Role of Iron Oxide (Fe2O3) Nanocomposites in Advanced Biomedical Applications: A State-of-the-Art Review
Abstract
:1. Introduction
2. Structure of Iron oxide Nano Particles
3. Drug Delivery Application of Fe2O3-Based Nanocomposites
4. Fe2O3 in Magnetic-Responsive Drug Delivery Systems
5. Biocompatibility and Toxicity of Fe2O3-Related Drug Carriers
6. Tissue Engineering Applications of Fe2O3-Based Nanocomposite
Fe2O3-Based Nanocomposites in Bone Tissue Regeneration
7. Wound Healing Applications of Fe2O3-Based Nanocomposite
Scaffold Type | Scaffold Fabrication Method | Effects of IONPs on the Scaffold | Ref. |
---|---|---|---|
Magnetic hydrogels | nanohydroxyapatite-coated γ-Fe2O3(around 10 wt%)/PVA composite hydrogels | remarkable influence on the porous structures average pore diameter of: 1.6 ± 0.3 μm enhancing compressive strength: 29.6 ± 6.5 MPa positive impact on osteoblasts adhesion and proliferation | [211] |
Magnetic hydrogels | hyaluronic acid/chondroitin sulfate/Fe2O3/nHAP/PVA hydrogels | Promotion of chondrocyte adhesion, proliferation, and growth | [212] |
Electrospinning | electrospun PCL incorporated by dendrimerized superparamagnetic nanoparticles | Significantly decreases the PCL nanofibers size to 495 ± 144 nm and improves cell attachment and growth | [213] |
Electrospinning | γ-Fe2O3 nanoparticles filled polyvinyl alcohol | higher fiber diameter and surface roughness higher cells proliferation rate | [214] |
Electrospinning | A novel nanofibrous composite scaffold composed of super-paramagnetic γ-Fe2O3 nanoparticles (MNP), hydroxyapatite nanoparticles (nHA) and poly lactide acid (PLA) | MNPs accelerates new bone tissue formation and remodeling in the rabbit defect. | [177] |
Electrospinning | poly(vinyl alcohol) filled by γ-Fe2O3 nanoparticles | maximum Young’s modulus (273.51 MPa) cell viability and cell growth rate | [215] |
Magnetic Hydrogel | Poly(vinyl alcohol)/nano-hydroxyapatite (n-HA)/magnetic nanoparticles (Fe2O3) fibers | Enhancing scaffold’s mechanical properties Uniform and enhanced growth of BMSCs on the surface High rates of proliferation Significant simulated chondrocyte-related gene expression | [216] |
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Iqbal, M.Z.; Wu, A.; Shi, D.; Liu, Q. Magnetic Nanohybrids for Magnetic Resonance Imaging and Phototherapy Applications. In Tissue Engineering and Nanotheranostics; World Scientific: Singapore, 2018; pp. 101–149. [Google Scholar] [CrossRef]
- Pourmadadi, M.; Ahmadi, M.; Abdouss, M.; Yazdian, F.; Rashedi, H.; Navaei-Nigjeh, M.; Hesari, Y. The synthesis and characterization of double nanoemulsion for targeted Co-Delivery of 5-fluorouracil and curcumin using pH-sensitive agarose/chitosan nanocarrier. J. Drug Deliv. Sci. Technol. 2022, 70, 102849. [Google Scholar] [CrossRef]
- Brero, F.; Albino, M.; Antoccia, A.; Arosio, P.; Avolio, M.; Berardinelli, F.; Bettega, D.; Calzolari, P.; Ciocca, M.; Corti, M.; et al. Hadron Therapy, Magnetic Nanoparticles and Hyperthermia: A Promising Combined Tool for Pancreatic Cancer Treatment. Nanomaterials 2020, 10, 1919. [Google Scholar] [CrossRef] [PubMed]
- Ferreira, L.P.; Reis, C.P.; Robalo, T.T.; Jorge, M.E.M.; Ferreira, P.; Gonçalves, J.; Hajalilou, A.; Cruz, M.M. Assisted Synthesis of Coated Iron Oxide Nanoparticles for Magnetic Hyperthermia. Nanomaterials 2022, 12, 1870. [Google Scholar] [CrossRef] [PubMed]
- Pourmadadi, M.; Farokh, A.; Rahmani, E.; Shamsabadipour, A.; Eshaghi, M.M.; Rahdar, A.; Ferreira, L.F.R. Porous alumina as potential nanostructures for drug delivery applications, synthesis and characteristics. J. Drug Deliv. Sci. Technol. 2022, 77, 103877. [Google Scholar] [CrossRef]
- Samadi, A.; Haseli, S.; Pourmadadi, M.; Rashedi, H.; Yazdian, F.; Navaei-Nigjeh, M. Curcumin-loaded chitosan-agarose-montmorillonite hydrogel nanocomposite for the treatment of breast cancer. In Proceedings of the 2020 27th National and 5th International Iranian Conference on Biomedical Engineering (ICBME), Tehran, Iran, 26–27 November 2020. [Google Scholar] [CrossRef]
- Mirzaie, Z.; Barati, M.; Tokmedash, M.A. Anticancer Drug Delivery Systems Based on Curcumin Nanostructures: A Review. Pharm. Chem. J. 2020, 54, 353–360. [Google Scholar] [CrossRef]
- Tokmedash, M.A.; Zadeh, E.S.; Balouchi, E.N.; Salehi, Z.; Ardestani, M.S. Synthesis of smart carriers based on tryptophan-functionalized magnetic nanoparticles and its application in 5-fluorouracil delivery. Biomed. Mater. 2022, 17, 045026. [Google Scholar] [CrossRef]
- Fusser, M.; Øverbye, A.; Pandya, A.D.; Mørch, Ý.; Borgos, S.E.; Kildal, W.; Snipstad, S.; Sulheim, E.; Fleten, K.G.; Askautrud, H.A.; et al. Cabazitaxel-loaded Poly(2-ethylbutyl cyanoacrylate) nanoparticles improve treatment efficacy in a patient derived breast cancer xenograft. J. Control. Release 2019, 293, 183–192. [Google Scholar] [CrossRef]
- Samadi, A.; Pourmadadi, M.; Yazdian, F.; Rashedi, H.; Navaei-Nigjeh, M.; Eufrasio-da-Silva, T. Ameliorating quercetin constraints in cancer therapy with pH-responsive agarose-polyvinylpyrrolidone-hydroxyapatite nanocomposite encapsulated in double nanoemulsion. Int. J. Biol. Macromol. 2021, 182, 11–25. [Google Scholar] [CrossRef]
- Gao, X.; Wang, B.; Wei, X.; Men, K.; Zheng, F.; Zhou, Y.; Zheng, Y.; Gou, M.; Huang, M.; Guo, G.; et al. Anticancer effect and mechanism of polymer micelle-encapsulated quercetin on ovarian cancer. Nanoscale 2012, 4, 7021–7030. [Google Scholar] [CrossRef]
- Haseli, S.; Pourmadadi, M.; Samadi, A.; Yazdian, F.; Abdouss, M.; Rashedi, H.; Navaei-Nigjeh, M. A novel pH-responsive nanoniosomal emulsion for sustained release of curcumin from a chitosan-based nanocarrier: Emphasis on the concurrent improvement of loading, sustained release, and apoptosis induction. Biotechnol. Prog. 2022, 38, e3280. [Google Scholar] [CrossRef]
- Foroushani, P.H.; Rahmani, E.; Alemzadeh, I.; Vossoughi, M.; Pourmadadi, M.; Rahdar, A.; Díez-Pascual, A.M. Curcumin Sustained Release with a Hybrid Chitosan-Silk Fibroin Nanofiber Containing Silver Nanoparticles as a Novel Highly Efficient Antibacterial Wound Dressing. Nanomaterials 2022, 12, 3426. [Google Scholar] [CrossRef] [PubMed]
- Rahmani, E.; Pourmadadi, M.; Ghorbanian, S.A.; Yazdian, F.; Rashedi, H.; Navaee, M. Preparation of a pH-responsive chitosan-montmorillonite-nitrogen-doped carbon quantum dots nanocarrier for attenuating doxorubicin limitations in cancer therapy. Eng. Life Sci. 2022, 22, 634–649. [Google Scholar] [CrossRef] [PubMed]
- Lee, A.L.; Wang, Y.; Cheng, H.Y.; Pervaiz, S.; Yang, Y.Y. The co-delivery of paclitaxel and Herceptin using cationic micellar nanoparticles. Biomaterials 2009, 30, 919–927. [Google Scholar] [CrossRef] [PubMed]
- Sun, C.; Lee, J.S.H.; Zhang, M. Magnetic nanoparticles in MR imaging and drug delivery. Adv. Drug Deliv. Rev. 2008, 60, 1252–1265. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Darbandi, M.; Stromberg, F.; Landers, J.; Reckers, N.; Sanyal, B.; Keune, W.; Wende, H. Nanoscale size effect on surface spin canting in iron oxide nanoparticles synthesized by the microemulsion method. J. Phys. D Appl. Phys. 2012, 45, 195001. [Google Scholar] [CrossRef]
- Yu, M.K.; Park, J.; Jon, S. Targeting Strategies for Multifunctional Nanoparticles in Cancer Imaging and Therapy. Theranostics 2012, 2, 3–44. [Google Scholar] [CrossRef] [Green Version]
