Background Three-dimensional (3D) spheroid culture can promote the osteogenic differentiation of bone marrow mesenchymal stromal cells (BMSC). 3D printing offers the possibility to produce customized scaffolds for complex bone defects. The aim of this study was to compare the potential of human BMSC cultured as 2D monolayers or 3D spheroids encapsulated in constructs of 3D-printed poly-L-lactide-co-trimethylene carbonate scaffolds and modified human platelet lysate hydrogels (PLATMC-HPLG) for bone regeneration. Methods PLATMC-HPLG constructs with 2D or 3D BMSC were assessed for osteogenic differentiation based on gene expression and in vitro mineralization. Subsequently, PLATMC-HPLG constructs with 2D or 3D BMSC were implanted in rat c...
peer reviewedXenogeneic-free media are required for translating advanced therapeutic medicinal produ...
Background: The use of mesenchymal stem cells (MSCs) for the development of tissue-engineered constr...
Most bone tissue engineering research uses porous three-dimensional (3D) scaffolds for cell seeding....
Background Three-dimensional (3D) spheroid culture can promote the osteogenic differentiation of bon...
Three-dimensional (3D) spheroid culture can promote the osteogenic differentiation and bone regenera...
Gingiva has been identified as a minimally invasive source of multipotent progenitor cells (GPCs) fo...
The hypothesis of this study was that the extent of bone regeneration could be enhanced by using sca...
Gingiva has been identified as a minimally invasive source of multipotent progenitor cells (GPCs) fo...
Item does not contain fulltextFor bone tissue engineering, the benefits of incorporating mesenchymal...
IntroductionBioassembly techniques for the application of scaffold-free tissue engineering approache...
This study aims to assess the in vivo performance of cell–scaffold constructs composed of goat marro...
Vascularization is a fundamental prerequisite for large bone construct development and remains one o...
Abstract Introduction Bone marrow-derived mesenchymal...
The development of in vitro 3D models to get insights into the mechanisms of bone regeneration could...
New methods have been developed to achieve tissue regeneration of complex bone defects and restore t...
peer reviewedXenogeneic-free media are required for translating advanced therapeutic medicinal produ...
Background: The use of mesenchymal stem cells (MSCs) for the development of tissue-engineered constr...
Most bone tissue engineering research uses porous three-dimensional (3D) scaffolds for cell seeding....
Background Three-dimensional (3D) spheroid culture can promote the osteogenic differentiation of bon...
Three-dimensional (3D) spheroid culture can promote the osteogenic differentiation and bone regenera...
Gingiva has been identified as a minimally invasive source of multipotent progenitor cells (GPCs) fo...
The hypothesis of this study was that the extent of bone regeneration could be enhanced by using sca...
Gingiva has been identified as a minimally invasive source of multipotent progenitor cells (GPCs) fo...
Item does not contain fulltextFor bone tissue engineering, the benefits of incorporating mesenchymal...
IntroductionBioassembly techniques for the application of scaffold-free tissue engineering approache...
This study aims to assess the in vivo performance of cell–scaffold constructs composed of goat marro...
Vascularization is a fundamental prerequisite for large bone construct development and remains one o...
Abstract Introduction Bone marrow-derived mesenchymal...
The development of in vitro 3D models to get insights into the mechanisms of bone regeneration could...
New methods have been developed to achieve tissue regeneration of complex bone defects and restore t...
peer reviewedXenogeneic-free media are required for translating advanced therapeutic medicinal produ...
Background: The use of mesenchymal stem cells (MSCs) for the development of tissue-engineered constr...
Most bone tissue engineering research uses porous three-dimensional (3D) scaffolds for cell seeding....