Nature-Inspired Unconventional Approaches to Develop 3D Bioceramic Scaffolds with Enhanced Regenerative Ability
Abstract
:1. Introduction: The Relevance of Biomimetism in Regenerative Materials
2. Bioactive Ion-Doped Nanohydroxyapatites
Doped Cations | Ionic Radius (Å) | Main Properties | Reference |
Mg2+ | 0.69 | enhanced biodegradability improved biocompatibility osteogenic antibacterial | [12,13,14,15,16] |
Sr2+ | 1.13 | improved biocompatibility osteogenic inhibit osteoclast activity improve mechanical properties | [17,18,19,20,21,22,23,24] |
Fe2+/Fe3+ | 0.84/0.66 | drug targeting bioseparation hyperthermia therapy growth of osteoblast | [25,26,27,41,42] |
Zn2+ | 0.74 | osteogenic promotes osteoblast proliferation cell growth and differentiation antibacterial | [28,29,30] |
Ag+ | 1.28 | antibacterial | [31,32] |
Doped Anions | Ionic Radius (Å) | Main Properties | Reference |
CO32− | 1.78 | enhanced solubility enhanced biodegradability improved biocompatibility osteoconductivity increased collagen production | [10,33,34,43] |
SiO44− | 2.40 | biomineralisation osteogenic increased bioactivity growth of osteoblast enhanced cell proliferation more efficient differentiation | [39,40,44,45] |
F− | 1.19 | biomineralisation osteogenic less soluble in acidic solutions influences cell behaviour and responsiveness antibacterial | [27,28,29] |
3. Chemically Consolidated Calcium Phosphates as 3D Injectable Scaffolds
4. Three-Dimensional (3D) Hybrid Scaffolds for Regeneration of Multifunctional Anatomical Tissues
5. Biomorphic Transformations: A Novel Approach to Generate Bone Scaffolds with Biomorphic, Hierarchical Architecture
6. Conclusions and Future Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Method | Synthesis Conditions | Characteristic of HA |
---|---|---|
Precipitation |
| Preferentially rod-like morphology High production of pure product |
Hydrothermal |
| Versatility of morphology (from rod- to plat-like) |
Sol–gel |
| Finest HA nanoparticles (up to 20–50 nm) |
Biomimetic deposition |
| Applied to make bone-like nanocrystals apatite layer |
Microwave |
| Smaller particle size Good purity Closer size distribution |
Acronym | Compound | Chemical Formula | Ca/P Molar Ratio | Solubility (pKs) | pH Stability |
---|---|---|---|---|---|
MCPM | Monocalcium phosphate monohydrate | Ca(H2PO4)2·H2O | 0.5 | 1.14 | 0.0–2.0 |
DCPD | Dicalcium Phosphate Dihydrate (Brushite) | CaHPO4·2H2O | 1.0 | 6.6 | 2.0–6.0 |
α-TCP | α-Tricalcium Phosphate | α-Ca3(PO4)2 | 1.5 | 25.5 | does not precipitate in aqueous solution |
β-TCP | β-Tricalcium Phosphate | β-Ca3(PO4)2 | 1.5 | 29.5 | does not precipitate in aqueous solution |
CDHA | Calcium Deficient Hydroxyapatite | Ca10−x(HPO4)x(PO4)6−x (OH)2−x (0 < x < 1) | 1.5–1.67 | <42.6 | 6.5–9.5 |
HA | Hydroxyapatite | Ca10(PO4)6(OH)2 | 1.67 | 58.6 | 4.5–12.0 |
TTCP | Tetracalcium phosphate | Ca4(PO4)2O | 2.0 | 37–42 | does not precipitate in aqueous solution |
Reactives | Product | Type of Reaction | Setting Mechanism | |
---|---|---|---|---|
Apatitic | α-TCP (single component) | CDHA | Hydrolysis | α-TCP (dissolution) → CDHA (precipitation) |
Apatitic | TTCP + DCPD (multiple component) | HA | Acid-Base | TTCP/DCPD (dissolution) → HA (precipitation) |
Brushitic | β-TCP + MCPM (multiple component) | DCPD | Acid-base | β-TCP/MCPM (dissolution) → DCPD (precipitation) |
Additives | CPCs Findings | References |
---|---|---|
Alginate | improved the injectability, high porosity, stronger and easy to handle | [77,78,79] |
Chitosan | improved cohesion, higher compressive strength, prolonged setting time | [78,80] |
Collagen | increase of new bone formation, increase in resorption rate | [81,82] |
Gelatine | porogen, prolonged final setting time, promote cell adhesion, enhanced degradation, improve handling and cohesion | [83,84] |
Hyaluronic acid | facilitates bone repair effects by accelerating osteogenic expression, more bone formation, higher osteogenic promoting factors secretion | [85,86] |
Hydroxypropyl methylcellulose | good injectability and cohesion, reduced the setting time, increased the porosity after hardening, especially the macroporosity, improved the mechanical properties strong toughening and strengthening effect) | [87,88] |
PLGA microspheres | porogen, accelerate the degradation, increase plasticity | [89,90] |
Starch | porogen, increasing of setting time, detrimental effect on the compressive strength | [91,92] |
Characteristics | Advantages | Disadvantages | References | |
---|---|---|---|---|
Collagen |
|
|
| [120,124,141,142] |
Gelatin |
|
|
| [143,144,145,146] |
Silk fibre |
|
|
| [147,148,149] |
Chitosan |
|
|
| [150,151,152] |
Alginate |
|
|
| [153,154,155] |
Cellulose |
|
|
| [136,145] |
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Ruffini, A.; Sandri, M.; Dapporto, M.; Campodoni, E.; Tampieri, A.; Sprio, S. Nature-Inspired Unconventional Approaches to Develop 3D Bioceramic Scaffolds with Enhanced Regenerative Ability. Biomedicines 2021, 9, 916. https://doi.org/10.3390/biomedicines9080916
Ruffini A, Sandri M, Dapporto M, Campodoni E, Tampieri A, Sprio S. Nature-Inspired Unconventional Approaches to Develop 3D Bioceramic Scaffolds with Enhanced Regenerative Ability. Biomedicines. 2021; 9(8):916. https://doi.org/10.3390/biomedicines9080916
Chicago/Turabian StyleRuffini, Andrea, Monica Sandri, Massimiliano Dapporto, Elisabetta Campodoni, Anna Tampieri, and Simone Sprio. 2021. "Nature-Inspired Unconventional Approaches to Develop 3D Bioceramic Scaffolds with Enhanced Regenerative Ability" Biomedicines 9, no. 8: 916. https://doi.org/10.3390/biomedicines9080916
APA StyleRuffini, A., Sandri, M., Dapporto, M., Campodoni, E., Tampieri, A., & Sprio, S. (2021). Nature-Inspired Unconventional Approaches to Develop 3D Bioceramic Scaffolds with Enhanced Regenerative Ability. Biomedicines, 9(8), 916. https://doi.org/10.3390/biomedicines9080916