In Vitro and In Vivo Applications of Magnesium-Enriched Biomaterials for Vascularized Osteogenesis in Bone Tissue Engineering: A Review of Literature
Abstract
:1. Introduction
2. Mg-Based Orthopedic Implants for Clinical Use
2.1. MgYReZr (MAGNEZIX® CS)
2.2. Mg-Ca-Zn Screws
3. Mg-Based Metal for Promoting Vascularized Osteogenesis
3.1. Pure Mg
3.2. Coated Mg
3.3. Mg Alloy
4. Metal Materials Releasing Mg Ions
4.1. Titanium Alloy
4.2. Tantalum
5. Mg-Modified Calcium-Phosphate-Based Materials
5.1. Mg-Enriched Hydroxyapatite (MHA)
5.2. Mg-Enriched CaP Cements/Bioceramics
6. New Class of Biomaterial
6.1. Mg-Enriched Biodegradable Polymer
6.2. Mg-Enriched Hydrogels
6.2.1. Hydrogels from Synthetic Polymers
6.2.2. Gelatin Methacrylate
6.2.3. Injectable Hydrogel
6.3. Clay Nanoparticles
6.4. Nanomaterials
7. Mechanism Research
7.1. CGRP-Mediated Pathway
7.2. Pro-Osteogenic Immune Microenvironment
7.3. PI3K/AKT Pathway Signals
8. Conclusions and Prospects
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Tissue/Materials | Density (g/cm3) | Young’s Module (GPa) | Yield Strength (MPa) | Compression Strength (MPa) | Tensile Strength (MPa) | Fatigue Strength (MPa, 107 Cycles) | Author/Year |
---|---|---|---|---|---|---|---|
Cortical bone | 1.8–2.0 | 7–30 | NA | 100–230 | 164–240 | 27–35 | Zhao, D./2017 [4], Dragosloveanu, S./2021 [35] |
Cancellous bone | 1.0–1.4 | 0.01–3.0 | NA | 2–12 | NA | NA | Zhao, D./2017 [4] |
Pure Mg (99.9%, casted) | 1.74 | 41 | 21 | 40 | 87 | NA | Zhao, D./2017 [4], Staiger, M.P./2006 [18] |
Pure Mg (99.9%, wrought) | 1.74 | 41 | 100 | 100–140 | 180 | NA | Zhao, D./2017 [4], Staiger, M.P./2006 [18] |
MgYReZr | 1.84 | 45 | 235 | NA | Above 275 | NA | Zhao, D./2017 [4], Dragosloveanu, S./2021 [35], Ezechieli, M./2016 [36], Sontgen, S./2023 [37] |
Mg-Ca-Zn | 1.80 | NA | NA | 415 | 249 | NA | Cho, S. Y./2012 [38] |
Materials | Characteristic | Experiments | Animal Model | Functions | Author/ Year |
---|---|---|---|---|---|
Struvite Composite Cell-Laden Hydrogel | elastic modulus: approximately 7.26 × 103 Pa | in vitro | - | GelMA: has fluidity, stability, and degradability Composite: promotes osteogenesis and angiogenesis | Liu, C./2021 [121] |
Chitin-PBSu hydrogel system with 2%MBG and 2%FNPs | elastic modulus: approximately 1.45 × 105 Pa | in vitro | - | chitin-PBSu hydrogel: mimics the ECM; provides cues for the surrounding cells to proliferate; helps in healing the defect site FNPs: enhances the cell attachment and spreading; angiogenic property MBG: promotes higher protein adsorption for helping in better cell attachment and spreading; possess osteoinductive and angiogenic properties | Vishnu Priya, M./2016 [120] |
SAG hydrogel | the pore size ranged of freeze-dried porous scaffolds from 150 to 250 μm | in vivo | maxillary sinus floor elevation in rabbits | promotes bone formation via CXCR4 elevation and ERK signaling pathway | Zhang, X./2018 [100] |
injectable macroporous hydrogels | void ratio 73.04 ± 5.92% | in vivo | SD rat femur defects model | Mg-degradation-dependent H2-foaming method directly generated pores in cell-laden hydrogels while sustaining the injectability and cytocompatibility of the hydrogels | Tang, Y./2020 [123] |
Materials | Characteristic | Experiments | Animal Model | Angiogenesis Mechanism | Author/Year |
---|---|---|---|---|---|
Mg nail | Purity of 99.99% | in vivo | Critical size midshaft femur bone defect (5 mm in length) model | up-regulated the expression of CGRP, CGRP promoted the phosphorylation of FAK and elevated the expression of VEGFA | Ye, L./2021 [57] |
High-purity Mg pin | Length of 5 mm and diameter of 1 mm | in vivo | rat distraction osteogenesis model | via the regulation of VHL/HIF-1α/VEGF signaling | Hamushan, M./2020 [60] |
MCPC | Contain CPC powder, MPC powder and liquid phase (deionized water) | in vitro | - | Regulation of HUVEC angiogenesis in vitro by immune regulation of macrophages | Wang, M./2016 [97] |
microgel composite hydrogels | BMP-2/Mg2+ codelivery platform | in vivo | critical cranial defect mode | increase cellular bioenergetic levels to fuel osteogenesis, and thereby markedly promoted the osteoinductivity of BMP-2. | Lin, S./2022 [128] |
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Hu, J.; Shao, J.; Huang, G.; Zhang, J.; Pan, S. In Vitro and In Vivo Applications of Magnesium-Enriched Biomaterials for Vascularized Osteogenesis in Bone Tissue Engineering: A Review of Literature. J. Funct. Biomater. 2023, 14, 326. https://doi.org/10.3390/jfb14060326
Hu J, Shao J, Huang G, Zhang J, Pan S. In Vitro and In Vivo Applications of Magnesium-Enriched Biomaterials for Vascularized Osteogenesis in Bone Tissue Engineering: A Review of Literature. Journal of Functional Biomaterials. 2023; 14(6):326. https://doi.org/10.3390/jfb14060326
Chicago/Turabian StyleHu, Jie, Jiahui Shao, Gan Huang, Jieyuan Zhang, and Shuting Pan. 2023. "In Vitro and In Vivo Applications of Magnesium-Enriched Biomaterials for Vascularized Osteogenesis in Bone Tissue Engineering: A Review of Literature" Journal of Functional Biomaterials 14, no. 6: 326. https://doi.org/10.3390/jfb14060326