Processing and surface modification of polymer nanofibers for biological scaffolds: a review.
暂无分享,去创建一个
LaShanda T. J. Korley | L. Korley | Alex M. Jordan | Vidya Viswanath | Si-Eun Kim | J. Pokorski | Vidya Viswanath | Si Eun Kim | Jonathan K. Pokorski
[1] J. Xie,et al. Engineering aligned electrospun PLLA microfibers with nano-porous surface nanotopography for modulating the responses of vascular smooth muscle cells. , 2015, Journal of materials chemistry. B.
[2] J. Planell,et al. Electrospun gelatin/poly(ε-caprolactone) fibrous scaffold modified with calcium phosphate for bone tissue engineering. , 2014, Materials science & engineering. C, Materials for biological applications.
[3] S. Ramakrishna,et al. Biocompatible nanofiber matrices for the engineering of a dermal substitute for skin regeneration. , 2005, Tissue engineering.
[4] Thomas Launey,et al. Synergistic regulation of cerebellar Purkinje neuron development by laminin epitopes and collagen on an artificial hybrid matrix construct. , 2014, Biomaterials science.
[5] S. Torres‐Giner,et al. A review on electrospun polymer nanostructures as advanced bioactive platforms , 2016 .
[6] T. Maekawa,et al. POLYMERIC SCAFFOLDS IN TISSUE ENGINEERING APPLICATION: A REVIEW , 2011 .
[7] Naveen Nagiah,et al. Highly Compliant Vascular Grafts with Gelatin-Sheathed Coaxially Structured Nanofibers. , 2015, Langmuir : the ACS journal of surfaces and colloids.
[8] J. Lannutti,et al. Modulation of embryonic mesenchymal progenitor cell differentiation via control over pure mechanical modulus in electrospun nanofibers. , 2011, Acta biomaterialia.
[9] Holly M. Golecki,et al. Effect of solvent evaporation on fiber morphology in rotary jet spinning. , 2014, Langmuir : the ACS journal of surfaces and colloids.
[10] Michael Kjaer,et al. Basic components of connective tissues and extracellular matrix: elastin, fibrillin, fibulins, fibrinogen, fibronectin, laminin, tenascins and thrombospondins. , 2014, Advances in experimental medicine and biology.
[11] Q. Ke,et al. Experimental investigation of adhesive meltblown web production using accessory air , 2006 .
[12] L. Sancey,et al. Application of click-click chemistry to the synthesis of new multivalent RGD conjugates. , 2010, Organic & biomolecular chemistry.
[13] Si-Eun Kim,et al. Multifunctional and Spatially Controlled Bioconjugation to Melt Coextruded Nanofibers. , 2015, Polymer chemistry.
[14] S. Fort,et al. Electrospun azido-PCL nanofibers for enhanced surface functionalization by click chemistry. , 2012, ACS applied materials & interfaces.
[15] Seeram Ramakrishna,et al. Electrospun biocomposite nanofibrous scaffolds for neural tissue engineering. , 2008, Tissue engineering. Part A.
[16] C. Migliaresi,et al. Biomolecule gradient in micropatterned nanofibrous scaffold for spatiotemporal release. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[17] Satish Kumar,et al. Influence of Laval nozzles on the air flow field in melt blowing apparatus , 2012 .
[18] Won-Gun Koh,et al. Fabrication of Nanofiber Microarchitectures Localized within Hydrogel Microparticles and Their Application to Protein Delivery and Cell Encapsulation , 2013 .
[19] H. Fischer,et al. Scaffolds for bone healing: concepts, materials and evidence. , 2011, Injury.
[20] Faye Y. Hern,et al. ‘One-pot’ sequential deprotection/functionalisation of linear-dendritic hybrid polymers using a xanthate mediated thiol/Michael addition , 2015 .
[21] Kai Wang,et al. Highly Fluorescent and Photostable Polymeric Nanofibers as Scaffolds for Cell Interfacing and Long‐Term Tracking , 2016, Advanced healthcare materials.
[22] G. Genin,et al. The mechanics of PLGA nanofiber scaffolds with biomimetic gradients in mineral for tendon-to-bone repair. , 2014, Journal of the mechanical behavior of biomedical materials.
[23] Jeroen Rouwkema,et al. Vascularization in tissue engineering. , 2008, Trends in biotechnology.
[24] Kazuki Fukushima,et al. Design of biocompatible and biodegradable polymers based on intermediate water concept , 2015 .
[25] L. Larrondo,et al. Electrostatic fiber spinning from polymer melts. I. Experimental observations on fiber formation and properties , 1981 .
[26] M. Textor,et al. Regulation of human mesenchymal stem cell osteogenesis by specific surface density of fibronectin: a gradient study. , 2015, ACS applied materials & interfaces.