- Kanwar, J.R.; Roy, K.; Kanwar, R.K. Chimeric aptamers in cancer cell-targeted drug delivery. Crit. Rev. Biochem. Mol. Biol. 2011, 46, 459–477. [Google Scholar] [CrossRef]
- Rahdar, S.; Rahdar, A.; Ahmadi, S.; Trant, J. Adsorption of bovine serum albumin (BSA) by bare magnetite nanoparticles with surface oxidative impurities that prevent aggregation. Can. J. Chem. 2019, 97, 577–583. [Google Scholar] [CrossRef]
- Davarpanah, A.M.; Rahdar, A.; Dastnae, M.A.; Zeybek, O.; Beyzaei, H. (1-x) BaFe12O19/xCoFe2O4 hard/soft magnetic nanocomposites: Synthesis, physical characterization, and antibacterial activities study. J. Mol. Struct. 2019, 1175, 445–449. [Google Scholar] [CrossRef]
- Taimoory, S.M.; Rahdar, A.; Aliahmad, M.; Sadeghfar, F.; Hajinezhad, M.R.; Jahantigh, M.; Shahbazi, P.; Trant, J.F. The synthesis and characterization of a magnetite nanoparticle with potent antibacterial activity and low mammalian toxicity. J. Mol. Liq. 2018, 265, 96–104. [Google Scholar] [CrossRef]
- Nouri Hajbaba, M.; Pourmadadi, M.; Yazdian, F.; Rashedi, H.; Abdouss, M.; Zhohrabi, D.S. The Function of Chitosan/Agarose Biopolymer on Fe2O3 Nanoparticles and Evaluation of Their Effects on MCF-7 Breast Cancer Cell Line and Expression of BCL2 and BAX Genes. Biotechnol. Prog. 2022, e3305. [Google Scholar] [CrossRef] [PubMed]
- Pourmadadi, M.; Ahmadi, M.J.; Dinani, H.S.; Ajalli, N.; Dorkoosh, F. Theranostic applications of stimulus-responsive systems based on Fe2O3. Pharm. Nanotechnol. 2022, 10, 90–112. [Google Scholar] [CrossRef] [PubMed]
- Qiao, Z.; Shi, X. Dendrimer-based molecular imaging contrast agents. Prog. Polym. Sci. 2015, 44, 1–27. [Google Scholar] [CrossRef]
- Rahdar, A.; Taboada, P.; Aliahmad, M.; Hajinezhad, M.R.; Sadeghfar, F. Iron oxide nanoparticles: Synthesis, physical characterization, and intraperitoneal biochemical studies in Rattus norvegicus. J. Mol. Struct. 2018, 1173, 240–245. [Google Scholar] [CrossRef]
- Ahmadi, M.; Pourmadadi, M.; Ghorbanian, S.A.; Yazdian, F.; Rashedi, H. Ultra pH-sensitive nanocarrier based on Fe2O3/chitosan/montmorillonite for quercetin delivery. Int. J. Biol. Macromol. 2021, 191, 738–745. [Google Scholar] [CrossRef] [PubMed]
- Mishra, M.; Chun, D.-M. α-Fe2O3 as a photocatalytic material: A review. Appl. Catal. A Gen. 2015, 498, 126–141. [Google Scholar] [CrossRef]
- Debnath, N.C.; Anderson, A.B. Optical Spectra of Ferrous and Ferric Oxides and the Passive Film: A Molecular Orbital Study. J. Electrochem. Soc. 1982, 129, 2169–2174. [Google Scholar] [CrossRef]
- Xing, R.; Lin, H.; Jiang, P.; Qu, F. Biofunctional mesoporous silica nanoparticles for magnetically oriented target and pH-responsive controlled release of ibuprofen. Colloids Surf. A Physicochem. Eng. Asp. 2012, 403, 7–14. [Google Scholar] [CrossRef]
- Ye, Y.; Chen, H.; Zou, Y.; Ye, Y.; Zhao, H. Corrosion protective mechanism of smart graphene-based self-healing coating on carbon steel. Corros. Sci. 2020, 174, 108825. [Google Scholar] [CrossRef]
- Korkut, S.E.; Akyüz, D.; Özdoğan, K.; Yerli, Y.; Koca, A.; Şener, M.K. TEMPO-functionalized zinc phthalocyanine: Synthesis, magnetic properties, and its utility for electrochemical sensing of ascorbic acid. Dalton Trans. 2016, 45, 3086–3092. [Google Scholar] [CrossRef]
- Shahriari, M.; Zahiri, M.; Abnous, K.; Taghdisi, S.M.; Ramezani, M.; Alibolandi, M. Enzyme responsive drug delivery systems in cancer treatment. J. Control. Release 2019, 308, 172–189. [Google Scholar] [CrossRef] [PubMed]
- Li, R.; Peng, F.; Cai, J.; Yang, D.; Zhang, P. Redox dual-stimuli responsive drug delivery systems for improving tumor-targeting ability and reducing adverse side effects. Asian J. Pharm. Sci. 2020, 15, 311–325. [Google Scholar] [CrossRef] [PubMed]
- Hasan, A.; Morshed, M.; Memic, A.; Hassan, S.; Webster, T.J.; Marei, H. Nanoparticles in tissue engineering: Applications, challenges and prospects. Int. J. Nanomed. 2018, 13, 5637–5655. [Google Scholar] [CrossRef] [Green Version]
- Xu, Y.; Xiao, L.; Chang, Y.; Cao, Y.; Chen, C.; Wang, D. pH and redox dual-responsive MSN-SS-CS as a drug delivery system in cancer therapy. Materials 2020, 13, 1279. [Google Scholar] [CrossRef] [Green Version]
- Pourmadadi, M.; Eshaghi, M.M.; Ostovar, S.; Shamsabadipour, A.; Safakhah, S.; Mousavi, M.S.; Rahdar, A.; Pandey, S. UiO-66 metal-organic framework nanoparticles as gifted MOFs to the biomedical application: A comprehensive review. J. Drug Deliv. Sci. Technol. 2022, 76, 103758. [Google Scholar] [CrossRef]
- Abdullah, N.H.; Shameli, K.; Abdullah, E.C.; Abdullah, L.C. Solid matrices for fabrication of magnetic iron oxide nanocomposites: Synthesis, properties, and application for the adsorption of heavy metal ions and dyes. Compos. Part B Eng. 2019, 162, 538–568. [Google Scholar] [CrossRef]
- Eivazzadeh-Keihan, R.; Bahojb Noruzi, E.; Khanmohammadi Chenab, K.; Jafari, A.; Radinekiyan, F.; Hashemi, S.M.; Ahmadpour, F.; Behboudi, A.; Mosafer, J.; Mokhtarzadeh, A.; et al. Metal-based nanoparticles for bone tissue engineering. J. Tissue Eng. Regen. Med. 2020, 14, 1687–1714. [Google Scholar] [CrossRef] [PubMed]
- Kim, K.; Fisher, J.P. Nanoparticle technology in bone tissue engineering. J. Drug Target. 2007, 15, 241–252. [Google Scholar] [CrossRef]
- Zhang, S.; Vijayavenkataraman, S.; Lu, W.F.; Fuh, J.Y. A review on the use of computational methods to characterize, design, and optimize tissue engineering scaffolds, with a potential in 3D printing fabrication. J. Biomed. Mater. Res. Part B Appl. Biomater. 2019, 107, 1329–1351. [Google Scholar] [CrossRef]
- Eltom, A.; Zhong, G.; Muhammad, A. Scaffold Techniques and Designs in Tissue Engineering Functions and Purposes: A Review. Adv. Mater. Sci. Eng. 2019, 2019, 3429527. [Google Scholar] [CrossRef] [Green Version]
- Rajendran, N.K.; Kumar, S.S.D.; Houreld, N.N.; Abrahamse, H. A review on nanoparticle based treatment for wound healing. J. Drug Deliv. Sci. Technol. 2018, 44, 421–430. [Google Scholar] [CrossRef]
- Chai, M.; Tong, W.; Wang, Z.; Chen, Z.; An, Y.; Zhang, Y. Piezoelectric-Fenton degradation and mechanism study of Fe2O3/PVDF-HFP porous film drove by flowing water. J. Hazard. Mater. 2022, 430, 128446. [Google Scholar] [CrossRef] [PubMed]
- Harandi, F.N.; Khorasani, A.C.; Shojaosadati, S.A.; Hashemi-Najafabadi, S. Surface modification of electrospun wound dressing material by Fe2O3 nanoparticles incorporating Lactobacillus strains for enhanced antimicrobial and antibiofilm activity. Surfaces Interfaces 2022, 28, 101592. [Google Scholar] [CrossRef]
- Raisi, A.; Asefnejad, A.; Shahali, M.; Doozandeh, Z.; Kamyab Moghadas, B.; Saber-Samandari, S.; Khandan, A. A soft tissue fabricated using a freeze-drying technique with carboxymethyl chitosan and nanoparticles for promoting effects on wound healing. J. Nanoanalysis 2020, 7, 262–274. [Google Scholar]
- Tadic, M.; Kopanja, L.; Panjan, M.; Lazovic, J.; Tadic, B.V.; Stanojevic, B.; Motte, L. Rhombohedron and plate-like hematite (α-Fe2O3) nanoparticles: Synthesis, structure, morphology, magnetic properties and potential biomedical applications for MRI. Mater. Res. Bull. 2021, 133, 111055. [Google Scholar] [CrossRef]
- Dash, P.; Raut, S.; Jena, M.; Nayak, B. Harnessing the biomedical properties of ferromagnetic α-Fe2O3 NPs with a plausible formation mechanism. Ceram. Int. 2020, 46, 26190–26204. [Google Scholar] [CrossRef]
