Microfluidic Brain-on-a-Chip: Perspectives for Mimicking Neural System Disorders
暂无分享,去创建一个
Mirza Ali Mofazzal Jahromi | Amir Abdoli | Mohammad Rahmanian | Hassan Bardania | Mehrdad Bayandori | Seyed Masoud Moosavi Basri | Alireza Kalbasi | Amir Reza Aref | Mahdi Karimi | Michael R Hamblin | M. Karimi | H. Bardania | A. Aref | S. M. Moosavi Basri | A. Abdoli | Mehrdad Bayandori | A. Kalbasi | M. Rahmanian
[1] Dries Braeken,et al. Brain-on-a-chip Devices for Drug Screening and Disease Modeling Applications. , 2019, Current pharmaceutical design.
[2] Shelly E. Sakiyama-Elbert,et al. A microdevice platform for visualizing mitochondrial transport in aligned dopaminergic axons , 2012, Journal of Neuroscience Methods.
[3] Michael R Hamblin,et al. Microfluidic systems for stem cell-based neural tissue engineering. , 2016, Lab on a chip.
[4] Feng Xu,et al. Engineering a Brain Cancer Chip for High-throughput Drug Screening , 2016, Scientific Reports.
[5] M. Bracken. Why animal studies are often poor predictors of human reactions to exposure , 2009, Journal of the Royal Society of Medicine.
[6] D. Ingber,et al. Microfluidic organs-on-chips , 2014, Nature Biotechnology.
[7] R. Roos,et al. Huntington's disease: a clinical review , 2010, Orphanet journal of rare diseases.
[8] Scientific priorities for the BRAIN Initiative , 2013, Nature Methods.
[9] Dietmar W. Hutmacher,et al. Bioengineered 3D platform to explore cell-ECM interactions and drug resistance of epithelial ovarian cancer cells. , 2010, Biomaterials.
[10] Harald Sontheimer,et al. Microphysiological Human Brain and Neural Systems-on-a-Chip: Potential Alternatives to Small Animal Models and Emerging Platforms for Drug Discovery and Personalized Medicine , 2017, Stem Cell Reviews and Reports.
[11] V. Volpini,et al. Rare Neurodegenerative Diseases: Clinical and Genetic Update. , 2017, Advances in experimental medicine and biology.
[12] I. Cloëz-Tayarani,et al. Induced pluripotent stem cells as a tool to study brain circuits in autism-related disorders , 2018, Stem Cell Research & Therapy.
[13] Y. S. Zhang,et al. Mimicking Human Pathophysiology in Organ‐on‐Chip Devices , 2018, Advanced Biosystems.
[14] Elena I Mancera-Andrade,et al. Microfluidics technology for drug delivery: A review. , 2018, Frontiers in bioscience.
[15] Roger D. Kamm,et al. Modeling the Blood-Brain Barrier in a 3D triple co-culture microfluidic system , 2015, 2015 37th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[16] M. Gottesman,et al. Beyond 3D culture models of cancer , 2015, Science Translational Medicine.
[17] D. Mooney,et al. Vasculogenic dynamics in 3D engineered tissue constructs , 2015, Scientific Reports.
[18] Ye Fang,et al. Three-Dimensional Cell Cultures in Drug Discovery and Development. , 2017, SLAS discovery : advancing life sciences R & D.
[19] W. Liu,et al. MicroRNA-214 modulates neural progenitor cell differentiation by targeting Quaking during cerebral cortex development , 2017, Scientific Reports.
[20] Jun Wu,et al. First stem cell transplantation to regenerate human lung , 2018, Protein & Cell.
[21] Donald E Ingber,et al. Mechanical control of tissue and organ development , 2010, Development.
[22] Kuo-Hsuan Chang,et al. Point-of-Care Devices Using Disease Biomarkers To Diagnose Neurodegenerative Disorders. , 2017, Trends in biotechnology.
[23] Roger D Kamm,et al. Engineered 3D vascular and neuronal networks in a microfluidic platform , 2018, Scientific Reports.
[24] Ronan M. T. Fleming,et al. Automated microuidic cell culture of stem cell derived dopaminergic neurons in Parkinson’s disease , 2017, bioRxiv.