[27] I. Kwon,et al. Electrospun gelatin/polyurethane blended nanofibers for wound healing , 2009, Biomedical materials.
[28] Q. Shi,et al. Novel atmospheric plasma enhanced chitosan nanofiber/gauze composite wound dressings , 2013 .
[29] L. Ghasemi‐Mobarakeh,et al. Electrospun poly(epsilon-caprolactone)/gelatin nanofibrous scaffolds for nerve tissue engineering. , 2008, Biomaterials.
[30] D. Kaplan,et al. Porosity of 3D biomaterial scaffolds and osteogenesis. , 2005, Biomaterials.
[31] B. Hsiao,et al. Development of a nanostructured DNA delivery scaffold via electrospinning of PLGA and PLA-PEG block copolymers. , 2003, Journal of controlled release : official journal of the Controlled Release Society.
[32] Claudio Migliaresi,et al. Biodegradable fibres of poly(L-lactic acid) produced by melt spinning , 1997 .
[33] D. Reneker,et al. Nanofibers from Scalable Gas Jet Process. , 2012, ACS macro letters.
[34] Liqun Zhang,et al. Electrospun microfiber membranes embedded with drug-loaded clay nanotubes for sustained antimicrobial protection. , 2015, ACS nano.
[35] A. Hiltner,et al. Gradient Multilayer Films by Forced Assembly Coextrusion , 2010 .
[36] E. Baer,et al. Structural evolution during mechanical deformation in high-barrier PVDF-TFE/PET multilayer films using in situ X-ray techniques. , 2014, ACS applied materials & interfaces.
[37] Andreas Greiner,et al. Functional materials by electrospinning of polymers , 2013 .
[38] Sergey Rodin,et al. Physical, Spatial, and Molecular Aspects of Extracellular Matrix of In Vivo Niches and Artificial Scaffolds Relevant to Stem Cells Research , 2015, Stem cells international.
[39] Farshid Guilak,et al. A biomimetic three-dimensional woven composite scaffold for functional tissue engineering of cartilage. , 2007, Nature materials.
[40] Gareth R. Williams,et al. Electrospun nanofibers in drug delivery: recent developments and perspectives. , 2012, Therapeutic delivery.
[41] D J Mooney,et al. Scaffolds for engineering smooth muscle under cyclic mechanical strain conditions. , 2000, Journal of biomechanical engineering.
[42] Xinhua Zong,et al. Control of structure, morphology and property in electrospun poly(glycolide-co-lactide) non-woven membranes via post-draw treatments , 2003 .
[43] Y. Wang,et al. Cell locomotion and focal adhesions are regulated by substrate flexibility. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[44] U. Krishnan,et al. The Integration of Nanotechnology and Biology for Cell Engineering: Promises and Challenges , 2013 .
[45] A. Yarin. Coaxial electrospinning and emulsion electrospinning of core–shell fibers , 2011 .
[46] P. Messersmith,et al. Decoration of electrospun nanofibers with monomeric catechols to facilitate cell adhesion. , 2014, Macromolecular bioscience.
[47] M. Becker,et al. "Click" reactions: a versatile toolbox for the synthesis of peptide-conjugates. , 2014, Chemical Society reviews.
[48] Elliot P. Douglas,et al. Bone structure and formation: A new perspective , 2007 .
[49] Lin Mei,et al. The effect of autophagy inhibitors on drug delivery using biodegradable polymer nanoparticles in cancer treatment. , 2014, Biomaterials.
[50] E. Marin,et al. Critical evaluation of biodegradable polymers used in nanodrugs , 2013, International journal of nanomedicine.
[51] Wolfgang M. Sigmund,et al. Poly(acrylic acid) nanofibers by electrospinning , 2005 .
[52] G. Stevens,et al. A blank slate? Layer-by-layer deposition of hyaluronic acid and chitosan onto various surfaces. , 2006, Biomacromolecules.
[53] N. Kotov,et al. Three-dimensional cell culture matrices: state of the art. , 2008, Tissue engineering. Part B, Reviews.
[54] Yuelong Wang,et al. Novel nanoscale topography on poly(propylene carbonate)/poly(ε-caprolactone) electrospun nanofibers modifies osteogenic capacity of ADCs , 2015 .
[55] Younan Xia,et al. Nanofiber Scaffolds with Gradients in Mineral Content for Spatial Control of Osteogenesis , 2014, ACS applied materials & interfaces.
[56] Amy J Wagoner Johnson,et al. The mechanical properties and osteoconductivity of hydroxyapatite bone scaffolds with multi-scale porosity. , 2007, Biomaterials.
[57] A. Fuentes,et al. Experimental study of nanofiber production through forcespinning , 2013 .
