Polysaccharide-Based In Situ Self-Healing Hydrogels for Tissue Engineering Applications
Abstract
:1. Introduction
2. Self-Healing Mechanisms
2.1. Dynamic Covalent Bonding
2.1.1. Imine Bonds
2.1.2. Acylhydrazone Bonds
2.1.3. Disulfide Bonds
2.1.4. Boronate-Ester Complexation
2.1.5. Diels-Alder “Click Chemistry”
2.2. Physical Bonding
2.2.1. Hydrogen Bonding
2.2.2. Ionic Bonding
2.2.3. Host-Guest Interaction
2.2.4. Hydrophobic Bonding
3. In Situ Self-Healing Polysaccharide-Based Hydrogels
3.1. Hydrophobic Self-Healing Hydrogels
3.2. Ionically Induced Self-Healing Hydrogels
3.3. In Situ Polymerization and Self-Healing Hydrogels
3.4. In Situ Hydrogels Formed via Dynamic Covalent Bonds with Self-Healing
4. Tissue Engineering Applications
4.1. Bone Tissue
4.2. Cartilage
4.3. Muscle
4.4. Skin
4.5. Cardiac
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Hydrogel | In Situ Gelling Mechanism | Self-Healing Mechanism | Applications | References |
---|---|---|---|---|
Alginate grafted onto β-CD and Pluronic® F108 | Hydrophobic interactions | Host-guest interaction | Drug delivery and cell transplantantion | [97] |
Hydrophobically modified chitosan with thermal-responsive vesicle composed of 5 mS and DTAB | Hydrophobic interactions | Host-guest interaction | Scaffold for tissue engineering | [98] |
Polyethylene glycol derivated functionalized with/ureido-pyrimidinone | Hydrophobic interactions | Hydrophobic interactions | Cardiac tissue regeneration | [132] |
2-Hydroxypropyltrimethylammonium chitosan chloride/Alginate polycomplex | Electrostatic interactions | Ionically induced mechanism | Surface coating and 3D bioprinting | [102] |
Chitosan/Hyaluronic acid polycomplex | Electrostatic interactions | Ionically induced mechanism | Functional biomedical supports and coatings | [51] |
Polyacrylic acid (PAA)—chitosan copolymeric hydrogels crosslinked with guanidine | Electrostatic interactions | Ionically induced mechanism | Drug delivery and tissue engineering applications | [103] |
Chitosan/poly(acrylamide-co-acrylic acid) in presence of Fe3+ | Electrostatic interactions | Ionically induced mechanism | Drug delivery and tissue engineering applications | [90] |
Dextran functionalized with Ureido-pyrimidinone | Hydrogen bonds | Hydrogen bonds | Encapsulation of chondrocytes for cartilage tissue engineering | [122] |
Chitosan/Catechol assembled through Fe3+ | Metal-ligand interactions | Ionically induced mechanism | Localized delivery of chemotherapeutic drugs | [133] |
Alginate/Catechol assembled through Fe3+ | Metal-ligand coordinative interactions | Ionically induced mechanism | Drug delivery and tissue differentiation | [104] |
N-carboxyethyl chitosan/Polyacrylic acid coordinated with Fe3+ | Metal-ligand coordinative interactions | Ionically induced mechanism | Drug delivery and cartilage tissue differentiation | [106] |
Hyaluronic acid modified with bisphosphonate and acrylated bisphosphonate and Mg2+ | Metal-ligand coordinative interactions | Metal-ligand coordinative interactions | Bone tissue engineering | [118] |
Hyaluronic acid hydrogel with silk fibroin nanofibers coated with calcium phosphate | Dynamic metal-bisphosphonate coordination bonds | Dynamic metal-bisphosphonate coordination bonds | Bone tissue engineering | [119] |
Quaternized chitosan/Polyacrylic acid | In situ polymerization of monomer and electrostatic interactions | Ionically induced mechanism | Load-bearing artificial soft tissues. | [107] |