[25] Michael R Hamblin,et al. Bacterial components as naturally inspired nano-carriers for drug/gene delivery and immunization: Set the bugs to work? , 2018, Biotechnology advances.
[26] Giuseppe Trapani,et al. New strategies to deliver anticancer drugs to brain tumors , 2009, Expert opinion on drug delivery.
[27] Luoran Shang,et al. Design of capillary microfluidics for spinning cell-laden microfibers , 2018, Nature Protocols.
[28] M. Hamblin,et al. Redox-Sensitive Smart Nanosystems for Drug and Gene Delivery , 2016 .
[29] Ulrich Müller,et al. Extracellular matrix: functions in the nervous system. , 2011, Cold Spring Harbor perspectives in biology.
[30] K. Jensen,et al. Cells on chips , 2006, Nature.
[31] Yeoheung Yun,et al. Three-dimensional (3D) tetra-culture brain on chip platform for organophosphate toxicity screening , 2018, Scientific Reports.
[32] Anastasia G. Efthymiou,et al. Induced Pluripotent Stem Cell Models to Enable In Vitro Models for Screening in the Central Nervous System. , 2015, Stem cells and development.
[33] Roger D. Kamm,et al. A 3D neurovascular microfluidic model consisting of neurons, astrocytes and cerebral endothelial cells as a blood-brain barrier. , 2017, Lab on a chip.
[34] Celeste M Nelson,et al. The mechanics of development: Models and methods for tissue morphogenesis. , 2010, Birth defects research. Part C, Embryo today : reviews.
[35] Saman Sadeghi,et al. Micro-chemical synthesis of molecular probes on an electronic microfluidic device , 2011, Proceedings of the National Academy of Sciences.
[36] D. Munoz,et al. Opportunities and challenges in developing relevant animal models for Alzheimer’s disease , 2016, Ageing Research Reviews.
[37] Jung Keun Hyun,et al. Three-dimensional brain-on-a-chip with an interstitial level of flow and its application as an in vitro model of Alzheimer's disease. , 2015, Lab on a chip.
[38] Hong Wu,et al. A microfluidic platform for systems pathology: multiparameter single-cell signaling measurements of clinical brain tumor specimens. , 2010, Cancer research.
[39] B. Vagaská,et al. Toward modeling the human nervous system in a dish: recent progress and outstanding challenges. , 2017, Regenerative medicine.
[40] Donald E. Ingber,et al. Modelling cancer in microfluidic human organs-on-chips , 2019, Nature Reviews Cancer.
[41] Ronan M. T. Fleming,et al. Differentiation of neuroepithelial stem cells into functional dopaminergic neurons in 3D microfluidic cell culture. , 2015, Lab on a chip.
[42] Hong Wang,et al. Unique molecular events during reprogramming of human somatic cells to induced pluripotent stem cells (iPSCs) at naïve state , 2018, eLife.
[43] J. Cuevas,et al. A modular approach to create a neurovascular unit-on-a-chip. , 2013, Lab on a chip.
[44] Sara Reardon,et al. ‘Organs-on-chips’ go mainstream , 2015, Nature.
[45] C. Wiley,et al. Brain Extracellular Matrix in Neurodegeneration , 2008, Brain pathology.
[46] D. Ferrari,et al. Neural Stem Cells and Human Induced Pluripotent Stem Cells to Model Rare CNS Diseases. , 2018, CNS & neurological disorders drug targets.
[47] L. Mao,et al. Microfluidics in Malignant Glioma Research and Precision Medicine , 2018, Advanced biosystems.
[48] John Q. Trojanowski,et al. Chaperone Suppression of α-Synuclein Toxicity in a Drosophila Model for Parkinson's Disease , 2001, Science.
[49] Emmanuel Delamarche,et al. Lab-on-a-chip devices , 2015 .
[50] Albert van den Berg,et al. Microfluidic organ-on-chip technology for blood-brain barrier research , 2016, Tissue barriers.
[51] N. Abbott. Blood–brain barrier structure and function and the challenges for CNS drug delivery , 2013, Journal of Inherited Metabolic Disease.
