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Interaction Pathways and Structure–Chemical Transformations of Alginate Gels  in Physiological Environments | Biomacromolecules
Interaction Pathways and Structure–Chemical Transformations of Alginate Gels in Physiological Environments | Biomacromolecules

Optical images and rheological test of Alg–Gel–BG hydrogels. a Optical... |  Download Scientific Diagram
Optical images and rheological test of Alg–Gel–BG hydrogels. a Optical... | Download Scientific Diagram

The osteogenic differentiation of human dental pulp stem cells in  alginate-gelatin/Nano-hydroxyapatite microcapsules | BMC Biotechnology |  Full Text
The osteogenic differentiation of human dental pulp stem cells in alginate-gelatin/Nano-hydroxyapatite microcapsules | BMC Biotechnology | Full Text

Evaluation of Alginate-Based Bioinks for 3D Bioprinting, Mesenchymal  Stromal Cell Osteogenesis, and Application for Patient-Specific Bone Grafts  | bioRxiv
Evaluation of Alginate-Based Bioinks for 3D Bioprinting, Mesenchymal Stromal Cell Osteogenesis, and Application for Patient-Specific Bone Grafts | bioRxiv

Superstrong, superstiff, and conductive alginate hydrogels | Nature  Communications
Superstrong, superstiff, and conductive alginate hydrogels | Nature Communications

Macromolecular interactions in alginate–gelatin hydrogels regulate the  behavior of human fibroblasts
Macromolecular interactions in alginate–gelatin hydrogels regulate the behavior of human fibroblasts

Printability of Alg–Gel–BG bioink. a Freshly bioprinted constructs (Day...  | Download Scientific Diagram
Printability of Alg–Gel–BG bioink. a Freshly bioprinted constructs (Day... | Download Scientific Diagram

Figure 2 | The potential use of cross-linked alginate/gelatin hydrogels  containing silver nanoparticles for wound dressing applications |  SpringerLink
Figure 2 | The potential use of cross-linked alginate/gelatin hydrogels containing silver nanoparticles for wound dressing applications | SpringerLink

Efficacy of collagen and alginate hydrogels for the prevention of rat  chondrocyte dedifferentiation - Guang-Zhen Jin, Hae-Won Kim, 2018
Efficacy of collagen and alginate hydrogels for the prevention of rat chondrocyte dedifferentiation - Guang-Zhen Jin, Hae-Won Kim, 2018

Schematic illustration of preparation and application of Alg–Gel bioink...  | Download Scientific Diagram
Schematic illustration of preparation and application of Alg–Gel bioink... | Download Scientific Diagram

Rapid Electroformation of Biopolymer Gels in Prescribed Shapes and  Patterns: A Simpler Alternative to 3-D Printing
Rapid Electroformation of Biopolymer Gels in Prescribed Shapes and Patterns: A Simpler Alternative to 3-D Printing

Effects of 3-dimensional Bioprinting Alginate/Gelatin Hydrogel Scaffold  Extract on Proliferation and Differentiation of Human Dental Pulp Stem  Cells - Journal of Endodontics
Effects of 3-dimensional Bioprinting Alginate/Gelatin Hydrogel Scaffold Extract on Proliferation and Differentiation of Human Dental Pulp Stem Cells - Journal of Endodontics

Mexico: Researchers Test 3D Printed Alginate/Gelatin Hydrogels -  3DPrint.com | The Voice of 3D Printing / Additive Manufacturing
Mexico: Researchers Test 3D Printed Alginate/Gelatin Hydrogels - 3DPrint.com | The Voice of 3D Printing / Additive Manufacturing

Responsive photonic alginate hydrogel particles for the quantitative  detection of alkaline phosphatase | NPG Asia Materials
Responsive photonic alginate hydrogel particles for the quantitative detection of alkaline phosphatase | NPG Asia Materials

Evaluation of Alginate-Based Bioinks for 3D Bioprinting, Mesenchymal  Stromal Cell Osteogenesis, and Application for Patient-Specific Bone Grafts  | bioRxiv
Evaluation of Alginate-Based Bioinks for 3D Bioprinting, Mesenchymal Stromal Cell Osteogenesis, and Application for Patient-Specific Bone Grafts | bioRxiv

Exploring the Potential of Alginate-Gelatin-Diethylaminoethyl  Cellulose-Fibrinogen based Bioink for 3D Bioprinting of Skin Tissue  Constructs - ScienceDirect
Exploring the Potential of Alginate-Gelatin-Diethylaminoethyl Cellulose-Fibrinogen based Bioink for 3D Bioprinting of Skin Tissue Constructs - ScienceDirect

Efficacy of collagen and alginate hydrogels for the prevention of rat  chondrocyte dedifferentiation - Guang-Zhen Jin, Hae-Won Kim, 2018
Efficacy of collagen and alginate hydrogels for the prevention of rat chondrocyte dedifferentiation - Guang-Zhen Jin, Hae-Won Kim, 2018

Gels | Free Full-Text | Viscoelastic Oxidized Alginates with Reversible  Imine Type Crosslinks: Self-Healing, Injectable, and Bioprintable Hydrogels  | HTML
Gels | Free Full-Text | Viscoelastic Oxidized Alginates with Reversible Imine Type Crosslinks: Self-Healing, Injectable, and Bioprintable Hydrogels | HTML

3D printing of Alg/Gel composite scaffolds. (A) High-throughput 3D... |  Download Scientific Diagram
3D printing of Alg/Gel composite scaffolds. (A) High-throughput 3D... | Download Scientific Diagram

TissueFab® bioink Alg(Gel)ma -Vis/525 nm | Sigma-Aldrich
TissueFab® bioink Alg(Gel)ma -Vis/525 nm | Sigma-Aldrich

Tuning Alginate-Gelatin Bioink Properties by Varying Solvent and Their  Impact on Stem Cell Behavior | Scientific Reports
Tuning Alginate-Gelatin Bioink Properties by Varying Solvent and Their Impact on Stem Cell Behavior | Scientific Reports

Frontiers | 3D Printing of Cytocompatible Graphene/Alginate Scaffolds for  Mimetic Tissue Constructs
Frontiers | 3D Printing of Cytocompatible Graphene/Alginate Scaffolds for Mimetic Tissue Constructs

Construction of Alg-Gel composite hydrogel with different stiffness.... |  Download Scientific Diagram
Construction of Alg-Gel composite hydrogel with different stiffness.... | Download Scientific Diagram

Reversible electroadhesion of hydrogels to animal tissues for suture-less  repair of cuts or tears | Nature Communications
Reversible electroadhesion of hydrogels to animal tissues for suture-less repair of cuts or tears | Nature Communications

Iron( iii )-cross-linked alginate hydrogels: a critical review - Materials  Advances (RSC Publishing) DOI:10.1039/D1MA00959A
Iron( iii )-cross-linked alginate hydrogels: a critical review - Materials Advances (RSC Publishing) DOI:10.1039/D1MA00959A