[58] E. Baer,et al. Interphase/interface modification on the dielectric properties of polycarbonate/poly(vinylidene fluoride‐co‐hexafluoropropylene) multilayer films for high‐energy density capacitors , 2013 .
[59] Younan Xia,et al. Putting Electrospun Nanofibers to Work for Biomedical Research. , 2008, Macromolecular rapid communications.
[60] N. Bölgen,et al. In vitro and in vivo degradation of non-woven materials made of poly(ε-caprolactone) nanofibers prepared by electrospinning under different conditions , 2005, Journal of biomaterials science. Polymer edition.
[61] A. Subramanian,et al. Axially aligned electrically conducting biodegradable nanofibers for neural regeneration , 2012, Journal of Materials Science: Materials in Medicine.
[62] P. K. Sehgal,et al. Type I Collagen Immobilized Poly(caprolactone) Nanofibers: Characterization of Surface Modification and Growth of Fibroblasts , 2012 .
[63] Ramanathan Nagarajan,et al. Role of single-walled carbon nanotubes on ester hydrolysis and topography of electrospun bovine serum albumin/poly(vinyl alcohol) membranes. , 2014, ACS applied materials & interfaces.
[64] David F. Williams. On the mechanisms of biocompatibility. , 2008, Biomaterials.
[65] Samuel I. Stupp,et al. 25th Anniversary Article: Supramolecular Materials for Regenerative Medicine , 2014, Advanced materials.
[66] T. Nguyen,et al. Characteristics of curcumin-loaded poly (lactic acid) nanofibers for wound healing , 2013, Journal of Materials Science.
[67] Michel Vert,et al. Aliphatic polyesters: great degradable polymers that cannot do everything. , 2005, Biomacromolecules.
[68] Jian Yu,et al. Femtosecond laser ablation enhances cell infiltration into three-dimensional electrospun scaffolds. , 2012, Acta biomaterialia.
[69] Si-Eun Kim,et al. Coextruded, aligned, and gradient-modified poly(ε-caprolactone) fibers as platforms for neural growth. , 2015, Biomacromolecules.
[70] C. Highley,et al. Ordered, adherent layers of nanofibers enabled by supramolecular interactions. , 2014, Journal of materials chemistry. B.
[71] Jianwu Dai,et al. Enhanced proliferation and osteogenic differentiation of mesenchymal stem cells on graphene oxide-incorporated electrospun poly(lactic-co-glycolic acid) nanofibrous mats. , 2015, ACS applied materials & interfaces.
[72] Andrzej Wasiak,et al. Dynamic modelling of melt spinning , 1998 .
[73] J. Keum,et al. Confinement of elastomeric block copolymers via forced assembly coextrusion. , 2011, ACS applied materials & interfaces.
[74] Nestor A. Santos,et al. Production and characterization of hybrid BEH-PPV/PEO conjugated polymer nanofibers by forcespinning™ , 2012 .
[75] T. B. Green,et al. The thermal effects on electrospinning of polylactic acid melts , 2006 .
[76] Jun-Jian Liu,et al. Peripheral nerve regeneration using composite poly(lactic acid-caprolactone)/nerve growth factor conduits prepared by coaxial electrospinning. , 2011, Journal of biomedical materials research. Part A.
[77] M. Finn,et al. Click Chemistry: Diverse Chemical Function from a Few Good Reactions. , 2001 .
[78] F. Ko,et al. Emulsion electrospinning of a collagen-like protein/PLGA fibrous scaffold: empirical modeling and preliminary release assessment of encapsulated protein. , 2011, Macromolecular bioscience.
[79] Nathan J. Castro,et al. Recent Progress in Interfacial Tissue Engineering Approaches for Osteochondral Defects , 2012, Annals of Biomedical Engineering.
[80] A. Khademhosseini,et al. Gradients of physical and biochemical cues on polyelectrolyte multilayer films generated via microfluidics. , 2013, Lab on a chip.
[81] Moritz Buhl,et al. Immobilization of enzymes via microcontact printing and thiol-ene click chemistry. , 2015, Bioconjugate chemistry.
[82] Xinhou Wang,et al. Numerical Study on the Solution Blowing Annular Jet and Its Correlation with Fiber Morphology , 2014 .
[83] Satish Kumar,et al. Modeling the melt blowing of viscoelastic materials , 2011 .
[84] Luiz H. C. Mattoso,et al. Solution blow spinning: A new method to produce micro- and nanofibers from polymer solutions , 2009 .
[85] V. Salles,et al. Surface Entrapment of Fibronectin on Electrospun PLGA Scaffolds for Periodontal Tissue Engineering , 2014, BioResearch open access.