[52] Jing Liu,et al. Microfluidic engineering of neural stem cell niches for fate determination. , 2017, Biomicrofluidics.
[53] François-Clément Bidard,et al. FISH-in-CHIPS: A Microfluidic Platform for Molecular Typing of Cancer Cells. , 2017, Methods in molecular biology.
[54] Bruce C Wheeler,et al. Three-dimensional micro-electrode array for recording dissociated neuronal cultures. , 2009, Lab on a chip.
[55] P. Bovolenta,et al. Molecular profiling of aged neural progenitors identifies Dbx2 as a candidate regulator of age‐associated neurogenic decline , 2018, Aging cell.
[56] M. Francolini,et al. Testing Aβ toxicity on primary CNS cultures using drug-screening microfluidic chips. , 2014, Lab on a chip.
[57] Tobias Schmelzle,et al. Engineering tumors with 3D scaffolds , 2007, Nature Methods.
[58] Andre Levchenko,et al. Brain-on-a-chip model enables analysis of human neuronal differentiation and chemotaxis. , 2016, Lab on a chip.
[59] Teruo Fujii,et al. Organ/body-on-a-chip based on microfluidic technology for drug discovery. , 2017, Drug metabolism and pharmacokinetics.
[60] W. Noble,et al. Challenges in Neurodegeneration Research , 2010, Front. Psychiatry.
[61] Hafiz M.N. Iqbal,et al. Organs-on-a-Chip Module: A Review from the Development and Applications Perspective , 2018, Micromachines.
[62] Foysal Z. Khan,et al. Combining magnetic forces for contactless manipulation of fluids in microelectrode-microfluidic systems , 2019, Scientific Reports.
[63] Mirza Ali Mofazzal Jahromi,et al. Application of arteether-loaded polyurethane nanomicelles to induce immune response in breast cancer model , 2017, Artificial cells, nanomedicine, and biotechnology.
[64] S. Berretta. Extracellular matrix abnormalities in schizophrenia , 2012, Neuropharmacology.
[65] N. Nagaratnam,et al. Motor neurone disease , 1972, Journal of Neurology.
[66] J. Qin,et al. Engineering stem cell-derived 3D brain organoids in a perfusable organ-on-a-chip system , 2018, RSC advances.
[67] B. Boyan,et al. Microencapsulation of Stem Cells for Therapy. , 2017, Methods in molecular biology.
[68] Thomas Hartung,et al. Biological and medical applications of a brain-on-a-chip , 2014, Experimental biology and medicine.
[69] Hanry Yu,et al. Organs-on-chips: Filtration enabled by differentiation , 2017, Nature Biomedical Engineering.
[70] Janos Vörös,et al. “Brains on a chip”: Towards engineered neural networks , 2016 .
[71] G. Whitesides,et al. Soft Lithography. , 1998, Angewandte Chemie.
[72] Lucie A Low,et al. Organs-on-chips: Progress, challenges, and future directions , 2017, Experimental biology and medicine.
[73] Donald E Ingber,et al. Microengineered physiological biomimicry: organs-on-chips. , 2012, Lab on a chip.
[74] Alberto Rainer,et al. Microfluidic Organ/Body-on-a-Chip Devices at the Convergence of Biology and Microengineering , 2015, Sensors.
[75] Eric V Shusta,et al. Advances in microfluidic platforms for analyzing and regulating human pluripotent stem cells. , 2015, Current opinion in genetics & development.
[76] Yoonsuck Choe,et al. A microchip for quantitative analysis of CNS axon growth under localized biomolecular treatments , 2014, Journal of Neuroscience Methods.
[77] J. Sung,et al. Microtechnology-Based Multi-Organ Models , 2017, Bioengineering.
[78] M. Lutolf,et al. Hydrogel microfluidics for the patterning of pluripotent stem cells , 2014, Scientific Reports.
[79] M. Nedergaard,et al. The blood–brain barrier: an overview Structure, regulation, and clinical implications , 2004, Neurobiology of Disease.
