Effects of porosity and pore size on in vitro degradation of three-dimensional porous poly(D,L-lactide-co-glycolide) scaffolds for tissue engineering.
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Summary
The work suggests that, in designing a tissue-engineering scaffold composed of PLGA and adjusting its degradation rate, the effects of pore morphologies should be taken into consideration in addition to those of chemical composition and condensed state of raw materials.
- Type
- article
- Published
- 2005-12-15
- Cited by
- 212
- References
- 20
- OpenAlex
- https://openalex.org/W1966316996
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:25650057
Keywords
Porosity, Materials science, Degradation (telecommunications), PLGA, Tissue engineering
References
- Poly(alpha-hydroxyl acids)/hydroxyapatite porous composites for bone-tissue engineering. I. Preparation and morphology.
- Effects of fluid flow on the in vitro degradation kinetics of biodegradable scaffolds for tissue engineering.
- Degradation behaviors of biodegradable macroporous scaffolds prepared by gas foaming of effervescent salts.
- In vitro degradation of porous poly(L-lactic acid) foams.
- Preparation, characterization, and in vitro degradation of bioresorbable and bioactive composites based on Bioglass-filled polylactide foams.
- Host response to tissue engineered devices.
- Preparation and characterization of poly(l-lactic acid) foams
- In vitro and in vivo degradation of porous poly(DL-lactic-co-glycolic acid) foams.
- Enzymatic degradation behavior and mechanism of poly(lactide-co-glycolide) foams by trypsin.
- Development of biocompatible synthetic extracellular matrices for tissue engineering.
- Synthetic biodegradable polymers as orthopedic devices.
- Biodegradable polymeric scaffolds for musculoskeletal tissue engineering.
- The Effects of Porosity on in Vitro Degradation of Polylactic Acid–Polyglycolic Acid Implants Used in Repair of Articular Cartilage
- Mechanisms of polymer degradation and erosion.
- Hydrolytic degradation of devices based on poly(DL-lactic acid) size-dependence.
- Tissue ingrowth and degradation of two biodegradable porous polymers with different porosities and pore sizes.
- In vitro degradation of a novel poly(lactide-co-glycolide) 75/25 foam.
- In vitro degradation of three-dimensional porous poly(D,L-lactide-co-glycolide) scaffolds for tissue engineering.
- Preparation of Porous cell Scaffolds of Poly(L-lactic acid) and Poly(L-lactic-co-glycolic acid) and the Measurement of their Porosities
- CHAPTER 21 – POLYMER SCAFFOLD PROCESSING
Cited by
- Material properties and bone marrow stromal cells response to in situ crosslinkable RGD-functionlized lactide-co-glycolide scaffolds.
- Body distribution of poly(d,l-lactide-co-glycolide) copolymer degradation products in rats
- Continuous Passive Motion Promotes and Maintains Chondrogenesis in Autologous Endothelial Progenitor Cell-Loaded Porous PLGA Scaffolds during Osteochondral Defect Repair in a Rabbit Model
- Polymers and protein-conjugates for tissue engineering
- Designed Biodegradable and Osteoconductive Porous Scaffolds for Human Trabecular Bone
- Improved dimensional stability with bioactive glass fibre skeleton in poly(lactide-co-glycolide) porous scaffolds for tissue engineering.
- Co-delivery of Two Growth Factors From Combined PLGA and PLLA/PCL Microsphere Scaffolds for Spinal Cord Injury Repairs
- Modelling the degradation and elastic properties of poly(lactic-co-glycolic acid) films and regular open-cell tissue engineering scaffolds.
- Scaffold Pore Size and Calcium Phosphate Coating Control Chondrogenesis and Endochondral Ossification.
- Effect of pore sizes of PLGA scaffolds on mechanical properties and cell behaviour for nucleus pulposus regeneration in vivo
- Functionalisation and surface modification of electrospun polylactic acid scaffold for tissue engineering
- Tracheal reconstruction using chondrocytes seeded on a poly(L-lactic-co-glycolic acid)-fibrin/hyaluronan.
- Influence of pH on Morphology and Structure during Hydrolytic Degradation of the Segmented GL-b-[GL-co-TMC-co-CL]-b-GL Copolymer
- The effects of pore size in bilayered poly(lactide-co-glycolide) scaffolds on restoring osteochondral defects in rabbits.
- PDMSstar-PEG Hydrogels Prepared via Solvent-Induced Phase Separation (SIPS) and Their Potential Utility as Tissue Engineering Scaffolds
- Effect of Size on Degradation of Porous Poly(Lactic Acid) Scaffold
- Monte Carlo Simulation of Degradation of Porous Poly(lactide) Scaffolds, I. Effect of Porosity on pH
- The Implications of Polymer Selection in Regenerative Medicine: A Comparison of Amorphous and Semi‐Crystalline Polymer for Tissue Regeneration
- Effect of porosity on long-term degradation of poly (ε-caprolactone) scaffolds and their cellular response
- Solvent-assisted room-temperature compression molding approach to fabricate porous scaffolds for tissue engineering.
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