- Shahrousvand, M.; Hoseinian, M.S.; Ghollasi, M.; Karbalaeimahdi, A.; Salimi, A.; Tabar, F.A. Flexible magnetic polyurethane/Fe2O3 nanoparticles as organic-inorganic nanocomposites for biomedical applications: Properties and cell behavior. Mater. Sci. Eng. C 2017, 74, 556–567. [Google Scholar] [CrossRef]
- Zhao, G.; Wang, J.; Peng, X.; Li, Y.; Yuan, X.; Ma, Y. Facile solvothermal synthesis of mesostructured Fe3O4/chitosan nanoparticles as delivery vehicles for ph-responsive drug delivery and magnetic resonance imaging contrast agents. Chem.–Asian J. 2014, 9, 546–553. [Google Scholar] [CrossRef]
- Gao, W.; Chan, J.M.; Farokhzad, O.C. pH-responsive nanoparticles for drug delivery. Mol. Pharm. 2010, 7, 1913–1920. [Google Scholar] [CrossRef]
- Colombo, P.; Sonvico, F.; Colombo, G.; Bettini, R. Novel Platforms for Oral Drug Delivery. Pharm. Res. 2009, 26, 601–611. [Google Scholar] [CrossRef]
- Wang, B.; Xu, C.; Xie, J.; Yang, Z.; Sun, S. pH controlled release of chromone from chromone-Fe3O4 nanoparticles. J. Am. Chem. Soc. 2008, 130, 14436–14437. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhang, Q.; Liu, F.; Nguyen, K.T.; Ma, X.; Wang, X.; Xing, B.; Zhao, Y. Multifunctional Mesoporous Silica Nanoparticles for Cancer-Targeted and Controlled Drug Delivery. Adv. Funct. Mater. 2012, 22, 5144–5156. [Google Scholar] [CrossRef]
- Murphy, R.F.; Powers, S.; Cantor, C.R. Endosome pH measured in single cells by dual fluorescence flow cytometry: Rapid acidification of insulin to pH 6. J. Cell Biol. 1984, 98, 1757–1762. [Google Scholar] [CrossRef] [PubMed]
- Majewski, A.P.; Schallon, A.; Jérôme, V.; Freitag, R.; Müller, A.H.E.; Schmalz, H. Dual-Responsive Magnetic Core–Shell Nanoparticles for Nonviral Gene Delivery and Cell Separation. Biomacromolecules 2012, 13, 857–866. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Shoaib, M.; Bahadur, A.; Saeed, A.; Rahman, M.S.U.; Naseer, M.M. Biocompatible, pH-responsive, and biodegradable polyurethanes as smart anti-cancer drug delivery carriers. React. Funct. Polym. 2018, 127, 153–160. [Google Scholar] [CrossRef]
- Medina-Reyes, E.-I.; Garcia-Viacobo, D.; Martinez, F.A.C.; Chirino, Y.I. Applications and Risks of Nanomaterials Used in Regenerative Medicine, Delivery Systems, Theranostics, and Therapy. Crit. Rev. Ther. Drug Carr. Syst. 2017, 34, 35–61. [Google Scholar] [CrossRef]
- Nabid, M.R.; Omrani, I. Facile preparation of pH-responsive polyurethane nanocarrier for oral delivery. Mater. Sci. Eng. C 2016, 69, 532–537. [Google Scholar] [CrossRef]
- Wang, H.; Liu, G.; Gao, H.; Wang, Y. A pH-responsive drug delivery system with an aggregation-induced emission feature for cell imaging and intracellular drug delivery. Polym. Chem. 2015, 6, 4715–4718. [Google Scholar] [CrossRef]
- Yan, L.; Chen, X.; Wang, Z.; Zhang, X.; Zhu, X.; Zhou, M.; Chen, W.; Huang, L.; Roy, V.A.L.; Yu, P.K.N.; et al. Size Controllable and Surface Tunable Zeolitic Imidazolate Framework-8–Poly(acrylic acid sodium salt) Nanocomposites for pH Responsive Drug Release and Enhanced in Vivo Cancer Treatment. ACS Appl. Mater. Interfaces 2017, 9, 32990–33000. [Google Scholar] [CrossRef]
- Polat, T.G.; Topel, S.D. pH-responsive carboxymethyl cellulose conjugated superparamagnetic iron oxide nanocarriers. J. Sci. Perspect. 2019, 3, 99–110. [Google Scholar]
- Maiti, D.; Mukhopadhyay, S.; Mohanta, S.C.; Saha, A.; Devi, P.S. A multifunctional nanocomposite of magnetic γ-Fe2O3 and mesoporous fluorescent ZnO. J. Alloys Compd. 2015, 653, 187–194. [Google Scholar] [CrossRef]
- Zhao, C.; Qiao, X.; Shao, Q.; Hassan, M.; Ma, Z. Evolution of the Lignin Chemical Structure during the Bioethanol Production Process and Its Inhibition to Enzymatic Hydrolysis. Energy Fuels 2020, 34, 5938–5947. [Google Scholar] [CrossRef]
- Gerami, S.E.; Pourmadadi, M.; Fatoorehchi, H.; Yazdian, F.; Rashedi, H.; Nigjeh, M.N. Preparation of pH-sensitive chitosan/polyvinylpyrrolidone/α-Fe2O3 nanocomposite for drug delivery application: Emphasis on ameliorating restrictions. Int. J. Biol. Macromol. 2021, 173, 409–420. [Google Scholar] [CrossRef] [PubMed]
- Al-Zahrani, F.A.; Salem, S.S.; Al-Ghamdi, H.A.; Nhari, L.M.; Lin, L.; El-Shishtawy, R.M. Green Synthesis and Antibacterial Activity of Ag/Fe2O3 Nanocomposite Using Buddleja lindleyana Extract. Bioengineering 2022, 9, 452. [Google Scholar] [CrossRef]
- Li, S.; Zhang, R.; Wang, D.; Feng, L.; Cui, K. Synthesis of hollow maghemite (γ-Fe2O3) particles for magnetic field and pH-responsive drug delivery and lung cancer treatment. Ceram. Int. 2021, 47, 7457–7464. [Google Scholar] [CrossRef]
- Patil, P.; Parit, S.; Waifalkar, P.; Patil, S.; Dongale, T.; Sahoo, S.C.; Kollu, P.; Nimbalkar, M.; Chougale, A. pH triggered curcumin release and antioxidant activity of curcumin loaded γ-Fe2O3 magnetic nanoparticles. Mater. Lett. 2018, 223, 178–181. [Google Scholar] [CrossRef]
- Li, D.Q.; Wang, S.Y.; Meng, Y.J.; Li, J.F.; Li, J. An injectable, self-healing hydrogel system from oxidized pectin/chitosan/γ-Fe2O3. Int. J. Biol. Macromol. 2020, 164, 4566–4574. [Google Scholar] [CrossRef]
- Li, Y.; Liu, Y.; Kim, E.; Song, Y.; Tsao, C.-Y.; Teng, Z.; Gao, T.; Mei, L.; Bentley, W.E.; Payne, G.F.; et al. Electrodeposition of a magnetic and redox-active chitosan film for capturing and sensing metabolic active bacteria. Carbohydr. Polym. 2018, 195, 505–514. [Google Scholar] [CrossRef]
- Arai, R.; Li, M.; Toyoda, R.; Maeda, H.; Nishihara, H. Redox-active, luminescent coordination nanosheet capsules containing magnetite. Sci. Rep. 2020, 10, 13818. [Google Scholar] [CrossRef]
- Akhtar, H.; Pourmadadi, M.; Yazdian, F.; Rashedi, H. Kosmotropic and chaotropic effect of biocompatible Fe3O4 nanoparticles on egg white lysozyme; the key role of nanoparticle-protein corona formation. J. Mol. Struct. 2022, 1253, 132016. [Google Scholar] [CrossRef]
- Gong, T.; Yang, X.; Fang, J.-J.; Sui, Q.; Xi, F.-G.; Gao, E.-Q. Distinct Chromic and Magnetic Properties of Metal–Organic Frameworks with a Redox Ligand. ACS Appl. Mater. Interfaces 2017, 9, 5503–5512. [Google Scholar] [CrossRef] [PubMed]
- Mousavi, S.D.; Maghsoodi, F.; Panahandeh, F.; Yazdian-Robati, R.; Reisi-Vanani, A.; Tafaghodi, M. Doxorubicin delivery via magnetic nanomicelles comprising from reduction-responsive poly (ethylene glycol)-b-poly (ε-caprolactone)(PEG-SS-PCL) and loaded with superparamagnetic iron oxide (SPIO) nanoparticles: Preparation, characterization and simulation. Mater. Sci. Eng. C 2018, 92, 631–643. [Google Scholar] [CrossRef] [PubMed]
- Ren, S.; Yang, J.; Ma, L.; Li, X.; Wu, W.; Liu, C.; He, J.; Miao, L. Ternary-Responsive Drug Delivery with Activatable Dual Mode Contrast-Enhanced in Vivo Imaging. ACS Appl. Mater. Interfaces 2018, 10, 31947–31958. [Google Scholar] [CrossRef]
- Stephen, Z.R.; Kievit, F.M.; Veiseh, O.; Chiarelli, P.A.; Fang, C.; Wang, K.; Hatzinger, S.J.; Ellenbogen, R.G.; Silber, J.R.; Zhang, M. Redox-Responsive Magnetic Nanoparticle for Targeted Convection-Enhanced Delivery of O6-Benzylguanine to Brain Tumors. ACS Nano 2014, 8, 10383–10395. [Google Scholar] [CrossRef] [Green Version]
- Irshad, S.; Siddiqui, B.; ur.Rehman, A.; Farooq, R.K.; Ahmed, N. Recent trends and development in targeted delivery of therapeutics through enzyme responsive intelligent nanoplatform. Int. J. Polym. Mater. Polym. Biomater. 2020, 71, 403–413. [Google Scholar] [CrossRef]