Alginate/Ca2+/Polyacrylamide | In situ polymerization and electrostatic interactions | Ionically induced mechanism | 3D cell culture | [108] |
Gelatin/polyethylene glycol dibenzaldehyde | Dynamic imine bonds | Dynamic imine bonds | Drug delivery systems, as tissue regeneration scaffolds and also as wound dressing for skin injuries | [112] |
Sodium alginate dialdehyde/Carboxymethyl chitosan | Dynamic Schiff-base covalent bonds | Hydrogen bonds and dynamic Schiff-base covalent bonds | Corneal epithelial reconstruction based on tissue engineering | [43] |
Glycol chitosan/telechelic difunctional poly(ethylene glycol) | Dynamic Schiff-base covalent bonds | Dynamic Schiff-base covalent bonds | 3D cell culture and injection cell therapy | [56] |
N-carboxyethyl chitosan/dibenzaldehyde-terminated poly(ethylene glycol) | Dynamic Schiff-base covalent bonds | Dynamic Schiff-base covalent bonds | Anticancer drug delivery for hepatocellular cancer therapy | [36] |
Hyaluronic acid/Dextran/LAPONITE® | Dynamic Schiff-base covalent bonds and hydrogen bonds | Dynamic Schiff-base covalent bonds and hydrogen bonds | Bone tissue engineering | [120] |
Chitosan/dextran-graft-aniline tetramer-graft-4-formylbenzoic acid | Dynamic Schiff-base covalent bonds | Dynamic Schiff-base covalent bonds | Encapsulation of C2C12 myoblasts for muscle tissue engineering | [124] |
Quaternized chitosan-g-polyaniline and poly(ethylene glycol)-co-poly(glycerol sebacate) funtionalized with benzaldehyde | Dynamic Schiff-base covalent bonds | Dynamic Schiff-base covalent bonds | Wound repair | [127] |
Chitosan-graft-aniline tetramer and dibenzaldehyde-terminated poly(ethylene glycol) | Dynamic Schiff-base covalent bonds | Dynamic Schiff-base covalent bonds | Regeneration of cardiac tissue for myocardial infarction | [131] |
Hyaluronic acid/furan/adipic dihydrazide | Diels alder click reaction and dynamic acylhydrazone bonds | Dynamic acylhydrazone bond | Cartilage tissue engineering | [123] |
Maleilated chitosan/Thiol derivatized sodium alginate | Michael addition reaction and ionic interactions | Dynamic disulfide exchange | 3D cell culture | [115] |
Polyethylene glycol derivatives functionalized with/ureido-pyrimidinone | Hydrophobic interactions | Hydrophobic interactions | Cardiac tissue regeneration | [132] |
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Maiz-Fernández, S.; Pérez-Álvarez, L.; Ruiz-Rubio, L.; Vilas-Vilela, J.L.; Lanceros-Mendez, S. Polysaccharide-Based In Situ Self-Healing Hydrogels for Tissue Engineering Applications. Polymers 2020, 12, 2261. https://doi.org/10.3390/polym12102261
Maiz-Fernández S, Pérez-Álvarez L, Ruiz-Rubio L, Vilas-Vilela JL, Lanceros-Mendez S. Polysaccharide-Based In Situ Self-Healing Hydrogels for Tissue Engineering Applications. Polymers. 2020; 12(10):2261. https://doi.org/10.3390/polym12102261
Chicago/Turabian StyleMaiz-Fernández, Sheila, Leyre Pérez-Álvarez, Leire Ruiz-Rubio, Jose Luis Vilas-Vilela, and Senentxu Lanceros-Mendez. 2020. "Polysaccharide-Based In Situ Self-Healing Hydrogels for Tissue Engineering Applications" Polymers 12, no. 10: 2261. https://doi.org/10.3390/polym12102261
APA StyleMaiz-Fernández, S., Pérez-Álvarez, L., Ruiz-Rubio, L., Vilas-Vilela, J. L., & Lanceros-Mendez, S. (2020). Polysaccharide-Based In Situ Self-Healing Hydrogels for Tissue Engineering Applications. Polymers, 12(10), 2261. https://doi.org/10.3390/polym12102261