[86] D. Reneker,et al. Role of Liquid Jet Stretching and Bending Instability in Nanofiber Formation by Gas Jet Method , 2013 .
[87] Eyal Zussman,et al. Experimental investigation of the governing parameters in the electrospinning of polymer solutions , 2004 .
[88] L. Korley,et al. Thin film confinement of a spherical block copolymer via forced assembly co-extrusion , 2013 .
[89] R. Bitton,et al. Electrostatic control of bioactivity. , 2011, Angewandte Chemie.
[90] M. Joupari,et al. The study of P19 stem cell behavior on aligned oriented electrospun poly(lactic‐co‐glycolic acid) nano‐fibers for neural tissue engineering , 2014 .
[91] L. Korley,et al. Toward a Tunable Fibrous Scaffold: Structural Development during Uniaxial Drawing of Coextruded Poly(ε-caprolactone) Fibers , 2015 .
[92] M. Dembo,et al. Cell movement is guided by the rigidity of the substrate. , 2000, Biophysical journal.
[93] Dietmar W Hutmacher,et al. Melt electrospinning of poly(ε-caprolactone) scaffolds: phenomenological observations associated with collection and direct writing. , 2014, Materials science & engineering. C, Materials for biological applications.
[94] A K Capulli,et al. Fibrous scaffolds for building hearts and heart parts. , 2016, Advanced drug delivery reviews.
[95] D. Reneker,et al. Directed differentiation and neurite extension of mouse embryonic stem cell on aligned poly(lactide) nanofibers functionalized with YIGSR peptide. , 2013, Biomaterials.
[96] Flemming Besenbacher,et al. Electrospun PCL/PEO coaxial fibers for basic fibroblast growth factor delivery. , 2014, Journal of materials chemistry. B.
[97] Changyou Gao,et al. Aminolysis-based surface modification of polyesters for biomedical applications , 2013 .
[98] R. Cselkó,et al. Alternating current electrospinning for preparation of fibrous drug delivery systems. , 2015, International journal of pharmaceutics.
[99] Shiyou Xu,et al. Fabrication and piezoelectric property of PMN-PT nanofibers , 2012 .
[100] Han-Seong Kim,et al. Thickness-controllable electrospun fibers promote tubular structure formation by endothelial progenitor cells , 2015, International journal of nanomedicine.
[101] Yong Lak Joo,et al. Modeling of melt electrospinning for semi-crystalline polymers , 2010 .
[102] Sung Ju Cho,et al. Preparation of hydrophilic PCL nanofiber scaffolds via electrospinning of PCL/PVP-b-PCL block copolymers for enhanced cell biocompatibility , 2015 .
[103] P. Janmey,et al. Tissue Cells Feel and Respond to the Stiffness of Their Substrate , 2005, Science.
[104] Yabin Zhu,et al. Promoting epithelium regeneration for esophageal tissue engineering through basement membrane reconstitution. , 2014, ACS applied materials & interfaces.
[105] Y. Lvov,et al. Introduction to nanocoatings produced by layer-by-layer (LbL) self-assembly. , 2011, Advanced drug delivery reviews.
[106] B. Feringa,et al. Azobenzene photoswitches for Staudinger-Bertozzi ligation. , 2013, Angewandte Chemie.
[107] R. L. Shambaugh,et al. Melt blowing: General equation development and experimental verification , 1990 .
[108] L. Larrondo,et al. Electrostatic fiber spinning from polymer melts. III. Electrostatic deformation of a pendant drop of polymer melt , 1981 .
[109] Hongliang Jiang,et al. Coaxial electrospinning for encapsulation and controlled release of fragile water-soluble bioactive agents. , 2014, Journal of controlled release : official journal of the Controlled Release Society.
[110] L. Korley,et al. Toward anisotropic materials via forced assembly coextrusion. , 2012, ACS applied materials & interfaces.
[111] Cato T. Laurencin,et al. Electrospun poly(lactic acid-co-glycolic acid) scaffolds for skin tissue engineering. , 2008, Biomaterials.
[112] O. Assis,et al. Development of poly(lactic acid) nanostructured membranes for the controlled delivery of progesterone to livestock animals. , 2013, Materials science & engineering. C, Materials for biological applications.
[113] R. Gorga,et al. Effect of Solution Parameters on Spontaneous Jet Formation and Throughput in Edge Electrospinning from a Fluid-Filled Bowl , 2012 .
[114] L. Mattoso,et al. Properties of poly(lactic acid) and poly(ethylene oxide) solvent polymer mixtures and nanofibers made by solution blow spinning , 2013 .
[115] V. Zucolotto,et al. Poly(lactic acid)/Carbon Nanotube Fibers as Novel Platforms for Glucose Biosensors , 2012, Biosensors.
