Synthetic Mimics of the Extracellular Matrix: How Simple is Complex Enough?
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[1] S. Delp,et al. Rejuvenation of the aged muscle stem cell population restores strength to injured aged muscles , 2014, Nature Medicine.
[2] Anthony B. Brennan,et al. Bio-inspired Materials for Biomedical Engineering , 2014 .
[3] Doris A Taylor,et al. Perfusion-decellularized matrix: using nature's platform to engineer a bioartificial heart , 2008, Nature Medicine.
[4] Kristi S. Anseth,et al. A Versatile Synthetic Extracellular Matrix Mimic via Thiol‐Norbornene Photopolymerization , 2009, Advanced materials.
[5] D. Rabenstein. Heparin and heparan sulfate: structure and function. , 2002, Natural product reports.
[6] Kristi S Anseth,et al. Three-dimensional hMSC motility within peptide-functionalized PEG-based hydrogels of varying adhesivity and crosslinking density. , 2013, Acta biomaterialia.
[7] J. Hubbell,et al. Incorporation of adhesion peptides into nonadhesive hydrogels useful for tissue resurfacing. , 1998, Journal of biomedical materials research.
[8] Kristi S Anseth,et al. Controlled two-photon photodegradation of PEG hydrogels to study and manipulate subcellular interactions on soft materials. , 2010, Soft matter.
[9] J. Burdick,et al. Sustained Release of Engineered Stromal Cell–Derived Factor 1-&agr; From Injectable Hydrogels Effectively Recruits Endothelial Progenitor Cells and Preserves Ventricular Function After Myocardial Infarction , 2013, Circulation.
[10] Wesley R. Legant,et al. Measurement of mechanical tractions exerted by cells in three-dimensional matrices , 2010, Nature Methods.
[11] Kristi S. Anseth,et al. Sequential click reactions for synthesizing and patterning three-dimensional cell microenvironments , 2009 .
[12] A. Metters,et al. Synthetic matrix metalloproteinase-sensitive hydrogels for the conduction of tissue regeneration: Engineering cell-invasion characteristics , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[13] L. Bian,et al. Hydrogels that mimic developmentally relevant matrix and N-cadherin interactions enhance MSC chondrogenesis , 2013, Proceedings of the National Academy of Sciences.
[14] S. Badylak,et al. Role of the Extracellular Matrix in Whole Organ Engineering , 2014, Journal of cellular physiology.
[15] Joseph H. Gorman,et al. Injectable and bioresponsive hydrogels for on-demand matrix metalloproteinase inhibition , 2014, Nature materials.
[16] Christopher S. Chen,et al. Cells lying on a bed of microneedles: An approach to isolate mechanical force , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[17] Kenneth M. Yamada,et al. Direct visualization of protease activity on cells migrating in three-dimensions. , 2009, Matrix Biology.
[18] P. Atluri,et al. Spliced stromal cell-derived factor-1α analog stimulates endothelial progenitor cell migration and improves cardiac function in a dose-dependent manner after myocardial infarction. , 2010, The Journal of thoracic and cardiovascular surgery.
[19] Jeffrey A. Hubbell,et al. Polymeric biomaterials with degradation sites for proteases involved in cell migration , 1999 .
[20] Jeffrey A. Hubbell,et al. Biomaterials in Tissue Engineering , 1995, Bio/Technology.
[21] S. Sen,et al. Matrix Elasticity Directs Stem Cell Lineage Specification , 2006, Cell.
[22] Carolyn R. Bertozzi,et al. Second-Generation Difluorinated Cyclooctynes for Copper-Free Click Chemistry , 2008, Journal of the American Chemical Society.
[23] Kristi S Anseth,et al. Photoreversible Patterning of Biomolecules within Click-Based Hydrogels , 2011, Angewandte Chemie.
[24] Mikaël M. Martino,et al. In Situ Cell Manipulation through Enzymatic Hydrogel Photopatterning , 2013 .
[25] Chaenyung Cha,et al. 25th Anniversary Article: Rational Design and Applications of Hydrogels in Regenerative Medicine , 2014, Advanced materials.
[26] K. Anseth,et al. Biophysically Defined and Cytocompatible Covalently Adaptable Networks as Viscoelastic 3D Cell Culture Systems , 2014, Advances in Materials.
[27] Z. Werb,et al. The extracellular matrix: A dynamic niche in cancer progression , 2012, The Journal of cell biology.
[28] Sheila MacNeil,et al. Production and performance of biomaterials containing RGD peptides , 2008 .
[29] Christopher S. Chen,et al. Matrix rigidity regulates a switch between TGF-β1–induced apoptosis and epithelial–mesenchymal transition , 2012, Molecular biology of the cell.
[30] Kristi S. Anseth,et al. Bioorthogonal Click Chemistry: An Indispensable Tool to Create Multifaceted Cell Culture Scaffolds , 2012, ACS macro letters.
[31] Jennifer L West,et al. Covalently immobilized gradients of bFGF on hydrogel scaffolds for directed cell migration. , 2005, Biomaterials.
