for drug safety screening , 2015, Journal of applied toxicology : JAT.
[75] Robin L. Cooper,et al. Measures of Heart and Ventilatory Rates in Freely Moving Crayfish , 2009, Journal of visualized experiments : JoVE.
[76] Daniel C Leslie,et al. A Human Disease Model of Drug Toxicity–Induced Pulmonary Edema in a Lung-on-a-Chip Microdevice , 2012, Science Translational Medicine.
[77] Lucas H. Hofmeister,et al. Scaling and systems biology for integrating multiple organs-on-a-chip. , 2013, Lab on a chip.
[78] F. Yuan,et al. A review of three-dimensional in vitro tissue models for drug discovery and transport studies. , 2011, Journal of pharmaceutical sciences.
[79] J. Cooper,et al. Tumors on chips: oncology meets microfluidics. , 2010, Current opinion in chemical biology.
[80] S. Sahoo,et al. 3-D tumor model for in vitro evaluation of anticancer drugs. , 2008, Molecular pharmaceutics.
[81] J. Choi,et al. Wnt5a-mediating neurogenesis of human adipose tissue-derived stem cells in a 3D microfluidic cell culture system. , 2011, Biomaterials.
[82] Dae Kun Hwang,et al. One‐Step Two‐Dimensional Microfluidics‐Based Synthesis of Three‐Dimensional Particles , 2014, Advanced materials.
[83] Michael R. King,et al. Continuously perfused microbubble array for 3D tumor spheroid model. , 2011, Biomicrofluidics.
[84] L. O’Driscoll,et al. Three-dimensional cell culture: the missing link in drug discovery. , 2013, Drug discovery today.
[85] K. Peck,et al. Genomic analysis of smooth muscle cells in three‐dimensional collagen matrix , 2003, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[86] John Greenman,et al. Development of a microfluidic device for the maintenance and interrogation of viable tissue biopsies. , 2008, Lab on a chip.
[87] Shuichi Takayama,et al. Microfluidic system for formation of PC-3 prostate cancer co-culture spheroids. , 2009, Biomaterials.
[88] Fernando Jorge Monteiro,et al. The role of perfusion bioreactors in bone tissue engineering , 2012, Biomatter.
[89] Dong Choon Hyun,et al. Engineered nanoparticles for drug delivery in cancer therapy. , 2014, Angewandte Chemie.
[90] Katie R. Hurley,et al. On-chip evaluation of platelet adhesion and aggregation upon exposure to mesoporous silica nanoparticles. , 2014, The Analyst.
[91] Ursula Graf-Hausner,et al. Synthetic 3D multicellular systems for drug development. , 2012, Current opinion in biotechnology.
[92] Robert F Service. Bioengineering. Lung-on-a-chip breathes new life into drug discovery. , 2012, Science.
[93] Yinzhi Lai,et al. Three-dimensional polymer scaffolds for high throughput cell-based assay systems. , 2008, Biomaterials.
[94] D. Ingber,et al. Shear-Activated Nanotherapeutics for Drug Targeting to Obstructed Blood Vessels , 2012, Science.
[95] D. Ingber,et al. From 3D cell culture to organs-on-chips. , 2011, Trends in cell biology.
[96] S. Bolz,et al. A microfluidic platform for probing small artery structure and function. , 2010, Lab on a chip.
[97] R. Hood. Letters , 2013, Clinical Diabetes.
[98] A. Ivascu,et al. Rapid Generation of Single-Tumor Spheroids for High-Throughput Cell Function and Toxicity Analysis , 2006, Journal of biomolecular screening.
[99] Danny Baranes,et al. Superior survival and durability of neurons and astrocytes on 3-dimensional aragonite biomatrices. , 2007, Tissue engineering.
[100] A. Khademhosseini,et al. Carbon-nanotube-embedded hydrogel sheets for engineering cardiac constructs and bioactuators. , 2013, ACS nano.
[101] Gang Zheng,et al. Theranostic lipid nanoparticles for cancer medicine. , 2015, Cancer treatment and research.
[102] Smadar Cohen,et al. Enhancing the drug metabolism activities of C3A--a human hepatocyte cell line--by tissue engineering within alginate scaffolds. , 2006, Tissue engineering.
[103] Adrian Ranga,et al. Drug discovery through stem cell-based organoid models. , 2014, Advanced drug delivery reviews.