[116] Jinlian Hu,et al. Study of multi-functional electrospun composite nanofibrous mats for smart wound healing. , 2015, International journal of biological macromolecules.
[117] Kevin Kit Parker,et al. Nanofiber assembly by rotary jet-spinning. , 2010, Nano letters.
[118] Van A. Wente,et al. Superfine Thermoplastic Fibers , 1956 .
[119] E. Chiellini,et al. Development of diclofenac sodium releasing bio-erodible polymeric nanomats. , 2006, Journal of nanoscience and nanotechnology.
[120] Kam W Leong,et al. The effect of the alignment of electrospun fibrous scaffolds on Schwann cell maturation. , 2008, Biomaterials.
[121] Jong-sang Kim,et al. Thermal Properties of Electrospun Polyesters , 2000 .
[122] L. Applegate,et al. Bone regeneration and stem cells , 2011, Journal of cellular and molecular medicine.
[123] Michele Bianchi,et al. Neural cell alignment by patterning gradients of the extracellular matrix protein laminin , 2014, Interface Focus.
[124] Mikaël M. Martino,et al. Extracellular Matrix-Inspired Growth Factor Delivery Systems for Skin Wound Healing. , 2015, Advances in wound care.
[125] Xiaoyan Yuan,et al. Study on morphology of electrospun poly(vinyl alcohol) mats , 2005 .
[126] L. Korley,et al. Reducing Environmental Impact: Solvent and PEO Reclamation During Production of Melt-Extruded PCL Nanofibers , 2015 .
[127] Min Soo Bae,et al. Burn-wound healing effect of gelatin/polyurethane nanofiber scaffold containing silver-sulfadiazine. , 2013, Journal of biomedical nanotechnology.
[128] Chen Zhou,et al. Surface-Chemistry Effect on Cellular Response of Luminescent Plasmonic Silver Nanoparticles , 2014, Bioconjugate chemistry.
[129] Xuesi Chen,et al. Co-electrospun poly(lactide-co-glycolide), gelatin, and elastin blends for tissue engineering scaffolds. , 2006, Journal of biomedical materials research. Part A.
[130] J. Rabolt,et al. Preparation of Multilayer Biodegradable Nanofibers by Triaxial Electrospinning. , 2013, ACS macro letters.
[131] D. Reneker,et al. Post-Electrospinning "Triclick" Functionalization of Degradable Polymer Nanofibers. , 2015, ACS macro letters.
[132] Martin Möller,et al. Electrospinning of polymer melts: Phenomenological observations , 2007 .
[133] R. C. Johnson,et al. Neovascularization of synthetic membranes directed by membrane microarchitecture. , 1995, Journal of biomedical materials research.
[134] Seeram Ramakrishna,et al. Preparation of Core−Shell Structured PCL-r-Gelatin Bi-Component Nanofibers by Coaxial Electrospinning , 2004 .
[135] Seung Goo Lee,et al. Formation of interfiber bonding in electrospun poly(etherimide) nanofiber web , 2004 .
[136] S. Fort,et al. Carbohydrate-decorated PCL fibers for specific protein adhesion. , 2013, Biomacromolecules.
[137] A. Subramanian,et al. Fabrication, Characterization and In Vitro Evaluation of Aligned PLGA–PCL Nanofibers for Neural Regeneration , 2012, Annals of Biomedical Engineering.
[138] Ali Khademhosseini,et al. Tough and flexible CNT-polymeric hybrid scaffolds for engineering cardiac constructs. , 2014, Biomaterials.
[139] Dario Pisignano,et al. Industrial Upscaling of Electrospinning and Applications of Polymer Nanofibers: A Review , 2013 .
[140] D. Reneker,et al. Enhanced Schwann cell attachment and alignment using one-pot "dual click" GRGDS and YIGSR derivatized nanofibers. , 2014, Biomacromolecules.
[141] Maurizio Ventre,et al. Engineering Cell Instructive Materials To Control Cell Fate and Functions through Material Cues and Surface Patterning. , 2016, ACS applied materials & interfaces.
[142] Xiabin Jing,et al. The release behavior of doxorubicin hydrochloride from medicated fibers prepared by emulsion-electrospinning. , 2008, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[143] M. Kotaki,et al. A review on polymer nanofibers by electrospinning and their applications in nanocomposites , 2003 .
[144] R. Vogel,et al. Biodegradable fibers of poly(L-lactide) produced by high-speed melt spinning and spin drawing † , 1999 .
[145] R. Gorga,et al. Thermal Annealing of Polymer Nanocomposites via Photothermal Heating: Effects on Crystallinity and Spherulite Morphology , 2013 .