[32] Kristi S. Anseth,et al. Monitoring degradation of matrix metalloproteinases-cleavable PEG hydrogels via multiple particle tracking microrheology , 2013 .
[33] Kristi S. Anseth,et al. Cytocompatible Click-based Hydrogels with Dynamically-Tunable Properties Through Orthogonal Photoconjugation and Photocleavage Reactions , 2011, Nature chemistry.
[34] S. Thrun,et al. Substrate Elasticity Regulates Skeletal Muscle Stem Cell Self-Renewal in Culture , 2010, Science.
[35] K. Anseth,et al. Direct measurement of matrix metalloproteinase activity in 3D cellular microenvironments using a fluorogenic peptide substrate. , 2013, Biomaterials.
[36] G. Karp. Cell and molecular biology : concepts and experiments / Gerald Karp , 1996 .
[37] Esmaiel Jabbari,et al. Bioconjugation of hydrogels for tissue engineering. , 2011, Current opinion in biotechnology.
[38] Kristi S Anseth,et al. Small peptide functionalized thiol-ene hydrogels as culture substrates for understanding valvular interstitial cell activation and de novo tissue deposition. , 2012, Acta biomaterialia.
[39] D. Mooney,et al. Presentation of BMP-2 mimicking peptides in 3D hydrogels directs cell fate commitment in osteoblasts and mesenchymal stem cells. , 2014, Biomacromolecules.
[40] K. Anseth,et al. Sequential Click Reactions for Synthesizing and Patterning 3D Cell Microenvironments , 2009, Nature materials.
[41] J. Hubbell,et al. Enhanced proteolytic degradation of molecularly engineered PEG hydrogels in response to MMP-1 and MMP-2. , 2010, Biomaterials.
[42] Fiona M. Watt,et al. Role of the extracellular matrix in regulating stem cell fate , 2013, Nature Reviews Molecular Cell Biology.
[43] Craig J. Hawker,et al. A versatile approach to high-throughput microarrays using thiol-ene chemistry , 2010 .
[44] Kristi S. Anseth,et al. Mechanical memory and dosing influence stem cell fate , 2014, Nature materials.
[45] D. Clegg,et al. A versatile approach to high-throughput microarrays using thiol-ene chemistry. , 2010, Nature chemistry.
[46] Mark W. Tibbitt,et al. Hydrogels preserve native phenotypes of valvular fibroblasts through an elasticity-regulated PI3K/AKT pathway , 2013, Proceedings of the National Academy of Sciences.
[47] Charles E. Hoyle,et al. Thiol—Ene Click Chemistry , 2010 .
[48] Cindi M Morshead,et al. Spatially controlled simultaneous patterning of multiple growth factors in three-dimensional hydrogels. , 2011, Nature materials.
[49] D. Discher,et al. Combining insoluble and soluble factors to steer stem cell fate. , 2014, Nature materials.
[50] Malar A. Azagarsamy,et al. Photo‐Click Living Strategy for Controlled, Reversible Exchange of Biochemical Ligands , 2014, Advanced materials.
[51] Kristi S. Anseth,et al. Peptide-Functionalized Click Hydrogels with Independently Tunable Mechanics and Chemical Functionality for 3D Cell Culture , 2010, Chemistry of materials : a publication of the American Chemical Society.
[52] Kelly M. Schultz,et al. Microrheology of biomaterial hydrogelators , 2012 .
[53] K. Anseth,et al. Bis-Aliphatic Hydrazone-Linked Hydrogels Form Most Rapidly at Physiological pH: Identifying the Origin of Hydrogel Properties with Small Molecule Kinetic Studies , 2014 .
[54] Mark W. Tibbitt,et al. Responsive culture platform to examine the influence of microenvironmental geometry on cell function in 3D. , 2012, Integrative biology : quantitative biosciences from nano to macro.
[55] M. Humphries,et al. The molecular basis and specificity of integrin-ligand interactions. , 1990, Journal of cell science.
[56] Jennifer L West,et al. Poly(ethylene glycol) hydrogels conjugated with a collagenase-sensitive fluorogenic substrate to visualize collagenase activity during three-dimensional cell migration. , 2007, Biomaterials.
[57] Gregory A Hudalla,et al. An approach to modulate degradation and mesenchymal stem cell behavior in poly(ethylene glycol) networks. , 2008, Biomacromolecules.
[58] Wesley R. Legant,et al. Degradation-mediated cellular traction directs stem cell fate in covalently crosslinked three-dimensional hydrogels , 2013, Nature materials.
[59] K. Kiick,et al. Heparin-functionalized polymeric biomaterials in tissue engineering and drug delivery applications. , 2014, Acta biomaterialia.
[60] Kristi L. Kiick,et al. Designing degradable hydrogels for orthogonal control of cell microenvironments , 2013, Chemical Society reviews.
[61] Teodelinda Mirabella,et al. Decellularized matrices for cardiovascular tissue engineering. , 2014, American journal of stem cells.