[80] Mandy B. Esch,et al. Microfabricated mammalian organ systems and their integration into models of whole animals and humans. , 2013, Lab on a chip.
[81] Josep Samitier,et al. Tissue engineering by decellularization and 3D bioprinting , 2017 .
[82] M. Zagnoni,et al. A Microfluidic Platform for the Characterisation of CNS Active Compounds , 2017, Scientific Reports.
[83] Feng Xu,et al. Stem cell culture and differentiation in microfluidic devices toward organ-on-a-chip , 2017, Future science OA.
[84] Rana Arham Raashid,et al. Human Induced Pluripotent Stem Cells and the Modelling of Alzheimer’s Disease: The Human Brain Outside the Dish , 2017, The open neurology journal.
[85] Sonia Grego,et al. An optically transparent membrane supports shear stress studies in a three-dimensional microfluidic neurovascular unit model. , 2015, Biomicrofluidics.
[86] Richard Mayeux,et al. Genetic counseling and testing for Alzheimer disease: Joint practice guidelines of the American College of Medical Genetics and the National Society of Genetic Counselors , 2011, Genetics in Medicine.
[87] G. Whitesides. The origins and the future of microfluidics , 2006, Nature.
[88] Madeline A. Lancaster,et al. Cerebral organoids model human brain development and microcephaly , 2013, Nature.
[89] C. Link,et al. Expression of human beta-amyloid peptide in transgenic Caenorhabditis elegans. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[90] M. Ghert,et al. Lost in translation: animal models and clinical trials in cancer treatment. , 2014, American journal of translational research.
[91] G. Whitesides,et al. Soft lithography in biology and biochemistry. , 2001, Annual review of biomedical engineering.
[92] S. Jessberger. Stem Cell-Mediated Regeneration of the Adult Brain , 2016, Transfusion Medicine and Hemotherapy.
[93] Arash Rafii,et al. Halfway between 2D and Animal Models: Are 3D Cultures the Ideal Tool to Study Cancer-Microenvironment Interactions? , 2018, International journal of molecular sciences.
[94] S. Cuzzocrea,et al. Neuroinflammation and neurohormesis in the pathogenesis of Alzheimer’s disease and Alzheimer-linked pathologies: modulation by nutritional mushrooms , 2018, Immunity & Ageing.
[95] D. Barrow,et al. Microfluidic Encapsulation Supports Stem Cell Viability, Proliferation, and Neuronal Differentiation , 2017, Tissue engineering. Part C, Methods.
[96] Robert T Kennedy,et al. Microfluidic electrophoresis chip coupled to microdialysis for in vivo monitoring of amino acid neurotransmitters. , 2005, Analytical chemistry.
[97] Sara Reardon. Biodefence researchers seek 'Homo chippiens' , 2015, Nature.
[98] Monya Baker,et al. Tissue models: A living system on a chip , 2011, Nature.
[99] Jessie S Jeon,et al. Vasculature-On-A-Chip for In Vitro Disease Models , 2017, Bioengineering.
[100] Donald E. Ingber,et al. Mechanosensitive mechanisms in transcriptional regulation , 2012, Journal of Cell Science.
[101] Orlando S. Hoilett,et al. Metabolic consequences of inflammatory disruption of the blood-brain barrier in an organ-on-chip model of the human neurovascular unit , 2016, Journal of Neuroinflammation.
[102] Michael R Hamblin,et al. Nanotechnology in diagnosis and treatment of coronary artery disease. , 2016, Nanomedicine.
[103] M. Blurton-Jones,et al. Neural stem cell therapy for neurodegenerative disorders: The role of neurotrophic support , 2017, Neurochemistry International.
[104] Sarah Jäkel,et al. Glial Cells and Their Function in the Adult Brain: A Journey through the History of Their Ablation , 2017, Front. Cell. Neurosci..
[105] J. Alexander,et al. Organoids - Preclinical Models of Human Disease. , 2019, The New England journal of medicine.
[106] Yasuyuki S. Kida,et al. In Vitro Reconstruction of Neuronal Networks Derived from Human iPS Cells Using Microfabricated Devices , 2016, PloS one.