- Ansari, C.; Tikhomirov, G.; Hong, S.H.; Falconer, R.; Loadman, P.; Gill, J.; Castaneda, R.; Hazard, F.K.; Tong, L.; Lenkov, O.D.; et al. Development of Novel Tumor-Targeted Theranostic Nanoparticles Activated by Membrane-Type Matrix Metalloproteinases for Combined Cancer Magnetic Resonance Imaging and Therapy. Small 2014, 10, 566–575. [Google Scholar] [CrossRef] [PubMed]
- Yang, Y.; Aw, J.; Chen, K.; Liu, F.; Padmanabhan, P.; Hou, Y.; Cheng, Z.; Xing, B. Enzyme-Responsive Multifunctional Magnetic Nanoparticles for Tumor Intracellular Drug Delivery and Imaging. Chem.-Asian J. 2011, 6, 1381–1389. [Google Scholar] [CrossRef] [PubMed]
- Estelrich, J.; Escribano, E.; Queralt, J.; Busquets, M.A. Iron Oxide Nanoparticles for Magnetically-Guided and Magnetically-Responsive Drug Delivery. Int. J. Mol. Sci. 2015, 16, 8070–8101. [Google Scholar] [CrossRef] [Green Version]
- Issa, B.; Obaidat, I.M.; Albiss, B.A.; Haik, Y. Magnetic Nanoparticles: Surface Effects and Properties Related to Biomedicine Applications. Int. J. Mol. Sci. 2013, 14, 21266–21305. [Google Scholar] [CrossRef] [Green Version]
- Wagstaff, A.J.; Brown, S.D.; Holden, M.R.; Craig, G.E.; Plumb, J.A.; Brown, R.E.; Schreiter, N.; Chrzanowski, W.; Wheate, N.J. Cisplatin drug delivery using gold-coated iron oxide nanoparticles for enhanced tumour targeting with external magnetic fields. Inorganica Chim. Acta 2012, 393, 328–333. [Google Scholar] [CrossRef]
- Lyon, J.L.; Fleming, D.A.; Stone, M.B.; Schiffer, A.P.; Williams, M.E. Synthesis of Fe Oxide Core/Au Shell Nanoparticles by Iterative Hydroxylamine Seeding. Nano Lett. 2004, 4, 719–723. [Google Scholar] [CrossRef]
- Brown, S.D.; Nativo, P.; Smith, J.-A.; Stirling, D.; Edwards, P.R.; Venugopal, B.; Flint, D.J.; Plumb, J.A.; Graham, D.; Wheate, N.J. Gold Nanoparticles for the Improved Anticancer Drug Delivery of the Active Component of Oxaliplatin. J. Am. Chem. Soc. 2010, 132, 4678–4684. [Google Scholar] [CrossRef] [PubMed]
- Craig, G.E.; Brown, S.D.; Lamprou, D.A.; Graham, D.; Wheate, N.J. Cisplatin-tethered gold nanoparticles that exhibit enhanced reproducibility, drug loading, and stability: A step closer to pharmaceutical approval? Inorg. Chem. 2012, 51, 3490–3497. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Unterweger, H.; Tietze, R.; Janko, C.; Zaloga, J.; Lyer, S.; Taccardi, N.; Goudouri, M.; Hoppe, A.; Eberbeck, D.; Schubert, D.; et al. Development and characterization of magnetic iron oxide nanoparticles with a cisplatin-bearing polymer coating for targeted drug delivery. Int. J. Nanomed. 2014, 9, 3659–3676. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Mattheolabakis, G.; Milane, L.; Singh, A.; Amiji, M.M. Hyaluronic acid targeting of CD44 for cancer therapy: From receptor biology to nanomedicine. J. Drug Target. 2015, 23, 605–618. [Google Scholar] [CrossRef]
- Jeong, Y.I.; Kim, S.T.; Jin, S.G.; Ryu, H.H.; Jin, Y.H.; Jung, T.Y.; Kim, I.Y.; Jung, S. Cisplatin-incorporated hyaluronic acid nanoparticles based on ion-complex formation. J. Pharm. Sci. 2008, 97, 1268–1276. [Google Scholar] [CrossRef]
- Sugahara, K.N.; Hirata, T.; Hayasaka, H.; Stern, R.; Murai, T.; Miyasaka, M. Tumor Cells Enhance Their Own CD44 Cleavage and Motility by Generating Hyaluronan Fragments. J. Biol. Chem. 2006, 281, 5861–5868. [Google Scholar] [CrossRef] [Green Version]
- Nadeem, M.; Ahmad, M.; Akhtar, M.S.; Shaari, A.; Riaz, S.; Naseem, S.; Masood, M.; Saeed, M.A. Magnetic Properties of Polyvinyl Alcohol and Doxorubicine Loaded Iron Oxide Nanoparticles for Anticancer Drug Delivery Applications. PLoS ONE 2016, 11, e0158084. [Google Scholar] [CrossRef] [Green Version]
- Zaloga, J.; Janko, C.; Nowak, J.; Matuszak, J.; Knaup, S.; Eberbeck, D.; Tietze, R.; Unterweger, H.; Friedrich, R.P.; Heimke-Brinck, R.; et al. Development of a lauric acid/albumin hybrid iron oxide nanoparticle system with improved biocompatibility. Int. J. Nanomed. 2014, 9, 4847–4866. [Google Scholar] [CrossRef] [Green Version]
- Zaloga, J.; Pöttler, M.; Leitinger, G.; Friedrich, R.P.; Almer, G.; Lyer, S.; Baum, E.; Tietze, R.; Heimke-Brinck, R.; Mangge, H.; et al. Pharmaceutical formulation of HSA hybrid coated iron oxide nanoparticles for magnetic drug targeting. Eur. J. Pharm. Biopharm. 2016, 101, 152–162. [Google Scholar] [CrossRef]
- Jeon, H.; Kim, J.; Lee, Y.M.; Kim, J.; Choi, H.W.; Lee, J.; Park, H.; Kang, Y.; Kim, I.-S.; Lee, B.-H.; et al. Poly-paclitaxel/cyclodextrin-SPION nano-assembly for magnetically guided drug delivery system. J. Control. Release 2016, 231, 68–76. [Google Scholar] [CrossRef] [PubMed]
- Chicheł, A.; Skowronek, J.; Kubaszewska, M.; Kanikowski, M. Hyperthermia–description of a method and a review of clinical applications. Rep. Pract. Oncol. Radiother. 2007, 12, 267–275. [Google Scholar] [CrossRef] [Green Version]
- Yang, J.; Park, S.-B.; Yoon, H.-G.; Huh, Y.-M.; Haam, S. Preparation of poly ɛ-caprolactone nanoparticles containing magnetite for magnetic drug carrier. Int. J. Pharm. 2006, 324, 185–190. [Google Scholar] [CrossRef] [PubMed]
- Islam, M.S. Development and Evaluation of Magnetic, Photocatalytic and Photothermal Nanoparticles and their Application to Cancer Therapy. Ph.D. Thesis, Kagoshima University, Kagoshima, Japan, 2012. [Google Scholar]
- Laurent, S.; Forge, D.; Port, M.; Roch, A.; Robic, C.; Vander Elst, L.; Muller, R.N. Magnetic Iron Oxide Nanoparticles: Synthesis, Stabilization, Vectorization, Physicochemical Characterizations, and Biological Applications. Chem. Rev. 2008, 108, 2064–2110. [Google Scholar] [CrossRef] [PubMed]
- Brazel, C.S. Magnetothermally-responsive Nanomaterials: Combining Magnetic Nanostructures and Thermally-Sensitive Polymers for Triggered Drug Release. Pharm. Res. 2009, 26, 644–656. [Google Scholar] [CrossRef]
- Mitra, S.; Maitra, A. Inorganic Nanoparticles for Therapeutics, Drug and Gene Delivery. CENTERA. In Advances in Nanotechnology and Applications; C.E.N.T.E.R.A.: Louisville, KY, USA, 2009. [Google Scholar]
- Nagel, S. Theoretische und Experimentelle Untersuchungen zum Magnetischen Drug Targeting; Ernst-Moritz-Arndt-Universität: Greifswald, Germany, 2004. [Google Scholar]
- Batista, S.O.S.; Morales, M.A.; dos Santos, W.C.; Iglesias, C.A.; Baggio-Saitovitch, E.; Carriço, A.S.; Bohn, F.; de Medeiros, S.N. Mechano-synthesis, structural and magnetic characterization, and heat release of α-Fe nanoparticles embedded in a wüstite matrix. J. Magn. Magn. Mater. 2015, 391, 83–88. [Google Scholar] [CrossRef] [Green Version]
- Araújo-Neto, R.P.; Silva-Freitas, E.L.; Carvalho, J.F.; Pontes, T.R.F.; Silva, K.L.; Damasceno, I.H.M.; Egito, E.S.T.; Dantas, A.L.; Morales, M.A.; Carriço, A.S. Monodisperse sodium oleate coated magnetite high susceptibility nanoparticles for hyperthermia applications. J. Magn. Magn. Mater. 2014, 364, 72–79. [Google Scholar] [CrossRef] [Green Version]
- Alomari, M.; Almohazey, D.; Almofty, S.; Alhibshi, A.; Almansour, I.; Kaewsaneha, C.; Badri, W.; Fessi, H.; Elaissari, A. Magnetic-responsive polysaccharide-inorganic composite materials for cancer therapeutics. In Polysaccharide Carriers for Drug Delivery; Elsevier: Amsterdam, The Netherlands, 2019; pp. 179–216. [Google Scholar] [CrossRef]
- Taghizadeh, S.-M.; Berenjian, A.; Zare, M.; Ebrahiminezhad, A. New Perspectives on Iron-Based Nanostructures. Processes 2020, 8, 1128. [Google Scholar] [CrossRef]
- Viswanath, B.; Kim, S.; Lee, K. Recent insights into nanotechnology development for detection and treatment of colorectal cancer. Int. J. Nanomed. 2016, 11, 2491–2504. [Google Scholar] [CrossRef]
