• Journal of Inorganic Materials
  • Vol. 39, Issue 5, 517 (2023)
Heqing CAI1, Lu HAN1,*, Songsong YANG1, Xinyu XUE1..., Kou ZHANG1, Zhicheng SUN1, Ruping LIU1, Kun HU1 and Yan WEI2,*|Show fewer author(s)
Author Affiliations
  • 11. School of Printing and Packaging Engineering, Beijing Institute of Graphic Communication, Beijing 102600, China
  • 22. Key Laboratory of Organophosphorus Chemistry and Chemical Biology, Tsinghua University, Beijing 100084, China
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    DOI: 10.15541/jim20230464 Cite this Article
    Heqing CAI, Lu HAN, Songsong YANG, Xinyu XUE, Kou ZHANG, Zhicheng SUN, Ruping LIU, Kun HU, Yan WEI. Fe3O4-DMSA-PEI Magnetic Nanoparticles with Small Particle Size: Preparation and Gene Loading [J]. Journal of Inorganic Materials, 2023, 39(5): 517 Copy Citation Text show less
    References

    [1] S HAMIMED, M JABBERI, A CHATTI. Nanotechnology in drug and gene delivery. Naunyn-schmiedeberg's Archives of Pharmacology, 769(2022).

    [2] H ZU, D GAO. Non-viral vectors in gene therapy: recent development, challenges, and prospects. The AAPS Journal, 78(2021).

    [3] P SINGH, I MIJAKOVIC. Advances in gold nanoparticle technology as a tool for diagnostics and treatment of cancer. Expert Review of Molecular Diagnostics, 627(2021).

    [4] H LI, X WU, B YANG et al. Evaluation of biomimetically synthesized mesoporous silica nanoparticles as drug carriers: structure, wettability, degradation, biocompatibility and brain distribution. Materials Science and Engineering: C, 453(2019).

    [5] T J LEVINGSTONE, S HERBAJ, J REDMOND et al. Calcium phosphate nanoparticles-based systems for RNAi delivery: applications in bone tissue regeneration. Nanomaterials, 146(2020).

    [6] T J THOMAS, H A TAJMIR-RIAHI, C K S PILLAI. Biodegradable polymers for gene delivery. Molecules, 3744(2019).

    [7] S REN, M WANG, C WANG et al. Application of non-viral vectors in drug delivery and gene therapy. Polymers, 3307(2021).

    [8] A ALI, T SHAH, R ULLAH et al. Review on recent progress in magnetic nanoparticles: synthesis, characterization, and diverse applications. Frontiers in Chemistry, 629054(2021).

    [9] S D ANDERSON, V V GWENIN, C GWENIN. Magnetic functionalized nanoparticles for biomedical, drug delivery and imaging applications. Nanoscale Research Letters, 188(2019).

    [10] Q BI, X SONG, A HU et al. Magnetofection: magic magnetic nanoparticles for efficient gene delivery. Chinese Chemical Letters, 3041(2020).

    [11] B T MAI, J S CONTEH, H GAVILÁN et al. Clickable polymer ligand-functionalized iron oxide nanocubes: a promising nanoplatform for ‘Local Hot Spots’ magnetically triggered drug release. ACS Applied Materials & Interfaces, 48476(2022).

    [12] F SENTURK, S CAKMAK, I C KOCUM et al. Effects of radiofrequency exposure on in vitro blood-brain barrier permeability in the presence of magnetic nanoparticles. Biochemical and Biophysical Research Communications, 91(2022).

    [13] B SHEN, Y MA, S YU et al. Smart multifunctional magnetic nanoparticle-based drug delivery system for cancer thermo- chemotherapy and intracellular imaging. ACS Applied Materials & Interfaces, 24502(2016).

    [14] A RADOŃ, D ŁUKOWIEC, M KREMZER et al. Electrical conduction mechanism and dielectric properties of spherical shaped Fe3O4 nanoparticles synthesized by co-precipitation method. Materials, 735(2018).

    [15] G ASAB, E A ZEREFFA, T A SEGHNE. Synthesis of silica-coated Fe3O4nanoparticles by microemulsion method: characterization and evaluation of antimicrobial activity. International Journal of Biomaterials, 4783612(2020).

    [16] O M LEMINE, K OMRI, B ZHANG et al. Sol-gel synthesis of 8 nm magnetite (Fe3O4) nanoparticles and their magnetic properties. Superlattices and Microstructures, 793(2012).

    [17] V PATSULA, L KOSINOVÁ, M LOVRIĆ et al. Superparamagnetic Fe3O4 nanoparticles: synthesis by thermal decomposition of iron (III) glucuronate and application in magnetic resonance imaging. ACS Applied Materials & Interfaces, 7238(2016).