[146] F. Besenbacher,et al. Ultraporous nanofeatured PCL-PEO microfibrous scaffolds enhance cell infiltration, colonization and myofibroblastic differentiation. , 2015, Nanoscale.
[147] Cornelia Altenbuchner,et al. Crosslinking and mechanical properties significantly influence cell attachment, proliferation, and migration within collagen glycosaminoglycan scaffolds. , 2011, Tissue engineering. Part A.
[148] J. Keum,et al. Confined Crystallization of Polyethylene Oxide in Nanolayer Assemblies , 2009, Science.
[149] Laura H Arias Chavez,et al. Antimicrobial Electrospun Biopolymer Nanofiber Mats Functionalized with Graphene Oxide-Silver Nanocomposites. , 2015, ACS applied materials & interfaces.
[150] S. Stupp,et al. Electrospinning Bioactive Supramolecular Polymers from Water , 2014, Biomacromolecules.
[151] T. Webster,et al. Accelerated chondrocyte functions on NaOH-treated PLGA scaffolds. , 2005, Biomaterials.
[152] E. Baer,et al. Effect of biaxial orientation on dielectric and breakdown properties of poly(ethylene terephthalate)/poly(vinylidene fluoride‐co‐tetrafluoroethylene) multilayer films , 2013 .
[153] A. K. Haghi,et al. Trends in electrospinning of natural nanofibers , 2007 .
[154] J. Bijwe,et al. Strengthening of a Fibre-Matrix Interface: A Novel Method Using Nanoparticles: , 2013 .
[155] Younan Xia,et al. Coating electrospun poly(epsilon-caprolactone) fibers with gelatin and calcium phosphate and their use as biomimetic scaffolds for bone tissue engineering. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[156] Andreas Greiner,et al. Compound Core–Shell Polymer Nanofibers by Co‐Electrospinning , 2003 .
[157] Benjamin M. Wu,et al. Orthogonally oriented scaffolds with aligned fibers for engineering intestinal smooth muscle. , 2015, Biomaterials.
[158] Xiubao Huang,et al. Air drawing of polymers in the melt blowing nonwoven process: mathematical modelling , 2004 .
[159] V. Zucolotto,et al. Multi-walled carbon nanotubes and poly(lactic acid) nanocomposite fibrous membranes prepared by solution blow spinning. , 2012, Journal of nanoscience and nanotechnology.
[160] Nicole E. Zander,et al. Electrospun polycaprolactone scaffolds with tailored porosity using two approaches for enhanced cellular infiltration , 2012, Journal of Materials Science: Materials in Medicine.
[161] S. Ramakrishna,et al. Coaxial electrospinning of (fluorescein isothiocyanate-conjugated bovine serum albumin)-encapsulated poly(epsilon-caprolactone) nanofibers for sustained release. , 2006, Biomacromolecules.
[162] S. Lanceros‐Méndez,et al. Influence of fiber diameter and crystallinity on the stability of electrospun poly(l-lactic acid) membranes to hydrolytic degradation , 2012 .
[163] G. Reilly,et al. Controlling surface topology and functionality of electrospun fibers on the nanoscale using amphiphilic block copolymers to direct mesenchymal progenitor cell adhesion. , 2015, Biomacromolecules.
[164] G. Wnek,et al. Manufacturing of polymer continuous nanofibers using a novel co-extrusion and multiplication technique , 2014 .
[165] Martin Möller,et al. Direct in vitro electrospinning with polymer melts. , 2006, Biomacromolecules.
[166] J. Chvojka,et al. Cell penetration to nanofibrous scaffolds , 2014, Cell adhesion & migration.
[167] C. Stafford,et al. Facile fabrication of "dual click" one- and two-dimensional orthogonal peptide concentration gradients. , 2013, Biomacromolecules.
[168] Xiaoyan Yuan,et al. Preparation and properties of electrospun poly(vinylidene fluoride) membranes , 2005 .
[169] C. Migliaresi,et al. Poly-L-lactic acid braided fibres produced by melt spinning: characterization and in vitro degradation , 1996 .
[170] Carolyn R Bertozzi,et al. Bioorthogonal chemistry: fishing for selectivity in a sea of functionality. , 2009, Angewandte Chemie.
[171] L. Korley,et al. Investigating Interfacial Contributions on the Layer‐Thickness‐Dependent Mechanical Response of Confined Self‐Assembly via Forced Assembly , 2013 .
[172] L. Larrondo,et al. Electrostatic fiber spinning from polymer melts. II. Examination of the flow field in an electrically driven jet , 1981 .
[173] E. Baer,et al. Protein and Bacterial Antifouling Behavior of Melt-Coextruded Nanofiber Mats. , 2016, ACS applied materials & interfaces.
