Controlling cell adhesion to surfaces via associating bioactive triblock proteins.
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[1] J. Hubbell,et al. An RGD spacing of 440 nm is sufficient for integrin alpha V beta 3- mediated fibroblast spreading and 140 nm for focal contact and stress fiber formation , 1991, The Journal of cell biology.
[2] D. Wirtz,et al. Reversible hydrogels from self-assembling artificial proteins. , 1998, Science.
[3] P S Kim,et al. Preferential heterodimer formation by isolated leucine zippers from fos and jun. , 1989, Science.
[4] David R Critchley,et al. The structure and regulation of vinculin. , 2006, Trends in cell biology.
[5] Jennifer A. Craig,et al. Design of a novel fibronectin-mimetic peptide-amphiphile for functionalized biomaterials. , 2006, Langmuir : the ACS journal of surfaces and colloids.
[6] R. Schnaar,et al. Covalent attachment of an Arg-Gly-Asp sequence peptide to derivatizable polyacrylamide surfaces: support of fibroblast adhesion and long-term growth. , 1988, Analytical biochemistry.
[7] Horst Kessler,et al. RGD modified polymers: biomaterials for stimulated cell adhesion and beyond. , 2003, Biomaterials.
[8] Fabrizio Gelain,et al. Designer Self-Assembling Peptide Nanofiber Scaffolds for Adult Mouse Neural Stem Cell 3-Dimensional Cultures , 2006, PloS one.
[9] K. Shakesheff,et al. Creating biomimetic micro-environments with synthetic polymer-peptide hybrid molecules. , 1998, Journal of biomaterials science. Polymer edition.
[10] E Ruoslahti,et al. RGD and other recognition sequences for integrins. , 1996, Annual review of cell and developmental biology.
[11] M. Gümüşderelioğlu,et al. Biomodification of non-woven polyester fabrics by insulin and RGD for use in serum-free cultivation of tissue cells. , 2002, Biomaterials.
[12] J. Harden,et al. Self-assembling protein hydrogels with modular integrin binding domains. , 2006, Biomacromolecules.
[13] D J Mooney,et al. Alginate hydrogels as synthetic extracellular matrix materials. , 1999, Biomaterials.
[14] M. Mrksich,et al. The microenvironment of immobilized Arg-Gly-Asp peptides is an important determinant of cell adhesion. , 2001, Biomaterials.
[15] Y H Chen,et al. Determination of the helix and beta form of proteins in aqueous solution by circular dichroism. , 1974, Biochemistry.
[16] R. Hodges,et al. Synthesis of a model protein of defined secondary and quaternary structure. Effect of chain length on the stabilization and formation of two-stranded alpha-helical coiled-coils. , 1984, The Journal of biological chemistry.
[17] Hongjun Song,et al. GABA regulates synaptic integration of newly generated neurons in the adult brain , 2006, Nature.
[18] W. DeGrado,et al. De novo design of heterotrimeric coiled coils , 1996, Biopolymers.
[19] T. Kouzarides,et al. The role of the leucine zipper in the fos–jun interaction , 1988, Nature.
[20] A. Horwitz,et al. Cell surface receptors for extracellular matrix molecules. , 1987, Annual review of cell biology.
[21] M B McCarthy,et al. Functionalized silk-based biomaterials for bone formation. , 2001, Journal of biomedical materials research.
[22] S. McKnight,et al. The leucine zipper: a hypothetical structure common to a new class of DNA binding proteins. , 1988, Science.
[23] V. V. van Hinsbergh,et al. Direct grafting of RGD-motif-containing peptide on the surface of polycaprolactone films , 2006, Journal of biomaterials science. Polymer edition.
[24] A. Rich,et al. Self-complementary oligopeptide matrices support mammalian cell attachment. , 1995, Biomaterials.
[25] K. Shakesheff,et al. Poly(L-lysine)-GRGDS as a biomimetic surface modifier for poly(lactic acid). , 2001, Biomaterials.
[26] David J Mooney,et al. Alginate type and RGD density control myoblast phenotype. , 2002, Journal of biomedical materials research.
[27] A. Rezania,et al. The effect of peptide surface density on mineralization of a matrix deposited by osteogenic cells. , 2000, Journal of biomedical materials research.
[28] L. Addadi,et al. Hierarchical assembly of cell-matrix adhesion complexes. , 2004, Biochemical Society transactions.
[29] A. Knaebel,et al. Cell adhesion on a polymerized peptide-amphiphile monolayer. , 2006, Biomaterials.
[30] David A Tirrell,et al. Endothelial cell adhesion to the fibronectin CS5 domain in artificial extracellular matrix proteins. , 2003, Biomaterials.
[31] J. Hubbell,et al. Covalent surface immobilization of Arg-Gly-Asp- and Tyr-Ile-Gly-Ser-Arg-containing peptides to obtain well-defined cell-adhesive substrates. , 1990, Analytical biochemistry.
[32] R. Langer,et al. Designing materials for biology and medicine , 2004, Nature.
[33] Fabrizio Gelain,et al. Biological Designer Self-Assembling Peptide Nanofiber Scaffolds Significantly Enhance Osteoblast Proliferation, Differentiation and 3-D Migration , 2007, PloS one.
[34] R. Schnaar,et al. Tumor cell haptotaxis on covalently immobilized linear and exponential gradients of a cell adhesion peptide. , 1989, Developmental biology.
[35] J. Hubbell,et al. Synthetic biomaterials as instructive extracellular microenvironments for morphogenesis in tissue engineering , 2005, Nature Biotechnology.
[36] P. Tresco,et al. A novel method for surface modification to promote cell attachment to hydrophobic substrates. , 1998, Journal of biomedical materials research.
[37] R L Juliano,et al. (Arg-Gly-Asp)n-albumin conjugates as a model substratum for integrin-mediated cell adhesion. , 1989, Experimental cell research.