- Rosengart, A.J.; Kaminski, M.D.; Chen, H.; Caviness, P.L.; Ebner, A.D.; Ritter, J.A. Magnetizable implants and functionalized magnetic carriers: A novel approach for noninvasive yet targeted drug delivery. J. Magn. Magn. Mater. 2005, 293, 633–638. [Google Scholar] [CrossRef]
- Rahban, D.; Doostan, M.; Salimi, A. Cancer Therapy; Prospects for Application of Nanoparticles for Magnetic-Based Hyperthermia. Cancer Investig. 2020, 38, 507–521. [Google Scholar] [CrossRef] [PubMed]
- Magro, M.; Vianello, F. Bare Iron Oxide Nanoparticles: Surface Tunability for Biomedical, Sensing and Environmental Applications. Nanomaterials 2019, 9, 1608. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Yan, S.; Zhang, D.; Gu, N.; Zheng, J.; Ding, A.; Wang, Z.; Xing, B.; Ma, M.; Zhang, Y. Therapeutic Effect of Fe2O3 Nanoparticles Combined with Magnetic Fluid Hyperthermia on Cultured Liver Cancer Cells and Xenograft Liver Cancers. J. Nanosci. Nanotechnol. 2005, 5, 1185–1192. [Google Scholar] [CrossRef] [PubMed]
- Ramos-Guivar, J.A.; Morales, M.A.; Litterst, F.J. γ-Fe2O3 nanoparticles embedded in nanohydroxyapatite matrix for magnetic hyperthermia and in vitro osteoblast cell studies. Ceram. Int. 2020, 46, 10658–10666. [Google Scholar] [CrossRef]
- Luo, D.; Saltzman, W.M. Enhancement of transfection by physical concentration of DNA at the cell surface. Nat. Biotechnol. 2000, 18, 893–895. [Google Scholar] [CrossRef] [PubMed]
- Curiel, D.T. Strategies to Adapt Adenoviral Vectors for Targeted Delivery. Ann. N. Y. Acad. Sci. 1999, 886, 158–171. [Google Scholar] [CrossRef]
- Scherer, F.; Anton, M.; Schillinger, U.; Henke, J.; Bergemann, C.; Krüger, A.; Gänsbacher, B.; Plank, C. Magnetofection: Enhancing and targeting gene delivery by magnetic force in vitro and in vivo. Gene Ther. 2002, 9, 102–109. [Google Scholar] [CrossRef] [Green Version]
- Lorente, C.; Cabeza, L.; Clares, B.; Ortiz, R.; Halbaut, L.; Delgado, V.; Perazzoli, G.; Prados, J.; Arias, J.L.; Melguizo, C. Formulation and in vitro evaluation of magnetoliposomes as a potential nanotool in colorectal cancer therapy. Colloids Surf. B Biointerfaces 2018, 171, 553–565. [Google Scholar] [CrossRef]
- Tadic, M.; Trpkov, D.; Kopanja, L.; Vojnovic, S.; Panjan, M. Hydrothermal synthesis of hematite (α-Fe2O3) nanoparticle forms: Synthesis conditions, structure, particle shape analysis, cytotoxicity and magnetic properties. J. Alloys Compd. 2019, 792, 599–609. [Google Scholar] [CrossRef]
- Wei, W.; Ding, Y.; Zhao, A.; Ge, K.; Zhang, C.; Li, Y.; Zhang, J.; Jia, G. Monodisperse and mesoporous walnut kernel-like SiO2/γ-Fe2O3 nanocomposite: Synthesis, magnetic properties, and application in drug delivery. J. Alloys Compd. 2017, 728, 585–591. [Google Scholar] [CrossRef]
- Cao, S.W.; Zhu, Y.J.; Ma, M.Y.; Li, L.; Zhang, L. Hierarchically nanostructured magnetic hollow spheres of Fe3O4 and γ-Fe2O3: Preparation and potential application in drug delivery. J. Phys. Chem. C 2008, 112, 1851–1856. [Google Scholar] [CrossRef]
- Kumar, A.; Sahoo, B.; Montpetit, A.; Behera, S.; Lockey, R.F.; Mohapatra, S.S. Development of hyaluronic acid–Fe2O3 hybrid magnetic nanoparticles for targeted delivery of peptides. Nanomed. Nanotechnol. Biol. Med. 2007, 3, 132–137. [Google Scholar] [CrossRef]
- Arruebo, M.; Fernández-Pacheco, R.; Ibarra, M.R.; Santamaría, J. Magnetic nanoparticles for drug delivery. Nano Today 2007, 2, 22–32. [Google Scholar] [CrossRef]
- Absolom, D.R.; Zingg, W.; Neumann, A.W. Protein adsorption to polymer particles: Role of surface properties. J. Biomed. Mater. Res. 1987, 21, 161–171. [Google Scholar] [CrossRef]
- Haas, T.A.; Plow, E.F. Integrin-ligarid interactions: A year in review. Curr. Opin. Cell Biol. 1994, 6, 656–662. [Google Scholar] [CrossRef]
- Blyakhman, F.; Safronov, A.; Makarova, E.; Fadeyev, F.; Shklyar, T.; Shabadrov, P.; Armas, S.; Kurlyandskaya, G. Magnetic Properties of Iron Oxide Nanoparticles Do Not Essentially Contribute to Ferrogel Biocompatibility. Nanomaterials 2021, 11, 1041. [Google Scholar] [CrossRef] [PubMed]
- Sabale, S.; Kandesar, P.; Jadhav, V.; Komorek, R.; Motkuri, R.K.; Yu, X.-Y. Recent developments in the synthesis, properties, and biomedical applications of core/shell superparamagnetic iron oxide nanoparticles with gold. Biomater. Sci. 2017, 5, 2212–2225. [Google Scholar] [CrossRef]
- Piñeiro, Y.; Vargas, Z.; Rivas, J.; López-Quintela, M.A. Iron Oxide Based Nanoparticles for Magnetic Hyperthermia Strategies in Biological Applications. Eur. J. Inorg. Chem. 2015, 2015, 4495–4509. [Google Scholar] [CrossRef]
- Ansari, M.O.; Ahmad, F.; Shadab, G.; Siddique, H.R. Superparamagnetic iron oxide nanoparticles based cancer theranostics: A double edge sword to fight against cancer. J. Drug Deliv. Sci. Technol. 2018, 45, 177–183. [Google Scholar] [CrossRef]
- Park, K.; Liang, G.; Ji, X.; Luo, Z.P.; Li, C.; Croft, M.C.; Markert, J.T. Structural and magnetic properties of gold and silica doubly coated γ-Fe2O3 nanoparticles. J. Phys. Chem. C 2007, 111, 18512–18519. [Google Scholar] [CrossRef]
- Dumitrache, F.; Morjan, I.; Fleaca, C.; Badoi, A.; Manda, G.; Pop, S.; Marta, D.; Huminic, G.; Vekas, L.; Daia, C.; et al. Highly magnetic Fe2O3 nanoparticles synthesized by laser pyrolysis used for biological and heat transfer applications. Appl. Surf. Sci. 2015, 336, 297–303. [Google Scholar] [CrossRef]
- Li, P.; He, Z.; Luo, C.; Xiao, Y.; Wang, Y.; Hu, J.; Li, G.; Jiang, H.; Zhang, W. α-Fe2O3@dopamine core-shell nanocomposites and their highly enhanced photoacoustic performance. Appl. Surf. Sci. 2018, 466, 185–192. [Google Scholar] [CrossRef]
- Gupta, A.K.; Curtis, A.S.G. Surface modified superparamagnetic nanoparticles for drug delivery: Interaction studies with human fibroblasts in culture. J. Mater. Sci. Mater. Med. 2004, 15, 493–496. [Google Scholar] [CrossRef] [PubMed]
- Berry, C.C.; Wells, S.; Charles, S.; Aitchison, G.; Curtis, A.S. Cell response to dextran-derivatised iron oxide nanoparticles post internalisation. Biomaterials 2004, 25, 5405–5413. [Google Scholar] [CrossRef] [PubMed]
- Berry, C.C.; Wells, S.; Charles, S.; Curtis, A.S. Dextran and albumin derivatised iron oxide nanoparticles: Influence on fibroblasts in vitro. Biomaterials 2003, 24, 4551–4557. [Google Scholar] [CrossRef]
- Simioni, A.R.; Martins, O.P.; Lacava, Z.G.M.; Azevedo, R.B.; Lima, E.C.D.; Lacava, B.M.; Morais, P.C.; Tedesco, A. Cell toxicity studies of albumin-based nanosized magnetic beads. J. Nanosci. Nanotechnol. 2006, 6, 2413–2415. [Google Scholar] [CrossRef]
- Karlsson, H.L.; Gustafsson, J.; Cronholm, P.; Möller, L. Size-dependent toxicity of metal oxide particles—A comparison between nano- and micrometer size. Toxicol. Lett. 2009, 188, 112–118. [Google Scholar] [CrossRef]
- Mahmoudi, M.; Simchi, A.; Imani, M.; Shokrgozar, M.A.; Milani, A.S.; Häfeli, U.O.; Stroeve, P. A new approach for the in vitro identification of the cytotoxicity of superparamagnetic iron oxide nanoparticles. Colloids Surf. B Biointerfaces 2010, 75, 300–309. [Google Scholar] [CrossRef]
- Kladko, D.; Falchevskaya, A.; Serov, N.; Prilepskii, A. Nanomaterial Shape Influence on Cell Behavior. Int. J. Mol. Sci. 2021, 22, 5266. [Google Scholar] [CrossRef]
- Billotey, C.; Wilhelm, C.; Devaud, M.; Bacri, J.C.; Bittoun, J.; Gazeau, F. Cell internalization of anionic maghemite nanoparticles: Quantitative effect on magnetic resonance imaging. Magn. Reson. Med. Off. J. Int. Soc. Magn. Reson. Med. 2003, 49, 646–654. [Google Scholar] [CrossRef]
