Curcumin-releasing mechanically adaptive intracortical implants improve the proximal neuronal density and blood-brain barrier stability.
暂无分享,去创建一个
Kelsey A. Potter | E. J. Foster | Mehdi Jorfi | J. Capadona | C. Weder | K. T. Householder | E. Foster | Kyle T. Householder | E. J. Foster | Kyle T. Householder
[1] E. M. Schmidt,et al. Long-term chronic recording from cortical neurons , 1976, Experimental Neurology.
[2] E. Döpp,et al. The heterogeneity of mononuclear phagocytes in lymphoid organs: distinct macrophage subpopulations in rat recognized by monoclonal antibodies ED1, ED2 and ED3. , 1985, Advances in experimental medicine and biology.
[3] R. J. Mullen,et al. NeuN, a neuronal specific nuclear protein in vertebrates. , 1992, Development.
[4] L. Lim,et al. Drug release from heat-treated polyvinyl alcohol films , 1992 .
[5] M. Eddleston,et al. Molecular profile of reactive astrocytes—Implications for their role in neurologic disease , 1993, Neuroscience.
[6] Véronique Favier,et al. Polymer Nanocomposites Reinforced by Cellulose Whiskers , 1995 .
[7] G. Kreutzberg. Microglia: a sensor for pathological events in the CNS , 1996, Trends in Neurosciences.
[8] Nikolaos A. Peppas,et al. Crystal dissolution-controlled release systems: I. Physical characteristics and modeling analysis , 1997 .
[9] Y. Fukuuchi,et al. Microglia-specific localisation of a novel calcium binding protein, Iba1. , 1998, Brain research. Molecular brain research.
[10] N. Peppas,et al. Modeling of drug release from swellable polymers. , 2000, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[11] S. Jee,et al. Phase I clinical trial of curcumin, a chemopreventive agent, in patients with high-risk or pre-malignant lesions. , 2001, Anticancer research.
[12] Michael Aschner,et al. Astrocyte Modulation of Neurotoxic Injury , 2002, Brain pathology.
[13] R. J. Vetter,et al. Silicon-substrate intracortical microelectrode arrays for long-term recording of neuronal spike activity in cerebral cortex , 2003, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[14] Jau-Song Yu,et al. Curcumin inhibits UV irradiation‐induced oxidative stress and apoptotic biochemical changes in human epidermoid carcinoma A431 cells , 2003, Journal of cellular biochemistry.
[15] B. Mukherjee,et al. Plant Medicines of Indian Origin for Wound Healing Activity: A Review , 2003, The international journal of lower extremity wounds.
[16] Miguel A. L. Nicolelis,et al. Brain–machine interfaces to restore motor function and probe neural circuits , 2003, Nature Reviews Neuroscience.
[17] Andrew B Schwartz,et al. Cortical neural prosthetics. , 2004, Annual review of neuroscience.
[18] G. Buzsáki. Large-scale recording of neuronal ensembles , 2004, Nature Neuroscience.
[19] D. Wei,et al. Antioxidant activity of a flavonoid-rich extract of Hypericum perforatum L. in vitro. , 2004, Journal of agricultural and food chemistry.
[20] Justin C. Williams,et al. Chronic neural recording using silicon-substrate microelectrode arrays implanted in cerebral cortex , 2004, IEEE Transactions on Biomedical Engineering.
[21] David C. Martin,et al. Neuronal cell loss accompanies the brain tissue response to chronically implanted silicon microelectrode arrays , 2005, Experimental Neurology.
[22] K. Tracey,et al. The cytokine activity of HMGB1 , 2005, Journal of leukocyte biology.
[23] J.P. Donoghue,et al. Reliability of signals from a chronically implanted, silicon-based electrode array in non-human primate primary motor cortex , 2005, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[24] Andrew B. Schwartz,et al. Brain-Controlled Interfaces: Movement Restoration with Neural Prosthetics , 2006, Neuron.
[25] E. Altinoz,et al. Neuroprotection by resveratrol against traumatic brain injury in rats , 2006, Molecular and Cellular Biochemistry.