[104] Dietmar W Hutmacher,et al. Translating tissue engineering technology platforms into cancer research , 2009, Journal of cellular and molecular medicine.
[105] Hisatoshi Kobayashi,et al. Osteogenic differentiation of mesenchymal stem cells in self-assembled peptide-amphiphile nanofibers. , 2006, Biomaterials.
[106] O. Kocher,et al. Transforming growth factor beta1 modulates extracellular matrix organization and cell‐cell junctional complex formation during in vitro angiogenesis , 1990, Journal of cellular physiology.
[107] Phapanin Charoenphol,et al. Margination propensity of vascular-targeted spheres from blood flow in a microfluidic model of human microvessels. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[108] F. Sonntag,et al. A dynamic multi-organ-chip for long-term cultivation and substance testing proven by 3D human liver and skin tissue co-culture. , 2013, Lab on a chip.
[109] Mina J. Bissell,et al. Biomechanical Approaches for Studying Integration of Tissue Structure and Function in Mammary Epithelia , 2004, Journal of Mammary Gland Biology and Neoplasia.
[110] E. A. Sykes,et al. Tumour-on-a-chip provides an optical window into nanoparticle tissue transport , 2013, Nature Communications.
[111] Shang-Tian Yang,et al. Effects of Three‐Dimensional Culturing in a Fibrous Matrix on Cell Cycle, Apoptosis, and MAb Production by Hybridoma Cells , 2008, Biotechnology progress.
[112] H. Kleinman,et al. Matrigel: basement membrane matrix with biological activity. , 2005, Seminars in cancer biology.
[113] Chang Lu,et al. Microfluidic delivery of small molecules into mammalian cells based on hydrodynamic focusing , 2008, Biotechnology and bioengineering.
[114] Laurent Griscom,et al. Improvement of HepG2/C3a cell functions in a microfluidic biochip , 2011, Biotechnology and bioengineering.
[115] Bjoern Rodday,et al. Test System for Trifunctional Antibodies in 3D MCTS Culture , 2009, Journal of biomolecular screening.
[116] Bjoern Rodday,et al. Semiautomatic Growth Analysis of Multicellular Tumor Spheroids , 2011, Journal of biomolecular screening.
[117] Pauline M Doran,et al. Shear and Compression Bioreactor for Cartilage Synthesis. , 2015, Methods in molecular biology.
[118] Hanry Yu,et al. Towards a human-on-chip: culturing multiple cell types on a chip with compartmentalized microenvironments. , 2009, Lab on a chip.
[119] M. Kural,et al. Regulating tension in three-dimensional culture environments. , 2013, Experimental cell research.
[120] Bong Geun Chung,et al. Concave microwell based size-controllable hepatosphere as a three-dimensional liver tissue model. , 2011, Biomaterials.
[121] Gordana Vunjak-Novakovic,et al. Micropatterned three‐dimensional hydrogel system to study human endothelial–mesenchymal stem cell interactions , 2010, Journal of tissue engineering and regenerative medicine.
[122] Mary Kay Harper,et al. 3D Models of Epithelial-Mesenchymal Transition in Breast Cancer Metastasis , 2011, Journal of biomolecular screening.
[123] Shiang-Fu Huang,et al. The Effect of Primary Cancer Cell Culture Models on the Results of Drug Chemosensitivity Assays: The Application of Perfusion Microbioreactor System as Cell Culture Vessel , 2015, BioMed research international.
[124] Komal Rambani,et al. Culturing thick brain slices: An interstitial 3D microperfusion system for enhanced viability , 2009, Journal of Neuroscience Methods.
[125] Mandy B. Esch,et al. Characterization of a gastrointestinal tract microscale cell culture analog used to predict drug toxicity , 2009, Biotechnology and bioengineering.
[126] A. Khademhosseini,et al. A cell-laden microfluidic hydrogel. , 2007, Lab on a chip.
[127] Wilhelm Pfleging,et al. A chip-based platform for the in vitro generation of tissues in three-dimensional organization. , 2007, Lab on a chip.
[128] Emmanuel G. Reynaud,et al. Three-dimensional tissue cultures: current trends and beyond , 2012, Cell and Tissue Research.