[107] Nhayoung Hong,et al. 3D bioprinting and its in vivo applications. , 2018, Journal of biomedical materials research. Part B, Applied biomaterials.
[108] Luke P. Lee,et al. Physiologically relevant organs on chips , 2014, Biotechnology journal.
[109] Milica Radisic,et al. Advances in organ-on-a-chip engineering , 2018, Nature Reviews Materials.
[110] H. Boutin,et al. Early changes in extracellular matrix in Alzheimer's disease , 2017, Neuropathology and applied neurobiology.
[111] Peter B. Jones,et al. Inflammation and immunity in schizophrenia: implications for pathophysiology and treatment. , 2015, The lancet. Psychiatry.
[112] C. Unger,et al. Modeling human carcinomas: physiologically relevant 3D models to improve anti-cancer drug development. , 2014, Advanced drug delivery reviews.
[113] Michael R Hamblin,et al. Plant protein-based hydrophobic fine and ultrafine carrier particles in drug delivery systems , 2018, Critical reviews in biotechnology.
[114] David A. Knowles,et al. Therapeutic reduction of ataxin 2 extends lifespan and reduces pathology in TDP-43 mice , 2017, Nature.
[115] S. Yamanaka,et al. An update on stem cell biology and engineering for brain development , 2017, Molecular Psychiatry.
[116] Hideo Sakata,et al. Neural mechanisms of three-dimensional vision , 2005, Neuroscience Research.
[117] Donald E Ingber,et al. Microfabrication of human organs-on-chips , 2013, Nature Protocols.
[118] A. Berg,et al. BBB ON CHIP: microfluidic platform to mechanically and biochemically modulate blood-brain barrier function , 2013, Biomedical microdevices.
[119] V. Bergink,et al. Autoimmunity, Inflammation, and Psychosis: A Search for Peripheral Markers , 2014, Biological Psychiatry.
[120] K. Lamperska,et al. 2D and 3D cell cultures – a comparison of different types of cancer cell cultures , 2016, Archives of medical science : AMS.
[121] 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.
[122] Mahdi Karimi,et al. Nanomedicine and advanced technologies for burns: Preventing infection and facilitating wound healing , 2017, Advanced drug delivery reviews.
[123] Hongjun Song,et al. Generation of human brain region–specific organoids using a miniaturized spinning bioreactor , 2018, Nature Protocols.
[124] G. Logroscino,et al. Current Issues in Randomized Clinical Trials of Neurodegenerative Disorders at Enrolment and Reporting: Diagnosis, Recruitment, Representativeness of Patients, Ethnicity, and Quality of Reporting. , 2016, Frontiers of neurology and neuroscience.
[125] Madeline A. Lancaster,et al. Stem Cell Models of Human Brain Development. , 2016, Cell stem cell.
[126] D. Kaufer,et al. Blood-brain barrier in health and disease. , 2015, Seminars in cell & developmental biology.
[127] S. Perrin. Preclinical research: Make mouse studies work , 2014, Nature.
[128] Ye Liu,et al. Microfluidic on-chip biomimicry for 3D cell culture: a fit-for-purpose investigation from the end user standpoint , 2017, Future science OA.
[129] Parinya Noisa,et al. Human Embryonic Stem Cells: A Model for the Study of Neural Development and Neurological Diseases , 2016, Stem cells international.
[130] Tai Hyun Park,et al. Microtechnology‐based organ systems and whole‐body models for drug screening , 2016, Biotechnology journal.
[131] G. Whitesides,et al. Soft lithography for micro- and nanoscale patterning , 2010, Nature Protocols.
[132] Didier Dréau,et al. 3D Miniaturization of Human Organs for Drug Discovery , 2018, Advanced healthcare materials.
[133] J.. Neurodegenerative Diseases , 1996, GWUMC Department of Biochemistry and Molecular Biology Annual Spring Symposia.
[134] C. Ryu,et al. Cancer stem cell surface markers on normal stem cells , 2017, BMB reports.
[135] Hans Clevers,et al. Disease Modeling in Stem Cell-Derived 3D Organoid Systems. , 2017, Trends in molecular medicine.