[26] Daniel Normolle,et al. Dose escalation of a curcuminoid formulation , 2006, BMC complementary and alternative medicine.
[27] V. Menon,et al. Antioxidant and anti-inflammatory properties of curcumin. , 2007, Advances in experimental medicine and biology.
[28] Ravi V. Bellamkonda,et al. Extraction Force and Cortical Tissue Reaction of Silicon Microelectrode Arrays Implanted in the Rat Brain , 2007, IEEE Transactions on Biomedical Engineering.
[29] Daryl R Kipke,et al. Complex impedance spectroscopy for monitoring tissue responses to inserted neural implants , 2007, Journal of neural engineering.
[30] Patrick A Tresco,et al. The brain tissue response to implanted silicon microelectrode arrays is increased when the device is tethered to the skull. , 2007, Journal of biomedical materials research. Part A.
[31] J Miller,et al. Minocycline increases quality and longevity of chronic neural recordings , 2007, Journal of neural engineering.
[32] Lynn A. Capadona,et al. A versatile approach for the processing of polymer nanocomposites with self-assembled nanofibre templates. , 2007, Nature nanotechnology.
[33] R. Wm. A Molecular Perspective on Understanding and Modulating the Performance of Chronic Central Nervous System (CNS) Recording Electrodes -- Indwelling Neural Implants: Strategies for Contending with the In Vivo Environment , 2008 .
[34] J. O'Callaghan,et al. Defining "Neuroinflammation" Lessons from MPTP- and Methamphetamine-Induced Neurotoxicity , 2008 .
[35] J. Eckel,et al. Role of curcumin in health and disease , 2008 .
[36] D. Tyler,et al. Stimuli-Responsive Polymer Nanocomposites Inspired by the Sea Cucumber Dermis , 2008, Science.
[37] M. Ward,et al. Toward a comparison of microelectrodes for acute and chronic recordings , 2009, Brain Research.
[38] A. Levey,et al. Implanted neural electrodes cause chronic, local inflammation that is correlated with local neurodegeneration , 2009, Journal of neural engineering.
[39] M. Sofroniew. Molecular dissection of reactive astrogliosis and glial scar formation , 2009, Trends in Neurosciences.
[40] M. Tansey,et al. Molecular Neurodegeneration BioMed Central Review , 2009 .
[41] Florian Solzbacher,et al. A comparison of the tissue response to chronically implanted Parylene-C-coated and uncoated planar silicon microelectrode arrays in rat cortex. , 2010, Biomaterials.
[42] Patrick A Tresco,et al. Quantitative analysis of the tissue response to chronically implanted microwire electrodes in rat cortex. , 2010, Biomaterials.
[43] Stuart J. Rowan,et al. Biomimetic mechanically adaptive nanocomposites , 2010 .
[44] James P. Harris,et al. Mechanically adaptive intracortical implants improve the proximity of neuronal cell bodies , 2011, Journal of neural engineering.
[45] James P. Harris,et al. In vivo deployment of mechanically adaptive nanocomposites for intracortical microelectrodes , 2011, Journal of neural engineering.
[46] D. Jacobowitz,et al. Craniotomy: true sham for traumatic brain injury, or a sham of a sham? , 2011, Journal of neurotrauma.
[47] Carl F. Lagenaur,et al. The surface immobilization of the neural adhesion molecule L1 on neural probes and its effect on neuronal density and gliosis at the probe/tissue interface. , 2011, Biomaterials.
[48] Patrick A Tresco,et al. Reducing surface area while maintaining implant penetrating profile lowers the brain foreign body response to chronically implanted planar silicon microelectrode arrays. , 2011, Progress in brain research.
[49] Michael J. Black,et al. Neural control of cursor trajectory and click by a human with tetraplegia 1000 days after implant of an intracortical microelectrode array , 2011 .
[50] M. C. Rodriguez-Galan,et al. Toll-like receptors are key players in neurodegeneration. , 2011, International immunopharmacology.
[51] Kunzheng Wang,et al. Resveratrol improves neuron protection and functional recovery in rat model of spinal cord injury , 2011, Brain Research.