[129] Tingrui Pan,et al. Microfluidic System for Facilitated Quantification of Nanoparticle Accumulation to Cells Under Laminar Flow , 2012, Annals of Biomedical Engineering.
[130] Farnaz Niroui,et al. In vitro-in vivo translation of lipid nanoparticles for hepatocellular siRNA delivery. , 2012, ACS nano.
[131] Jan G. Hengstler,et al. Comparative analysis of 3D culture methods on human HepG2 cells , 2016, Archives of Toxicology.
[132] E. Verpoorte,et al. An alternative approach based on microfluidics to study drug metabolism and toxicity using liver and intestinal tissue , 2010 .
[133] Jeremy N. Skepper,et al. A Heterogeneous In Vitro Three Dimensional Model of Tumour-Stroma Interactions Regulating Sprouting Angiogenesis , 2012, PloS one.
[134] Satoru Takeda,et al. In vitro formation of capillary networks using optical lithographic techniques. , 2007, Biochemical and biophysical research communications.
[135] Eric Y Chuang,et al. Comparison of Several Radiation Effects in Human MCF10A Mammary Epithelial Cells Cultured as 2D Monolayers or 3D Acinar Stuctures in Matrigel , 2009, Radiation research.
[136] Kristian Pietras,et al. High interstitial fluid pressure — an obstacle in cancer therapy , 2004, Nature Reviews Cancer.
[137] Erkki Ruoslahti,et al. A high-throughput label-free nanoparticle analyser. , 2011, Nature nanotechnology.
[138] Jong Hwan Sung,et al. A microfluidic device for a pharmacokinetic-pharmacodynamic (PK-PD) model on a chip. , 2010, Lab on a chip.
[139] Shuichi Takayama,et al. Microfluidic Endothelium for Studying the Intravascular Adhesion of Metastatic Breast Cancer Cells , 2009, PloS one.
[140] Shang-Tian Yang,et al. Effects of Three‐Dimensional Culturing on Osteosarcoma Cells Grown in a Fibrous Matrix: Analyses of Cell Morphology, Cell Cycle, and Apoptosis , 2003, Biotechnology progress.
[141] Kevin W Eliceiri,et al. Transition to invasion in breast cancer: a microfluidic in vitro model enables examination of spatial and temporal effects. , 2011, Integrative biology : quantitative biosciences from nano to macro.
[142] Matthieu Piel,et al. Microfabricated devices for cell biology: all for one and one for all. , 2013, Current opinion in cell biology.
[143] H. Kimura,et al. An integrated microfluidic system for long-term perfusion culture and on-line monitoring of intestinal tissue models. , 2008, Lab on a chip.
[144] Martin Fussenegger,et al. Method for generation of homogeneous multicellular tumor spheroids applicable to a wide variety of cell types. , 2003, Biotechnology and bioengineering.
[145] JONG BIN Kim,et al. Three-dimensional tissue culture models in cancer biology. , 2005, Seminars in cancer biology.
[146] Jennifer Barrila,et al. Organotypic 3D cell culture models: using the rotating wall vessel to study host–pathogen interactions , 2010, Nature Reviews Microbiology.
[147] Kapil Pant,et al. A physiologically realistic in vitro model of microvascular networks , 2009, Biomedical microdevices.
[148] A. Knox,et al. Use of a three-dimensional cell culture model to study airway smooth muscle-mast cell interactions in airway remodeling. , 2009, American journal of physiology. Lung cellular and molecular physiology.
[149] Aaron R Wheeler,et al. Technique for real-time measurements of endothelial permeability in a microfluidic membrane chip using laser-induced fluorescence detection. , 2010, Analytical chemistry.
[150] Jyrki Lötjönen,et al. A Comprehensive Panel of Three-Dimensional Models for Studies of Prostate Cancer Growth, Invasion and Drug Responses , 2010, PloS one.
[151] J. Elisseeff,et al. Experimental model for cartilage tissue engineering to regenerate the zonal organization of articular cartilage. , 2003, Osteoarthritis and cartilage.
[152] Kevin W Eliceiri,et al. Control of 3-dimensional collagen matrix polymerization for reproducible human mammary fibroblast cell culture in microfluidic devices. , 2009, Biomaterials.
[153] Muhammad Naveed Umar,et al. Nanobiotechnology and its applications in drug delivery system: a review. , 2015, IET nanobiotechnology.