[136] Harley I. Kornblum,et al. Introduction to Neural Stem Cells , 2007, Stroke.
[137] Cassandra Willyard. The boom in mini stomachs, brains, breasts, kidneys and more , 2015, Nature.
[138] Li Wang,et al. Human brain organoid-on-a-chip to model prenatal nicotine exposure. , 2018, Lab on a chip.
[139] Jong Hwan Sung,et al. Organ‐on‐a‐Chip Technology for Reproducing Multiorgan Physiology , 2018, Advanced healthcare materials.
[140] O. Kopach,et al. Maturation of neural stem cells and integration into hippocampal circuits – a functional study in an in situ model of cerebral ischemia , 2018, Journal of Cell Science.
[141] Douglas J. Bakkum,et al. Revealing neuronal function through microelectrode array recordings , 2015, Front. Neurosci..
[142] Maria Antfolk,et al. In Vitro Blood-Brain Barrier Models-An Overview of Established Models and New Microfluidic Approaches. , 2015, Journal of pharmaceutical sciences.
[143] Michael R Hamblin,et al. Nanocaged platforms: modification, drug delivery and nanotoxicity. Opening synthetic cages to release the tiger. , 2017, Nanoscale.
[144] C. Álvarez,et al. Defining stem cell types: understanding the therapeutic potential of ESCs, ASCs, and iPS cells. , 2012, Journal of molecular endocrinology.
[145] T. Scheper,et al. Three dimensional spheroid cell culture for nanoparticle safety testing. , 2015, Journal of biotechnology.
[146] E. Cacci,et al. Neural stem cells in neuropsychiatric disorders , 2018, Current Opinion in Neurobiology.
[147] Qiyue Sun,et al. Microfluidic-Based 3D Engineered Microvascular Networks and Their Applications in Vascularized Microtumor Models , 2018, Micromachines.
[148] Zhongze Gu,et al. Organ-on-a-Chip Systems: Microengineering to Biomimic Living Systems. , 2016, Small.
[149] Ali Khademhosseini,et al. Multi-tissue interactions in an integrated three-tissue organ-on-a-chip platform , 2017, Scientific Reports.
[150] David Juncker,et al. Chamber and microfluidic probe for microperfusion of organotypic brain slices. , 2010, Lab on a chip.
[151] D. Huh,et al. Organs-on-chips at the frontiers of drug discovery , 2015, Nature Reviews Drug Discovery.
[152] Xuanhong Cheng,et al. Maintenance and Neuronal Cell Differentiation of Neural Stem Cells C17.2 Correlated to Medium Availability Sets Design Criteria in Microfluidic Systems , 2014, PloS one.
[153] Dmitry A Markov,et al. Neurovascular unit on a chip: implications for translational applications , 2013, Stem Cell Research & Therapy.
[154] Xianming Liu,et al. Organ-on-a-Chip: New Platform for Biological Analysis , 2015, Analytical chemistry insights.
[155] Shu-Na Wang,et al. Organoid technology for brain and therapeutics research , 2017, CNS neuroscience & therapeutics.
[156] A. Wynshaw-Boris,et al. Concise Review: Induced Pluripotent Stem Cell Models for Neuropsychiatric Diseases , 2017, Stem cells translational medicine.
[157] Yong Luo,et al. Safety of neural stem cell transplantation in patients with severe traumatic brain injury. , 2017, Experimental and therapeutic medicine.
[158] M. Shuler,et al. Microfluidic blood–brain barrier model provides in vivo‐like barrier properties for drug permeability screening , 2017, Biotechnology and bioengineering.
[159] K. Brennand,et al. Neural organoids for disease phenotyping, drug screening and developmental biology studies , 2017, Neurochemistry International.
[160] H. Inoue,et al. In Vitro Modeling of Blood-Brain Barrier with Human iPSC-Derived Endothelial Cells, Pericytes, Neurons, and Astrocytes via Notch Signaling , 2017, Stem cell reports.
[161] Donald E. Ingber,et al. Distinct Contributions of Astrocytes and Pericytes to Neuroinflammation Identified in a 3D Human Blood-Brain Barrier on a Chip , 2016, PloS one.