[52] Stuart J. Rowan,et al. Bioinspired Mechanically Adaptive Polymer Nanocomposites with Water-Activated Shape-Memory Effect , 2011 .
[53] P. Tresco,et al. The challenge of integrating devices into the central nervous system. , 2011, Critical reviews in biomedical engineering.
[54] Vikash Gilja,et al. Long-term Stability of Neural Prosthetic Control Signals from Silicon Cortical Arrays in Rhesus Macaque Motor Cortex , 2010 .
[55] Christoph Weder,et al. Development of a stimuli-responsive polymer nanocomposite toward biologically optimized, MEMS-based neural probes , 2011 .
[56] Jeffrey R. Capadona,et al. An organotypic spinal cord slice culture model to quantify neurodegeneration , 2012, Journal of Neuroscience Methods.
[57] Justin C. Sanchez,et al. Comprehensive characterization and failure modes of tungsten microwire arrays in chronic neural implants , 2012, Journal of neural engineering.
[58] Stuart J. Rowan,et al. Mechanically adaptive nanocomposites for neural interfacing , 2012 .
[59] Jeffrey R. Capadona,et al. Reduction of autofluorescence at the microelectrode–cortical tissue interface improves antibody detection , 2012, Journal of Neuroscience Methods.
[60] Robert L. Rennaker,et al. Fabrication of Responsive, Softening Neural Interfaces , 2012 .
[61] Shun-cai Zhang,et al. Protective effects of curcumin against hepatic fibrosis induced by carbon tetrachloride: modulation of high-mobility group box 1, Toll-like receptor 4 and 2 expression. , 2012, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[62] Kelsey A. Potter,et al. Stab injury and device implantation within the brain results in inversely multiphasic neuroinflammatory and neurodegenerative responses , 2012, Journal of neural engineering.
[63] K. Shanmuganathan,et al. pH-Responsive Cellulose Nanocrystal Gels and Nanocomposites. , 2012, ACS macro letters.
[64] A. Barbul,et al. Role of high mobility group box 1 (HMGB1) in wound healing. , 2012, The Journal of surgical research.
[65] David L Kaplan,et al. Biomaterials for the development of peripheral nerve guidance conduits. , 2012, Tissue engineering. Part B, Reviews.
[66] Garrett B Stanley,et al. The impact of chronic blood-brain barrier breach on intracortical electrode function. , 2013, Biomaterials.
[67] David L. Kaplan,et al. Silk as a Multifunctional Biomaterial Substrate for Reduced Glial Scarring around Brain‐Penetrating Electrodes , 2013 .
[68] Robert L. Rennaker,et al. Smart Polymers for Neural Interfaces , 2013 .
[69] Jeffrey R Capadona,et al. Environmentally-controlled microtensile testing of mechanically-adaptive polymer nanocomposites for ex vivo characterization. , 2013, Journal of visualized experiments : JoVE.
[70] J. Donoghue,et al. Failure mode analysis of silicon-based intracortical microelectrode arrays in non-human primates , 2013, Journal of neural engineering.
[71] L. Carin,et al. Relationship between intracortical electrode design and chronic recording function. , 2013, Biomaterials.
[72] Jeffrey R Capadona,et al. Bioinspired water-enhanced mechanical gradient nanocomposite films that mimic the architecture and properties of the squid beak. , 2013, Journal of the American Chemical Society.
[73] Walter Voit,et al. Thiol-click chemistries for responsive neural interfaces. , 2013, Macromolecular bioscience.
[74] Jeffrey R Capadona,et al. The effect of resveratrol on neurodegeneration and blood brain barrier stability surrounding intracortical microelectrodes. , 2013, Biomaterials.
[75] Christoph Weder,et al. Physiologically responsive, mechanically adaptive bio-nanocomposites for biomedical applications. , 2013, ACS applied materials & interfaces.
[76] Andrés J. García,et al. Host response to microgel coatings on neural electrodes implanted in the brain. , 2014, Journal of biomedical materials research. Part A.