- Wilhelm, C.; Billotey, C.; Roger, J.; Pons, J.; Bacri, J.-C.; Gazeau, F. Intracellular uptake of anionic superparamagnetic nanoparticles as a function of their surface coating. Biomaterials 2003, 24, 1001–1011. [Google Scholar] [CrossRef]
- Pisanic, T.R.; Blackwell, J.D.; Shubayev, V.I.; Fiñones, R.R.; Jin, S. Nanotoxicity of iron oxide nanoparticle internalization in growing neurons. Biomaterials 2007, 28, 2572–2581. [Google Scholar] [CrossRef] [PubMed]
- Wen, T.; Du, L.; Chen, B.; Yan, D.; Yang, A.; Liu, J.; Gu, N.; Meng, J.; Xu, H. Iron oxide nanoparticles induce reversible endothelial-to-mesenchymal transition in vascular endothelial cells at acutely non-cytotoxic concentrations. Part. Fibre Toxicol. 2019, 16, 30. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- De Freitas, E.R.L.; Soares, P.R.O.; de Paula Santos, R.; dos Santos, R.L.; da Silva, J.R.; Porfirio, E.P.; Báo, S.N.; de Oliveira Lima, E.C.; Morais, P.C.; Guillo, L.A. In vitro biological activities of anionic γ-Fe2O3 nanoparticles on human melanoma cells. J. Nanosci. Nanotechnol. 2008, 8, 2385–2391. [Google Scholar] [CrossRef] [PubMed]
- Maassen, S.; Fattal, E.; Müller, R.H.; Couvreur, P. Cell cultures for the assessment of toxicity and uptake of polymeric particulate drug carriers. STP Pharma Sci. 1993, 3, 11–22. [Google Scholar]
- Weissleder, R.; Stark, D.D.; Engelstad, B.L.; Bacon, B.R.; Compton, C.C.; White, D.L.; Jacobs, P.; Lewis, J. Superparamagnetic iron oxide: Pharmacokinetics and toxicity. Am. J. Roentgenol. 1989, 152, 167–173. [Google Scholar] [CrossRef]
- Klausner, R.D.; Rouault, T.A.; Harford, J.B. Regulating the fate of mRNA: The control of cellular iron metabolism. Cell 1993, 72, 19–28. [Google Scholar] [CrossRef]
- Schulze, E.; Ferrucci, J.T.; Poss, K.; Lapointe, L.; Bogdanova, A.; Weissleder, R. Cellular Uptake and Trafficking of a Prototypical Magnetic Iron Oxide Label In Vitro. Investig. Radiol. 1995, 30, 604–610. [Google Scholar] [CrossRef]
- Elias, A.; Tsourkas, A. Imaging circulating cells and lymphoid tissues with iron oxide nanoparticles. Hematology 2009, 2009, 720–726. [Google Scholar] [CrossRef] [Green Version]
- Glickstein, H.; Ben El, R.; Link, G.; Breuer, W.; Konijn, A.M.; Hershko, C.; Nick, H.; Cabantchik, Z.I.; El, R.B. Action of chelators in iron-loaded cardiac cells: Accessibility to intracellular labile iron and functional consequences. Blood 2006, 108, 3195–3203. [Google Scholar] [CrossRef]
- Jain, T.K.; Reddy, M.K.; Morales, M.A.; Leslie-Pelecky, D.L.; Labhasetwar, V. Biodistribution, Clearance, and Biocompatibility of Iron Oxide Magnetic Nanoparticles in Rats. Mol. Pharm. 2008, 5, 316–327. [Google Scholar] [CrossRef] [PubMed]
- Bourrinet, P.; Bengele, H.H.; Bonnemain, B.; Dencausse, A.; Idee, J.-M.; Jacobs, P.M.; Lewis, J.M. Preclinical Safety and Pharmacokinetic Profile of Ferumoxtran-10, an Ultrasmall Superparamagnetic Iron Oxide Magnetic Resonance Contrast Agent. Investig. Radiol. 2006, 41, 313–324. [Google Scholar] [CrossRef] [PubMed]
- Gajdosíková, A.; Gajdosík, A.; Koneracká, M.; Závisová, V.; Stvrtina, S.; Krchnárová, V.; Kopcanský, P.; Tomasovicová, N.; Stolc, S.; Timko, M. Acute toxicity of magnetic nanoparticles in mice. Neuro Endocrinol. Lett. 2006, 27, 96–99. [Google Scholar] [PubMed]
- Lübbe, A.S.; Bergemann, C.; Huhnt, W.; Fricke, T.; Riess, H.; Brock, J.W.; Huhn, D. Preclinical experiences with magnetic drug targeting: Tolerance and efficacy. Cancer Res. 1996, 56, 4694–4701. [Google Scholar]
- Lübbe, A.S.; Bergemann, C.; Riess, H.; Schriever, F.; Reichardt, P.; Possinger, K.; Matthias, M.; Dörken, B.; Herrmann, F.; Gürtler, R.; et al. Clinical experiences with magnetic drug targeting: A phase I study with 4’-epidoxorubicin in 14 patients with advanced solid tumors. Cancer Res. 1996, 56, 4686–4693. [Google Scholar]
- Lemke, A.-J.; Von Pilsach, M.-I.S.; Bergemann, C.; Riess, H.; Felix, R. MRI after magnetic drug targeting in patients with advanced solid malignant tumors. Eur. Radiol. 2004, 14, 1949–1955. [Google Scholar] [CrossRef]
- Reimer, P.; Balzer, T. Ferucarbotran (Resovist): A new clinically approved RES-specific contrast agent for contrast-enhanced MRI of the liver: Properties, clinical development, and applications. Eur. Radiol. 2003, 13, 1266–1276. [Google Scholar] [CrossRef]
- Reimer, P.; Marx, C.; Rummeny, E.J.; Müller, M.; Lentschig, M.; Balzer, T.; Dietl, K.-H.; Sulkowski, U.; Berns, T.; Shamsi, K.; et al. SPIO-enhanced 2D-TOF MR angiography of the portal venous system: Results of an intraindividual comparison. J. Magn. Reson. Imaging 1997, 7, 945–949. [Google Scholar] [CrossRef]
- Kopp, A.F.; Laniado, M.; Dammann, F.; Stern, W.; Grönewäller, E.; Balzer, T.; Schimpfky, C.; Claussen, C.D. MR imaging of the liver with Resovist: Safety, efficacy, and pharmacodynamic properties. Radiology 1997, 204, 749–756. [Google Scholar] [CrossRef]
- Kehagias, D.T.; Gouliamos, A.D.; Smyrniotis, V.; Vlahos, L.J. Diagnostic efficacy and safety of MRI of the liver with superparamagnetic iron oxide particles (SH U 555 A). J. Magn. Reson. Imaging Off. J. Int. Soc. Magn. Reson. Med. 2001, 14, 595–601. [Google Scholar] [CrossRef]
- Friedrich, R.P.; Cicha, I.; Alexiou, C. Iron Oxide Nanoparticles in Regenerative Medicine and Tissue Engineering. Nanomaterials 2021, 11, 2337. [Google Scholar] [CrossRef] [PubMed]
- Muldoon, L.L.; Sàndor, M.; Pinkston, K.E.; Neuwelt, E.A. Imaging, distribution, and toxicity of superparamagnetic iron oxide magnetic resonance nanoparticles in the rat brain and intracerebral tumor. Neurosurgery 2005, 57, 785–796. [Google Scholar] [CrossRef] [PubMed]
- Weissleder, R.; Bogdanov, A.; Neuwelt, E.A.; Papisov, M. Long-circulating iron oxides for MR imaging. Adv. Drug Deliv. Rev. 1995, 16, 321–334. [Google Scholar] [CrossRef]
- Aillon, K.L.; Xie, Y.; El-Gendy, N.; Berkland, C.J.; Forrest, M.L. Effects of nanomaterial physicochemical properties on in vivo toxicity. Adv. Drug Deliv. Rev. 2009, 61, 457–466. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Alexis, F.; Pridgen, E.; Molnar, L.K.; Farokhzad, O.C. Factors Affecting the Clearance and Biodistribution of Polymeric Nanoparticles. Mol. Pharm. 2008, 5, 505–515. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- O’Connor, C.; Brady, E.; Zheng, Y.; Moore, E.; Stevens, K.R. Engineering the multiscale complexity of vascular networks. Nat. Rev. Mater. 2022, 7, 702–716. [Google Scholar] [CrossRef] [PubMed]
- Koons, G.L.; Diba, M.; Mikos, A.G. Materials design for bone-tissue engineering. Nat. Rev. Mater. 2020, 5, 584–603. [Google Scholar] [CrossRef]
- Wang, J.; Tian, L.; He, L.; Chen, N.; Ramakrishna, S.; So, K.-F.; Mo, X. Lycium barbarum polysaccharide encapsulated Poly lactic-co-glycolic acid Nanofibers: Cost effective herbal medicine for potential application in peripheral nerve tissue engineering. Sci. Rep. 2018, 8, 8669. [Google Scholar] [CrossRef] [Green Version]
- Giannelli, M.; Barbalinardo, M.; Riminucci, A.; Belvedere, K.; Boccalon, E.; Sotgiu, G.; Corticelli, F.; Ruani, G.; Zamboni, R.; Aluigi, A.; et al. Magnetic keratin/hydrotalcites sponges as potential scaffolds for tissue regeneration. Appl. Clay Sci. 2021, 207, 106090. [Google Scholar] [CrossRef]
- Goranov, V.; Shelyakova, T.; De Santis, R.; Haranava, Y.; Makhaniok, A.; Gloria, A.; Tampieri, A.; Russo, A.; Kon, E.; Marcacci, M.; et al. 3D Patterning of cells in Magnetic Scaffolds for Tissue Engineering. Sci. Rep. 2020, 10, 2289. [Google Scholar] [CrossRef] [Green Version]
