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Preface | ||
Acknowledgments | ||
Materials Research Society Symposium Proceedings | ||
Formation of Three Dimensional Marrow Stromal Cell-Polymer Constructs in Bioreactors for Bone Tissue Engineering | ||
Chitosan/Calcium Phosphate Scaffolds for Bone Tissue Engineering | ||
Controlling Diffusion of Solutes Through Ionically Crosslinked Alginate Hydrogels Designed for Tissue Engineering | ||
Development of Biodegradable Polymer Scaffolds Using Co-Extrusion | ||
Temporary Encapsulation of Rat Marrow Osteoblasts in Gelatin Microspheres for Bone Tissue Engineering | ||
Evaluation of a Collagen-Hyaluronate Bilayer Matrix for Bone and Cartilage Repair | ||
Design and Characterization of New Ti-Ag and Ti-Ag-Sn Alloys for Cranio-Maxillo-Facial Prostheses Made by Three-Dimensional Printing | ||
Bioactive Glass Paste in Molars of Mini-Pigs: An In Vivo Study | ||
Apatite Growth on Bioactive Glass in Artificial Saliva | ||
Maxillofacial Implants of Polarized Hydroxyapatite Plasma-Spray-Coating Titanium | ||
Biological Reaction to Electrically Polarized Hydroxyapatite | ||
Strength, Toughness, and Fatigue of an Apatite Cement | ||
Bioactivity Responses of Different UHMWPE Particles From In Vivo and In Vitro Tests | ||
Mechanism of Osteogenesis Around Polarized Hydroxyapatite Implant | ||
Fabrication and Characterisation of Calcium Phosphate - Liposome Composites as an Implant Coating | ||
On the Transformation Behaviour, Mechanical Properties and Biocompatibility of Two NiTi Based Shape Memory Alloys: NiTi42 and NiTi42Cu7 | ||
Bioactivity of Vitronectin Adsorbed on Nanophase Alumina Promotes Osteoblast Adhesion | ||
Photocrosslinked Poly(Propylene Fumarate) Scaffolds for Orthopedic Applications | ||
Fabrication of an Injectable Porous Synthetic Biodegradable Hydrogel for Dental Tissue Engineering | ||
Design, Synthesis, and Characterization of Hydroxyapatite Particulates | ||
Synthetic Biodegradable Polymer Networks Modulating Marrow Stromal Osteoblast Adhesion | ||
Crystal Morphology Control by Melt Phase Separation in Biodegradable Polymer Blends | ||
Surface Treatment of Biomedical Polymers for Enhanced Adhesion | ||
Effects of Block Lengths and Initial Water Content on the Swelling and Degradative Characteristics of an Injectable Poly(Propylene Fumarate-Co-Ethylene Glycol) Block Copolymer Hydrogel | ||
Ammonia RF-Plasma on PTFE Surfaces: Quantification of the Species Created on the Surface by Vapor-Phase Chemical Derivatization | ||
Using Indentation and Intra-Vascular Ultrasound to Measure Arterial Response | ||
Design of pH Sensitive Materials for On/Off Release of Thrombolytic and Anticoagulant Drugs | ||
Synthesis and Characterization of Environmentally Responsive Core-Shell Hydrogel Nanoparticles | ||
Synthesis and Characterization of Water Soluble Block Copolymers for pH-Sensitive Delivery | ||
Controlled Release of Bone Growth Factors From Injectable, Biodegradable Polymer Scaffolds for Bone Tissue Engineering | ||
Analysis of Electrostatic Effects on the Success of Retroviral-Mediated Gene Delivery | ||
Microstructural Characterization of Polyanhydride Blends for Controlled Drug Delivery | ||
Small Molecule Diffusion and Solubility in Adhesives Used for Transdermal Drug Delivery: Infrared-Attenuated Total Reflectance (IR-ATR) Studies | ||
Characterization and Biocompatibility Studies of Layer-by-Layer Self-Assembled Humic Acid/Fe[superscript 3+] Films | ||
Adhesion of Pressure Sensitive Adhesives With Applications in Transdermal Drug Delivery | ||
Diffusion of Dendritic Polymers Through Concentrated Polymer Solutions | ||
Electrokinetic Assembly of Microsphere and Cellular Arrays | ||
Preparation and Characterization of DAM-1 Type Materials | ||
Nanoparticles and Polymeric Vesicles From New Poly-L-Lysine Based Amphiphiles | ||
Functional Recovery Following Spinal Cord Hemisection Mediated by a Unique Polymer Scaffold Seeded With Neural Stem Cells | ||
Sol-Gel Optical Sensors for Glutamate | ||
Author Index | ||
Subject Index |
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Add Biomaterials for Drug Delivery and Tissue Engineering Symposia Held November 27-29, 2000, Bo..., Biomaterials and biological interfaces are expected to play a key role in promising areas of biotechnology (such as cardiovascular/neurological applications and drug, protein and gene delivery) for the future. Likewise, recent interest in dental/orthopedi, Biomaterials for Drug Delivery and Tissue Engineering Symposia Held November 27-29, 2000, Bo... to your collection on WonderClub |