Electrically conductive nanofibers with highly oriented structures and their potential application in skeletal muscle tissue engineering.
暂无分享,去创建一个
[1] Chun-Hua Yan,et al. Bioimaging and toxicity assessments of near-infrared upconversion luminescent NaYF4:Yb,Tm nanocrystals. , 2011, Biomaterials.
[2] Gavriil Tsechpenakis,et al. bFGF-containing electrospun gelatin scaffolds with controlled nano-architectural features for directed angiogenesis. , 2012, Acta biomaterialia.
[3] Rashid Bashir,et al. Patterning the differentiation of C2C12 skeletal myoblasts. , 2011, Integrative biology : quantitative biosciences from nano to macro.
[4] Christine E. Schmidt,et al. Conducting polymers in biomedical engineering , 2007 .
[5] Jennifer M. Singelyn,et al. Naturally derived myocardial matrix as an injectable scaffold for cardiac tissue engineering. , 2009, Biomaterials.
[6] L. Kaufman,et al. Flow and magnetic field induced collagen alignment. , 2007, Biomaterials.
[7] Heungsoo Shin,et al. The stimulation of myoblast differentiation by electrically conductive sub-micron fibers. , 2009, Biomaterials.
[8] S. I. Kim,et al. Effect of ionic salts on the processing of poly(2‐acrylamido‐2‐methyl‐1‐propane sulfonic acid) nanofibers , 2005 .
[9] T. Carrel,et al. Fine-tuning of substrate architecture and surface chemistry promotes muscle tissue development. , 2012, Acta biomaterialia.
[10] Lei Jiang,et al. Stable, Superhydrophobic, and Conductive Polyaniline/Polystyrene Films for Corrosive Environments , 2006 .
[11] Yen Wei,et al. Electrospinning polyaniline-contained gelatin nanofibers for tissue engineering applications. , 2006, Biomaterials.
[12] Meifang Zhu,et al. Experimental study on relationship between jet instability and formation of beaded fibers during electrospinning , 2005 .
[13] M. Kotaki,et al. Aligned biodegradable nanofibrous structure: a potential scaffold for blood vessel engineering. , 2004, Biomaterials.
[14] Aijun Wang,et al. In vitro regulation of neural differentiation and axon growth by growth factors and bioactive nanofibers. , 2010, Tissue engineering. Part A.
[15] Sook Hee Ku,et al. Human endothelial cell growth on mussel-inspired nanofiber scaffold for vascular tissue engineering. , 2010, Biomaterials.
[16] Paolo A Netti,et al. A multi-functional scaffold for tissue regeneration: the need to engineer a tissue analogue. , 2007, Biomaterials.
[17] Wan-Ju Li,et al. Electrospun Nanofibrous Scaffolds: Production, Characterization, and Applications for Tissue Engineering and Drug Delivery , 2005 .
[18] Shaobing Zhou,et al. Osteoblast function on electrically conductive electrospun PLA/MWCNTs nanofibers. , 2011, Biomaterials.
[19] Jie Han,et al. Novel Approach to Controllable Synthesis of Gold Nanoparticles Supported on Polyaniline Nanofibers , 2010 .
[20] M. Gizdavic-Nikolaidis,et al. Electrospun functionalized polyaniline copolymer-based nanofibers with potential application in tissue engineering. , 2010, Macromolecular bioscience.
[21] Zhanhu Guo,et al. Electrospun polyacrylonitrile nanocomposite fibers reinforced with Fe3O4 nanoparticles: Fabrication and property analysis , 2009 .
[22] Younan Xia,et al. Magnetic‐Field‐Assisted Electrospinning of Aligned Straight and Wavy Polymeric Nanofibers , 2010, Advanced materials.
[23] Tae Jin Kang,et al. Preparation of conducting nylon-6 electrospun fiber webs by the in situ polymerization of polyaniline , 2005 .
[24] Chun-Wen Hsiao,et al. Magnetically directed self-assembly of electrospun superparamagnetic fibrous bundles to form three-dimensional tissues with a highly ordered architecture. , 2011, Tissue engineering. Part C, Methods.
[25] Hongfeng Gao,et al. Bioactive nanofibers: synergistic effects of nanotopography and chemical signaling on cell guidance. , 2007, Nano letters.