- García, R.S.; Stafford, S.; Gun’Ko, Y.K. Recent Progress in Synthesis and Functionalization of Multimodal Fluorescent-Magnetic Nanoparticles for Biological Applications. Appl. Sci. 2018, 8, 172. [Google Scholar] [CrossRef] [Green Version]
- Santhosh, M.; Choi, J.-H.; Choi, J.-W. Magnetic-assisted cell alignment within a magnetic nanoparticle-decorated reduced graphene oxide/collagen 3D nanocomposite hydrogel. Nanomaterials 2019, 9, 1293. [Google Scholar] [CrossRef] [PubMed]
- Crolet, J.; Aoubiza, B.; Meunier, A. Compact bone: Numerical simulation of mechanical characteristics. J. Biomech. 1993, 26, 677–687. [Google Scholar] [CrossRef]
- Luo, Y.; Zhang, T.; Lin, X. 3D printed hydrogel scaffolds with macro pores and interconnected microchannel networks for tissue engineering vascularization. Chem. Eng. J. 2022, 430, 132926. [Google Scholar] [CrossRef]
- Pei, B.; Wang, W.; Dunne, N.; Li, X. Applications of Carbon Nanotubes in Bone Tissue Regeneration and Engineering: Superiority, Concerns, Current Advancements, and Prospects. Nanomaterials 2019, 9, 1501. [Google Scholar] [CrossRef] [Green Version]
- Xia, Y.; Sun, J.; Zhao, L.; Zhang, F.; Liang, X.-J.; Guo, Y.; Weir, M.D.; Reynolds, M.A.; Gu, N.; Xu, H.H.K. Magnetic field and nano-scaffolds with stem cells to enhance bone regeneration. Biomaterials 2018, 183, 151–170. [Google Scholar] [CrossRef]
- Li, X.; Wei, J.; Aifantis, K.E.; Fan, Y.; Feng, Q.; Cui, F.Z.; Watari, F. Current investigations into magnetic nanoparticles for biomedical applications. J. Biomed. Mater. Res. Part A 2016, 104, 1285–1296. [Google Scholar] [CrossRef]
- Saber-Samandari, S.; Saber-Samandari, S. Biocompatible nanocomposite scaffolds based on copolymer-grafted chitosan for bone tissue engineering with drug delivery capability. Mater. Sci. Eng. C 2017, 75, 721–732. [Google Scholar] [CrossRef]
- Świętek, M.; Brož, A.; Tarasiuk, J.; Wroński, S.; Tokarz, W.; Kozieł, A.; Błażewicz, M.; Bačáková, L. Carbon nanotube/iron oxide hybrid particles and their PCL-based 3D composites for potential bone regeneration. Mater. Sci. Eng. C 2019, 104, 109913. [Google Scholar] [CrossRef]
- Hu, S.; Chen, H.; Zhou, F.; Liu, J.; Qian, Y.; Hu, K.; Yan, J.; Gu, Z.; Guo, Z.; Zhang, F.; et al. Superparamagnetic core–shell electrospun scaffolds with sustained release of IONPs facilitating in vitro and in vivo bone regeneration. J. Mater. Chem. B 2021, 9, 8980–8993. [Google Scholar] [CrossRef]
- Meng, J.; Xiao, B.; Zhang, Y.; Liu, J.; Xue, H.; Lei, J.; Kong, H.; Huang, Y.; Jin, Z.; Gu, N.; et al. Super-paramagnetic responsive nanofibrous scaffolds under static magnetic field enhance osteogenesis for bone repair in vivo. Sci. Rep. 2013, 3, 2655. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Liao, J.; Han, R.; Wu, Y.; Qian, Z. Review of a new bone tumor therapy strategy based on bifunctional biomaterials. Bone Res. 2021, 9, 18. [Google Scholar] [CrossRef]
- Montoya, C.; Du, Y.; Gianforcaro, A.L.; Orrego, S.; Yang, M.; Lelkes, P.I. On the road to smart biomaterials for bone research: Definitions, concepts, advances, and outlook. Bone Res. 2021, 9, 12. [Google Scholar] [CrossRef] [PubMed]
- Yuan, Z.; Memarzadeh, K.; Stephen, A.S.; Allaker, R.P.; Brown, R.A.; Huang, J. Development of a 3D Collagen Model for the In Vitro Evaluation of Magnetic-assisted Osteogenesis. Sci. Rep. 2018, 8, 16270. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhu, L.; Luo, D.; Liu, Y. Effect of the nano/microscale structure of biomaterial scaffolds on bone regeneration. Int. J. Oral Sci. 2020, 12, 6. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, X.; Law, J.; Luo, M.; Gong, Z.; Yu, J.; Tang, W.; Zhang, Z.; Mei, X.; Huang, Z.; You, L.; et al. Magnetic Measurement and Stimulation of Cellular and Intracellular Structures. ACS Nano 2020, 14, 3805–3821. [Google Scholar] [CrossRef]
- Huo, M.; Wang, L.; Chen, Y.; Shi, J. Tumor-selective catalytic nanomedicine by nanocatalyst delivery. Nat. Commun. 2017, 8, 357. [Google Scholar] [CrossRef] [Green Version]
- Abdal Dayem, A.; Lee, S.B.; Cho, S.-G. The Impact of Metallic Nanoparticles on Stem Cell Proliferation and Differentiation. Nanomaterials 2018, 8, 761. [Google Scholar] [CrossRef] [Green Version]
- Wang, Q.; Chen, B.; Cao, M.; Sun, J.; Wu, H.; Zhao, P.; Xing, J.; Yang, Y.; Zhang, X.; Ji, M.; et al. Response of MAPK pathway to iron oxide nanoparticles in vitro treatment promotes osteogenic differentiation of hBMSCs. Biomaterials 2016, 86, 11–20. [Google Scholar] [CrossRef]
- Ishmukhametov, I.; Batasheva, S.; Rozhina, E.; Akhatova, F.; Mingaleeva, R.; Rozhin, A.; Fakhrullin, R. DNA/Magnetic Nanoparticles Composite to Attenuate Glass Surface Nanotopography for Enhanced Mesenchymal Stem Cell Differentiation. Polymers 2022, 14, 344. [Google Scholar] [CrossRef]
- Kim, J.H.; Liu, X.; Wang, J.; Chen, X.; Zhang, H.; Kim, S.H.; Cui, J.; Li, R.; Zhang, W.; Kong, Y.; et al. Wnt signaling in bone formation and its therapeutic potential for bone diseases. Ther. Adv. Musculoskelet. Dis. 2013, 5, 13–31. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhang, X.; Huang, P.; Jiang, G.; Zhang, M.; Yu, F.; Dong, X.; Wang, L.; Chen, Y.; Zhang, W.; Qi, Y.; et al. A novel magnesium ion-incorporating dual-crosslinked hydrogel to improve bone scaffold-mediated osteogenesis and angiogenesis. Mater. Sci. Eng. C 2021, 121, 111868. [Google Scholar] [CrossRef] [PubMed]
- Abdollahiyan, P.; Oroojalian, F.; Hejazi, M.; de la Guardia, M.; Mokhtarzadeh, A. Nanotechnology, and scaffold implantation for the effective repair of injured organs: An overview on hard tissue engineering. J. Control. Release 2021, 333, 391–417. [Google Scholar] [CrossRef]
- Pan, Y.; Du, X.; Zhao, F.; Xu, B. Magnetic nanoparticles for the manipulation of proteins and cells. Chem. Soc. Rev. 2012, 41, 2912–2942. [Google Scholar] [CrossRef] [PubMed]
- Wang, Q.; Chen, B.; Ma, F.; Lin, S.; Cao, M.; Li, Y.; Gu, N. Magnetic iron oxide nanoparticles accelerate osteogenic differentiation of mesenchymal stem cells via modulation of long noncoding RNA INZEB2. Nano Res. 2017, 10, 626–642. [Google Scholar] [CrossRef]
- Henry, G.; Garner, W.L. Inflammatory mediators in wound healing. Surg. Clin. N. Am. 2003, 83, 483–507. [Google Scholar] [CrossRef]
- Serhan, C.N.; Chiang, N. Novel endogenous small molecules as the checkpoint controllers in inflammation and resolution: Entrée for resoleomics. Rheum. Dis. Clin. N. Am. 2004, 30, 69–95. [Google Scholar] [CrossRef]
- Lawrence, W.T.; Diegelmann, R.F. Growth factors in wound healing. Clin. Dermatol. 1994, 12, 157–169. [Google Scholar] [CrossRef]
- Witte, M.B.; Barbul, A. GENERAL PRINCIPLES OF WOUND HEALING. Surg. Clin. N. Am. 1997, 77, 509–528. [Google Scholar] [CrossRef]
- Allen, D.B.; Maguire, J.J.; Mahdavian, M.; Wicke, C.; Marcocci, L.; Scheuenstuhl, H.; Chang, M.; Le, A.X.; Hopf, H.; Hunt, T.K. Wound Hypoxia and Acidosis Limit Neutrophil Bacterial Killing Mechanisms. Arch. Surg. 1997, 132, 991–996. [Google Scholar] [CrossRef]
- Jimenez, P.A.; Rampy, M.A. Keratinocyte Growth Factor-2 Accelerates Wound Healing in Incisional Wounds. J. Surg. Res. 1999, 81, 238–242. [Google Scholar] [CrossRef]
- Bankey, P.; Fiegel, V.; Singh, R.; Knighton, D.; Cerra, F. Hypoxia and Endotoxin Induce Macrophage-mediated Suppression of Fibroblast Proliferation. J. Trauma Inj. Infect. Crit. Care 1989, 29, 972–980. [Google Scholar] [CrossRef] [PubMed]