    [18] M F ELMAHAISHI, R S AZIS, I ISMAIL et al. Structural, electromagnetic and microwave properties of magnetite extracted from mill scale waste via conventional ball milling and mechanical alloying techniques. Materials, 7075(2021).

    [19] M RAFIENIA, A BIGHAM, S A HASSANZADEH-TABRIZI. Solvothermal synthesis of magnetic spinel ferrites. Journal of Medical Signals and Sensors, 108(2018).

    [20] C CHOULY, D POULIQUEN, I LUCET et al. Development of superparamagnetic nanoparticles for MRI: effect of particle size, charge and surface nature on biodistribution. Journal of Microencapsulation, 245(1996).

    [21] X QIU, Y WANG, Y XUE et al. Laccase immobilized on magnetic nanoparticles modified by amino-functionalized ionic liquid via dialdehyde starch for phenolic compounds biodegradation. Chemical Engineering Journal, 123564(2020).

    [22] I O WULANDARI, H SULISTYARTI, A SAFITRI et al. Development of synthesis method of magnetic nanoparticles modified by oleic acid and chitosan as a candidate for drug delivery agent. Journal of Applied Pharmaceutical Science, 1(2019).

    [23] K VASIĆ, Ž KNEZ, E A KONSTANTINOVA et al. Structural and magnetic characteristics of carboxymethyl dextran coated magnetic nanoparticles: from characterization to immobilization application. Reactive and Functional Polymers, 104481(2020).

    [24] C KOO, H HONG, P W IM et al. Magnetic and near-infrared derived heating characteristics of dimercaptosuccinic acid coated uniform Fe@Fe3O4 core-shell nanoparticles. Nano Convergence, 1(2020).

    [25] S PENG, Q Y WANG, X XIAO et al. Redox-responsive polyethyleneimine-coated magnetic iron oxide nanoparticles for controllable gene delivery and magnetic resonance imaging. Polymer International, 206(2020).

    [26] D REKER, Y RYBAKOVA, A R KIRTANE et al. Computationally guided high-throughput design of self-assembling drug nanoparticles. Nature Nanotechnology, 725(2021).

    [27] S ÇITOĞLU, Ö D COSKUN, L D TUNG et al. DMSA-coated cubic iron oxide nanoparticles as potential therapeutic agents. Nanomedicine, 925(2021).

    [28] X FENG, Y XUE, S GONCA et al. Ultrasmall superparamagnetic iron oxide nanoparticles for enhanced tumor penetration. Journal of Materials Chemistry B, 3422(2023).

    [29] X NI, J ZHANG, L ZHAO et al. Study of the solvothermal method time variation effects on magnetic iron oxide nanoparticles (Fe3O4) features. Journal of Physics and Chemistry of Solids, 110855(2022).

    [30] M DEMBEK, S BOCIAN, B BUSZEWSKI. Solvent influence on zeta potential of stationary phase—mobile phase interface. Molecules, 968(2022).

    [31] Y REN, X JIANG, D PAN et al. Charge density and molecular weight of polyphosphoramidate gene carrier are key parameters influencing its DNA compaction ability and transfection efficiency. Biomacromolecules, 3432(2010).

    [32] D Y KIM, J S KWON, J H LEE et al. Effects of the surface charge of stem cell membranes and DNA/polyethyleneimine nanocomplexes on gene transfection efficiency. Journal of Biomedical Nanotechnology, 522(2015).

    [33] M A ALMESSIERE, Y SLIMANI, H GÜNGÜNES et al. Magnetic attributes of NiFe2O4 nanoparticles: influence of dysprosium ions (Dy3+) substitution. Nanomaterials, 820(2019).

    [34] S ARSALANI, E J GUIDELLI, M A SILVEIRA et al. Magnetic Fe3O4 nanoparticles coated by natural rubber latex as MRI contrast agent. Journal of Magnetism and Magnetic Materials, 458(2019).

    [35] E C DEVI, S D SINGH. Tracing the magnetization curves: a review on their importance, strategy, and outcomes. Journal of Superconductivity and Novel Magnetism, 15(2021).

    [36] N PIMPHA, S CHALEAWLERT-UMPON, P SUNINTABOON. Core/shell polymethyl methacrylate/polyethyleneimine particles incorporating large amounts of iron oxide nanoparticles prepared by emulsifier-free emulsion polymerization. Polymer, 2015(2012).

    Heqing CAI, Lu HAN, Songsong YANG, Xinyu XUE, Kou ZHANG, Zhicheng SUN, Ruping LIU, Kun HU, Yan WEI. Fe3O4-DMSA-PEI Magnetic Nanoparticles with Small Particle Size: Preparation and Gene Loading [J]. Journal of Inorganic Materials, 2023, 39(5): 517
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