[174] E. Baer,et al. Surface Modification of Melt Extruded Poly(ε-caprolactone) Nanofibers: Toward a New Scalable Biomaterial Scaffold , 2014, ACS macro letters.
[175] S. Ramakrishna,et al. Electrospinning of nano/micro scale poly(L-lactic acid) aligned fibers and their potential in neural tissue engineering. , 2005, Biomaterials.
[176] D. Reneker,et al. Post-assembly derivatization of electrospun nanofibers via strain-promoted azide alkyne cycloaddition. , 2012, Journal of the American Chemical Society.
[177] V. Sencadas,et al. Effect of Sterilization Methods on Electrospun Poly(lactic acid) (PLA) Fiber Alignment for Biomedical Applications. , 2016, ACS applied materials & interfaces.
[178] X. Mo,et al. Electrospinning P(LLA-CL) nanofiber: A tubular scaffold fabrication with circumferential alignment , 2004 .
[179] D. Papavassiliou,et al. Next-Generation Modeling of Melt Blowing , 2011 .
[180] Darrell H. Reneker,et al. Electrospinning process and applications of electrospun fibers , 1995 .
[181] M. Becker,et al. OGP functionalized phenylalanine-based poly(ester urea) for enhancing osteoinductive potential of human mesenchymal stem cells. , 2015, Biomacromolecules.
[182] C. Laurencin,et al. Biodegradable polymers as biomaterials , 2007 .
[183] Lauran R. Madden,et al. Proangiogenic scaffolds as functional templates for cardiac tissue engineering , 2010, Proceedings of the National Academy of Sciences.
[184] C. Li,et al. Effect of thermal annealing on mechanical properties of polyelectrolyte complex nanofiber membranes , 2014, Fibers and Polymers.
[185] Molamma P. Prabhakaran,et al. Coaxial electrospun poly(lactic acid)/silk fibroin nanofibers incorporated with nerve growth factor support the differentiation of neuronal stem cells , 2015 .
[186] Yakai Feng,et al. Surface Modification of Polycarbonate Urethane with Zwitterionic Polynorbornene via Thiol‐ene Click‐Reaction to Facilitate Cell Growth and Proliferation , 2015 .
[187] R. Feeney,et al. Chemical modifications of proteins: history and applications. , 1990, Bioconjugate chemistry.
[188] M. Márquez,et al. Micro/Nano Encapsulation via Electrified Coaxial Liquid Jets , 2002, Science.
[189] Yan Li,et al. A facile technique to prepare biodegradable coaxial electrospun nanofibers for controlled release of bioactive agents. , 2005, Journal of controlled release : official journal of the Controlled Release Society.
[190] F. O'Brien,et al. Understanding the effect of mean pore size on cell activity in collagen-glycosaminoglycan scaffolds , 2010, Cell adhesion & migration.
[191] David L. Kaplan,et al. Silk-based electrospun tubular scaffolds for tissue-engineered vascular grafts , 2008, Journal of biomaterials science. Polymer edition.
[192] T. Matsuo,et al. Studies on melt spinning. II. Steady‐state and transient solutions of fundamental equations compared with experimental results , 1967 .
[193] O. I. Kalaoglu-Altan,et al. "Clickable" Polymeric Nanofibers through Hydrophilic-Hydrophobic Balance: Fabrication of Robust Biomolecular Immobilization Platforms. , 2015, Biomacromolecules.
[194] C. Kaeding,et al. Bioabsorbable implant material review , 2004 .
[195] Bhanu Nandan,et al. Control on molecular weight reduction of poly(ε-caprolactone) during melt spinning--a way to produce high strength biodegradable fibers. , 2013, Materials science & engineering. C, Materials for biological applications.
[196] Jian Shi,et al. Fabrication of polymer fiber scaffolds by centrifugal spinning for cell culture studies , 2011 .
[197] Kevin Kit Parker,et al. Engineering hybrid polymer-protein super-aligned nanofibers via rotary jet spinning. , 2014, Biomaterials.
[198] N. Manolova,et al. Biocomposite scaffolds based on electrospun poly(3-hydroxybutyrate) nanofibers and electrosprayed hydroxyapatite nanoparticles for bone tissue engineering applications. , 2014, Materials science & engineering. C, Materials for biological applications.
[199] Charles A Vacanti,et al. Polyglycolic acid-induced inflammation: role of hydrolysis and resulting complement activation. , 2006, Tissue engineering.
[200] James M. Anderson,et al. Biological Responses to Materials , 2001 .
[201] M. Vert. Bioabsorbable polymers in medicine: an overview. , 2009, EuroIntervention : journal of EuroPCR in collaboration with the Working Group on Interventional Cardiology of the European Society of Cardiology.
