Modeling the Electromobility of Type-I Collagen Molecules in the Electrochemical Fabrication of Dense and Aligned Tissue Constructs
暂无分享,去创建一个
[1] J. Pawliszyn,et al. High‐resolution computer simulation of the dynamics of isoelectric focusing of proteins , 2004, Electrophoresis.
[2] M. R. Kumar,et al. Correlating mechanical properties with aggregation processes in electrochemically fabricated collagen membranes. , 2009, Biomacromolecules.
[3] I R Titze,et al. Viscosities of Implantable Biomaterials in Vocal Fold Augmentation Surgery , 1998, The Laryngoscope.
[4] J. A. Chapman,et al. Reconstitution of collagen fibrils in vitro; the assembly process depends on the initiating procedure , 1986 .
[5] Guoying Li,et al. Physicochemical properties of collagen, gelatin and collagen hydrolysate derived from bovine limed split wastes , 2006 .
[6] J. Howard,et al. Mechanics of Motor Proteins and the Cytoskeleton , 2001 .
[7] M Karplus,et al. Improving the accuracy of protein pKa calculations: Conformational averaging versus the average structure , 1998, Proteins.
[8] D. Saville,et al. Computer simulation and experimental validation of the electrophoretic behavior of proteins. , 1989, Analytical chemistry.
[9] Umut A. Gurkan,et al. An electrochemical fabrication process for the assembly of anisotropically oriented collagen bundles. , 2008, Biomaterials.
[10] O. Akkus,et al. Effects of phosphate-buffered saline concentration and incubation time on the mechanical and structural properties of electrochemically aligned collagen threads , 2011, Biomedical materials.
[11] W. Friess,et al. Effects of processing conditions on the rheological behavior of collagen dispersions. , 2001, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[12] M. Yoder,et al. Collagen oligomers modulate physical and biological properties of three-dimensional self-assembled matrices. , 2011, Biopolymers.
[13] Dimitrios I. Zeugolis,et al. Nano-textured self-assembled aligned collagen hydrogels promote directional neurite guidance and overcome inhibition by myelin associated glycoprotein , 2011 .
[14] F. Silver,et al. Physical characterization of type I procollagen in solution: evidence that the propeptides limit self-assembly , 1986 .
[15] Peter Fratzl,et al. Collagen : structure and mechanics , 2008 .
[16] G. Na,et al. Mechanism of in vitro collagen fibril assembly. Kinetic and morphological studies. , 1986, The Journal of biological chemistry.
[17] A. Veis,et al. The molecular parameters of monomeric and acid‐soluble collagens. Low shear gradient viscosity and electric birefringence , 1972, Biopolymers.
[18] V. P. Tomaselli,et al. Electrical properties of hydrated collagen. I. Dielectric properties , 1973 .
[19] O. Palusinski,et al. Computer simulation and experimental validation of isoelectric focusing in ampholine-free systems , 1981 .
[20] J. Howard,et al. Assembly of collagen into microribbons: effects of pH and electrolytes. , 2004, Journal of structural biology.
[21] M. Keech. The formation of fibrils from collagen solutions. IV. Effect of mucopolysaccharides and nucleic acids: an electron microscope study. , 1961 .
[22] T. Vliet,et al. Interfacial rheological properties of adsorbed protein layers and surfactants: a review. , 2001, Advances in colloid and interface science.
[23] J. Josserand,et al. Modeling the isoelectric focusing of peptides in an OFFGEL multicompartment cell. , 2007, Journal of proteome research.
[24] W. Visessanguan,et al. Use of pepsin for collagen extraction from the skin of bigeye snapper (Priacanthus tayenus) , 2007 .
[25] Neil A. Rowson,et al. Dielectric properties of coal , 2001 .
[26] Majid Minary-Jolandan,et al. Nanoscale characterization of isolated individual type I collagen fibrils: polarization and piezoelectricity , 2009, Nanotechnology.
[27] D. Saville,et al. Mathematical modeling and computer simulation of isoelectric focusing with electrochemically defined ampholytes. , 1981, Biophysical chemistry.
[28] J. A. Chapman,et al. Collagen self-assembly in vitro: electron microscopy of initial aggregates formed during the lag phase. , 1986, Journal of molecular biology.
[29] G. C. Wood,et al. The formation of fibrils from collagen solutions. 1. The effect of experimental conditions: kinetic and electron-microscope studies. , 1960, The Biochemical journal.
[30] Amran K. Asadi,et al. pH effects on collagen fibrillogenesis in vitro: Electrostatic interactions and phosphate binding , 2009 .
[31] J. A. Chapman,et al. Collagen fibril formation. , 1996, The Biochemical journal.
[32] J. Harris,et al. Influence of saline and pH on collagen type I fibrillogenesis in vitro: fibril polymorphism and colloidal gold labelling. , 2007, Micron.
[33] K. Piez,et al. Collagen fibril formation. Optimal in vitro conditions and preliminary kinetic results. , 1978, The Journal of biological chemistry.
[34] F H Silver,et al. Assembly of type I collagen: fusion of fibril subunits and the influence of fibril diameter on mechanical properties. , 2000, Matrix biology : journal of the International Society for Matrix Biology.
[35] T. Sounart,et al. Simulation of electrophoretic separations by the flux-corrected transport method. , 2000, Journal of chromatography. A.
[36] J. Paul Robinson,et al. Tensile mechanical properties of three-dimensional type I collagen extracellular matrices with varied microstructure. , 2002, Journal of biomechanical engineering.
[37] P Yager,et al. Concentration and separation of proteins in microfluidic channels on the basis of transverse IEF. , 2001, Analytical chemistry.
[38] Prashanta Dutta,et al. Effects of ampholyte concentration on protein behavior in on‐chip isoelectric focusing , 2008, Electrophoresis.
[39] P Yager,et al. Formation of natural pH gradients in a microfluidic device under flow conditions: model and experimental validation. , 2001, Analytical chemistry.
[40] O. Akkus,et al. Incorporation of a Decorin Biomimetic Enhances the Mechanical Properties of Electrochemically Aligned Collagen Threads , 2011 .
[41] Whitney Bullock,et al. Tenogenic differentiation of human MSCs induced by the topography of electrochemically aligned collagen threads. , 2012, Biomaterials.
[42] O. Akkus,et al. In vivo response to electrochemically aligned collagen bioscaffolds. , 2012, Journal of biomedical materials research. Part B, Applied biomaterials.
[43] M. Paula,et al. Rheological behavior of anionic collagen injectable gels in the presence of rhamsan for plastic surgery applications , 2007, Journal of materials science. Materials in medicine.
[44] Umut A. Gurkan,et al. Comparison of morphology, orientation, and migration of tendon derived fibroblasts and bone marrow stromal cells on electrochemically aligned collagen constructs. , 2010, Journal of biomedical materials research. Part A.