- Messina, A.; Knight, K.R.; Dowsing, B.J.; Zhang, B.; Phan, L.H.; Hurley, J.V.; A Morrison, W.; Stewart, A. Localization of Inducible Nitric Oxide Synthase to Mast Cells During Ischemia/Reperfusion Injury of Skeletal Muscle. Lab. Investig. 2000, 80, 423–431. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Robson, M.C. WOUND INFECTION: A Failure of Wound Healing Caused by an Imbalance of Bacteria. Surg. Clin. N. Am. 1997, 77, 637–650. [Google Scholar] [CrossRef]
- Simman, R.; Alani, H.; Williams, F. Effect of Mitomycin C on Keloid Fibroblasts: An In Vitro Study. Ann. Plast. Surg. 2003, 50, 71–76. [Google Scholar] [CrossRef]
- Steed, D.L. Debridement. Am. J. Surg. 2004, 187, S71–S74. [Google Scholar] [CrossRef]
- Steinbrech, D.S.; Longaker, M.T.; Mehrara, B.J.; Saadeh, P.; Chin, G.S.; Gerrets, R.P.; Chau, D.C.; Rowe, N.M.; Gittes, G.K. Fibroblast Response to Hypoxia: The Relationship between Angiogenesis and Matrix Regulation. J. Surg. Res. 1999, 84, 127–133. [Google Scholar] [CrossRef]
- Riou, J.-P.A.; Cohen, J.R.; Johnson, H. Factors influencing wound dehiscence. Am. J. Surg. 1992, 163, 324–330. [Google Scholar] [CrossRef]
- Chang, C.-H.; Song, J.-Y.; Park, J.-H.; Seo, S.-W. The Efficacy of Magnetic Disks for the Treatment of Earlobe Hypertrophic Scar. Ann. Plast. Surg. 2005, 54, 566–569. [Google Scholar] [CrossRef]
- Farrar, M.A.; Schreiber, R.D. The molecular cell biology of interferon-gamma and its receptor. Annu. Rev. Immunol. 1993, 11, 571–611. [Google Scholar] [CrossRef]
- Lingen, M.W. Role of leukocytes and endothelial cells in the development of angiogenesis in inflammation and wound healing. Arch. Pathol. Lab. Med. 2001, 125, 67–71. [Google Scholar] [CrossRef] [PubMed]
- Ashcroft, G.S.; Greenwell-Wild, T.; Horan, M.A.; Wahl, S.M.; Ferguson, M.W. Topical Estrogen Accelerates Cutaneous Wound Healing in Aged Humans Associated with an Altered Inflammatory Response. Am. J. Pathol. 1999, 155, 1137–1146. [Google Scholar] [CrossRef]
- Dalgleish, A.G.; O’Byrne, K.J. Chronic immune activation and inflammation in the pathogenesis of aids and cancer. Adv. Cancer Res. 2002, 84, 231–276. [Google Scholar] [CrossRef]
- Eftekhari, A.; Dizaj, S.M.; Sharifi, S.; Salatin, S.; Saadat, Y.R.; Vahed, S.Z.; Samiei, M.; Ardalan, M.; Rameshrad, M.; Ahmadian, E.; et al. The Use of Nanomaterials in Tissue Engineering for Cartilage Regeneration; Current Approaches and Future Perspectives. Int. J. Mol. Sci. 2020, 21, 536. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hou, R.; Zhang, G.; Du, G.; Zhan, D.; Cong, Y.; Cheng, Y.; Fu, J. Magnetic nanohydroxyapatite/PVA composite hydrogels for promoted osteoblast adhesion and proliferation. Colloids Surf. B Biointerfaces 2013, 103, 318–325. [Google Scholar] [CrossRef]
- Hou, R.; Nie, L.; Du, G.; Xiong, X.; Fu, J. Natural polysaccharides promote chondrocyte adhesion and proliferation on magnetic nanoparticle/PVA composite hydrogels. Colloids Surf. B Biointerfaces 2015, 132, 146–154. [Google Scholar] [CrossRef]
- Khalili, M.; Keshvari, H.; Imani, R.; Sohi, A.N.; Esmaeili, E.; Tajabadi, M. Study of osteogenic potential of electrospun PCL incorporated by dendrimerized superparamagnetic nanoparticles as a bone tissue engineering scaffold. Polym. Adv. Technol. 2021, 33, 782–794. [Google Scholar] [CrossRef]
- Ngadiman, N.H.A.; Idris, A.; Irfan, M.; Kurniawan, D.; Yusof, N.M.; Nasiri, R. γ-Fe2O3 nanoparticles filled polyvinyl alcohol as potential biomaterial for tissue engineering scaffold. J. Mech. Behav. Biomed. Mater. 2015, 49, 90–104. [Google Scholar] [CrossRef]
- Ngadiman, N.H.A.; Yusof, N.M.; Idris, A.; Kurniawan, D.; Fallahiarezoudar, E. Fabricating high mechanical strength γ-Fe2O3 nanoparticles filled poly(vinyl alcohol) nanofiber using electrospinning process potentially for tissue engineering scaffold. J. Bioact. Compat. Polym. 2016, 32, 411–428. [Google Scholar] [CrossRef]
- Huang, J.; Liang, Y.; Jia, Z.; Chen, J.; Duan, L.; Liu, W.; Zhu, F.; Liang, Q.; Zhu, W.; You, W.; et al. Development of Magnetic Nanocomposite Hydrogel with Potential Cartilage Tissue Engineering. ACS Omega 2018, 3, 6182–6189. [Google Scholar] [CrossRef]
- Desmoulière, A.; Geinoz, A.; Gabbiani, F. Transforming growth factor-beta 1 induces alpha-smooth muscle actin expression in granulation tissue myofibroblasts and in quiescent and growing cultured fibroblasts. J. Cell Biol. 1993, 122, 103–111. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Diegelmann, R.F. Analysis of Collagen Synthesis. In Wound Healing; Humana Press: Totowa, NJ, USA, 2003; Volume 78, pp. 349–358. [Google Scholar] [CrossRef]
- Ehrlich, H.P.; Krummel, T.M. Regulation of wound healing from a connective tissue perspective. Wound Repair Regen. 1996, 4, 203–210. [Google Scholar] [CrossRef] [PubMed]
- Pierce, G.F.; Mustoe, T.A.; Altrock, B.W.; Deuel, T.F.; Thomason, A. Role of platelet-derived growth factor in wound healing. J. Cell. Biochem. 1991, 45, 319–326. [Google Scholar] [CrossRef] [PubMed]
- Rubtsov, K.V.; Kondranova, A.M.; Lozhkomoev, A.S.; Kazantsev, S.O.; Mamonova, E.V.; Gavrilova, L.O.; Sadovoy, M.A. Synthesis of nanoparticle-hydrogel composites based on crosslinked by Al ions poly(sodium acrylate), Fe2O3 and γ-AlOOH. AIP Conf. Proc. 2019, 2167, 020298. [Google Scholar] [CrossRef]
Nanoparticles | Usage | Target | Ref. |
---|---|---|---|
Fe2O3 | Magnetic hyperthermia | human hepatocarcinoma SMMC-7721 cells in vitro and xenograft liver cancer in nude mice | [109] |
γ-Fe2O3 NPs (NPs) embedded in a nanohydroxyapatite matrix | Magnetic hyperthermia | Human (Sarcoma osteogenic) SAOS-2 line-cells | [110] |
Phosphatidylcholine coated γ-Fe2O3 | Magnetically-induced cell mobility | colon cell lines | [114] |
a- Fe2O3 | Drug carrier | human lung fibroblasts (MRC5) cell line | [115] |
SiO2/γ-Fe2O3 | Magnetic hyperthermia | BRL-3A cells | [116] |
γ-Fe2O3 nanosheets surface-modified containing polyethylene glycol | Ibuprofen delivery | [117] | |
polyethyleneimine coated with iron oxide | gene delivery | [113] | |
hyaluronic acid– Fe2O3 | Peptides delivery | [118] |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Pourmadadi, M.; Rahmani, E.; Shamsabadipour, A.; Mahtabian, S.; Ahmadi, M.; Rahdar, A.; Díez-Pascual, A.M. Role of Iron Oxide (Fe2O3) Nanocomposites in Advanced Biomedical Applications: A State-of-the-Art Review. Nanomaterials 2022, 12, 3873. https://doi.org/10.3390/nano12213873
Pourmadadi M, Rahmani E, Shamsabadipour A, Mahtabian S, Ahmadi M, Rahdar A, Díez-Pascual AM. Role of Iron Oxide (Fe2O3) Nanocomposites in Advanced Biomedical Applications: A State-of-the-Art Review. Nanomaterials. 2022; 12(21):3873. https://doi.org/10.3390/nano12213873
Chicago/Turabian StylePourmadadi, Mehrab, Erfan Rahmani, Amin Shamsabadipour, Shima Mahtabian, Mohammadjavad Ahmadi, Abbas Rahdar, and Ana M. Díez-Pascual. 2022. "Role of Iron Oxide (Fe2O3) Nanocomposites in Advanced Biomedical Applications: A State-of-the-Art Review" Nanomaterials 12, no. 21: 3873. https://doi.org/10.3390/nano12213873
APA StylePourmadadi, M., Rahmani, E., Shamsabadipour, A., Mahtabian, S., Ahmadi, M., Rahdar, A., & Díez-Pascual, A. M. (2022). Role of Iron Oxide (Fe2O3) Nanocomposites in Advanced Biomedical Applications: A State-of-the-Art Review. Nanomaterials, 12(21), 3873. https://doi.org/10.3390/nano12213873