[26] Li Yao,et al. Effect of functionalized micropatterned PLGA on guided neurite growth. , 2009, Acta biomaterialia.
[27] Kazunori Shimizu,et al. Alignment of skeletal muscle myoblasts and myotubes using linear micropatterned surfaces ground with abrasives , 2009, Biotechnology and bioengineering.
[28] Zi Yin,et al. The regulation of tendon stem cell differentiation by the alignment of nanofibers. , 2010, Biomaterials.
[29] W. Lai,et al. Enhanced electrical conductivity of nylon 6 composite using polyaniline-coated multi-walled carbon nanotubes as additives , 2011 .
[30] N. Bursac,et al. Effect of Electromechanical Stimulation on the Maturation of Myotubes on Aligned Electrospun Fibers , 2008, Cellular and molecular bioengineering.
[31] Nobuyuki Magome,et al. Electrospun nanofibers as a tool for architecture control in engineered cardiac tissue. , 2011, Biomaterials.
[32] R E Horch,et al. Skeletal muscle tissue engineering , 2004, Journal of cellular and molecular medicine.
[33] R Langer,et al. Stimulation of neurite outgrowth using an electrically conducting polymer. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[34] Yen Chang,et al. A nanoscale drug-entrapment strategy for hydrogel-based systems for the delivery of poorly soluble drugs. , 2009, Biomaterials.
[35] Yen Wei,et al. Polyaniline, an electroactive polymer, supports adhesion and proliferation of cardiac myoblasts , 2006, Journal of biomaterials science. Polymer edition.
[36] K. Leong,et al. The design of scaffolds for use in tissue engineering. Part I. Traditional factors. , 2001, Tissue engineering.
[37] V. Guarino,et al. Influence of gelatin cues in PCL electrospun membranes on nerve outgrowth. , 2010, Biomacromolecules.
[38] Kam W Leong,et al. The effect of the alignment of electrospun fibrous scaffolds on Schwann cell maturation. , 2008, Biomaterials.
[39] Thomas J Webster,et al. Electrically active nanomaterials as improved neural tissue regeneration scaffolds. , 2010, Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology.
[40] K. Cheung,et al. Neural Repair , 2011 .
[41] Xingyu Jiang,et al. Fabrication of Aligned Fibrous Arrays by Magnetic Electrospinning , 2007 .
[42] Gerald J. Meyer,et al. Magnetic Alignment of Fluorescent Nanowires , 2001 .
[43] Ioannis S. Chronakis,et al. Conductive polypyrrole nanofibers via electrospinning: Electrical and morphological properties , 2006 .
[44] Randall J. Lee,et al. Engineering of aligned skeletal muscle by micropatterning. , 2010, American journal of translational research.
[45] D.T. Westwick,et al. On the Identification of Hammerstein Systems with Time-Varying Parameters , 2007, 2007 29th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[46] C. Schmidt,et al. Synthesis of a Novel, Biodegradable Electrically Conducting Polymer for Biomedical Applications , 2002 .
[47] J. Benoit,et al. Novel composite core-shell nanoparticles as busulfan carriers. , 2006, Journal of controlled release : official journal of the Controlled Release Society.
[48] Heungsoo Shin,et al. Development of electroactive and elastic nanofibers that contain polyaniline and poly(L-lactide-co-epsilon-caprolactone) for the control of cell adhesion. , 2008, Macromolecular bioscience.
[49] En-Tang Kang,et al. In-vivo tissue response to polyaniline , 1999 .
[50] L. Stanton,et al. Nanofiber topography and sustained biochemical signaling enhance human mesenchymal stem cell neural commitment. , 2012, Acta biomaterialia.
[51] Younan Xia,et al. Electrospinning of Nanofibers: Reinventing the Wheel? , 2004 .
[52] Miqin Zhang,et al. Aligned chitosan-based nanofibers for enhanced myogenesis , 2010 .
[53] David L Kaplan,et al. Smart biomaterials - regulating cell behavior through signaling molecules , 2010, BMC Biology.
[54] Tabatabaei Qomi,et al. The Design of Scaffolds for Use in Tissue Engineering , 2014 .
[55] George J Christ,et al. The influence of electrospun aligned poly(epsilon-caprolactone)/collagen nanofiber meshes on the formation of self-aligned skeletal muscle myotubes. , 2008, Biomaterials.