[202] M. W. Milligan,et al. Empirical models for melt blowing , 1995 .
[203] D E Ingber,et al. Preparation of poly(glycolic acid) bonded fiber structures for cell attachment and transplantation. , 1993, Journal of biomedical materials research.
[204] Christopher J. Ellison,et al. Melt blown nanofibers: Fiber diameter distributions and onset of fiber breakup , 2007 .
[205] Jos Malda,et al. The roles of hypoxia in the in vitro engineering of tissues. , 2007, Tissue engineering.
[206] R. Gorga,et al. Effect of constrained annealing on the mechanical properties of electrospun poly(ethylene oxide) webs containing multiwalled carbon nanotubes , 2016 .
[207] B. Bay,et al. Evaluation of electrospun PCL/gelatin nanofibrous scaffold for wound healing and layered dermal reconstitution. , 2007, Acta biomaterialia.
[208] L. Mattoso,et al. Controlled Release of Linalool Using Nanofibrous Membranes of Poly(lactic acid) Obtained by Electrospinning and Solution Blow Spinning: A Comparative Study. , 2015, Journal of nanoscience and nanotechnology.
[209] L. Mattoso,et al. Nano and submicrometric fibers of poly(D,L‐lactide) obtained by solution blow spinning: Process and solution variables , 2011 .
[210] Bhanu Nandan,et al. Conducive 3D porous mesh of poly(ε-caprolactone) made via emulsion electrospinning , 2014 .
[211] Qinying Zhao,et al. Pharmacokinetic and Safety Assessments of Concurrent Administration of Risperidone and Donepezil , 2003, Journal of clinical pharmacology.
[212] J. Kenny,et al. Electrospinning of biodegradable polylactide/hydroxyapatite nanofibers: Study on the morphology, crystallinity structure and thermal stability , 2012 .
[213] M. Dall’Era,et al. Nanotechnology in bladder cancer: current state of development and clinical practice. , 2015, Nanomedicine.
[214] T. Briggs,et al. Examining the formulation of emulsion electrospinning for improving the release of bioactive proteins from electrospun fibers. , 2014, Journal of biomedical materials research. Part A.
[215] Yunfeng Shi,et al. Surface modification of electrospun nanofibrous scaffolds via polysaccharide–protein assembly multilayer for neurite outgrowth , 2012 .
[216] M. Becker,et al. Cascading "Triclick" functionalization of poly(caprolactone) thin films quantified via a quartz crystal microbalance. , 2013, Biomacromolecules.
[217] Xiaojun Yu,et al. Impact of Scaffold Micro and Macro Architecture on Schwann Cell Proliferation under Dynamic Conditions in a Rotating Wall Vessel Bioreactor. , 2011, Materials science & engineering. C, Materials for biological applications.
[218] D J Mooney,et al. Development of biocompatible synthetic extracellular matrices for tissue engineering. , 1998, Trends in biotechnology.
[219] T. He,et al. Layer-by-layer assembly to modify poly(l-lactic acid) surface toward improving its cytocompatibility to human endothelial cells. , 2003, Biomacromolecules.
[220] M. Pinteala,et al. Morphological aspects of polymer fiber mats obtained by air flow rotary-jet spinning , 2013, Fibers and Polymers.
[221] Andrew Li,et al. A bioengineered peripheral nerve construct using aligned peptide amphiphile nanofibers. , 2014, Biomaterials.
[222] B. Chan,et al. Carriers in Cell-Based Therapies for Neurological Disorders , 2014, International journal of molecular sciences.
[223] Kirthanashri S. Vasanthan,et al. Development of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) fibers for skin tissue engineering: effects of topography, mechanical, and chemical stimuli. , 2011, Biomacromolecules.
[224] P. Baumgarten,et al. Electrostatic spinning of acrylic microfibers , 1971 .
[225] Xingyu Jiang,et al. Surface modification of nano-silica on the ligament advanced reinforcement system for accelerated bone formation: primary human osteoblasts testing in vitro and animal testing in vivo. , 2015, Nanoscale.
[226] C. Lim,et al. Mussel inspired protein-mediated surface modification to electrospun fibers and their potential biomedical applications. , 2012, Journal of biomedical materials research. Part A.
[227] D. Lackland,et al. Diabetic retinopathy and serum lipoprotein subclasses in the DCCT/EDIC cohort. , 2004, Investigative ophthalmology & visual science.
[228] D L Butler,et al. Functional tissue engineering: the role of biomechanics. , 2000, Journal of biomechanical engineering.
[229] R. L. Shambaugh. A macroscopic view of the melt-blowing process for producing microfibers , 1988 .
[230] Horst A von Recum,et al. Electrospinning: applications in drug delivery and tissue engineering. , 2008, Biomaterials.