纳米磁性空心二氧化硅球的制备及其靶向作用的研究
Study on the Preparation of Nano Magnetic Hollow Silica Spheres and Their Targeting Effect
摘要: 以官能化二氧化硅微球为模板,采用简单、绿色的方法制备了腔大小和壳厚均匀的磁性空心二氧化硅微球(MHSS)。通过改变[Fe2+]/[Fe3+]的摩尔比和铁盐的摩尔浓度,在SiO2表面沉积磁性颗粒(Fe3O4)。所制得的磁性空心硅球在室温下表现出超顺磁性。采用扫描电镜(SEM)、透射电镜(TEM)和x射线粉末散射(XRD)对MHSS进行了表征。结果表明,在0.10 M铁盐和2:1 [Fe2+]/[Fe3+]摩尔比条件下制备的MHSS样品具有较大的空腔空间和超顺磁性,内部氨基功能化的MHSS可以用放射性同位素99mTc标记,研究MHSS在体内的磁性靶向分布。这些结果表明MHSS在磁性靶向给药系统中的潜力。
Abstract: The magnetic hollow silica spheres (MHSS) with uniform cavity size and shell thickness were pre-pared by a simple and “green” method using functionalized SiO2 spheres as templates. Magnetic particles (Fe3O4) were deposited on the SiO2 surface by varying the molar ratio of [Fe2+]/[Fe3+] and the molar concentration of iron salts. The obtained magnetic hollow silica spheres exhibited a su-per-paramagnetic behavior at room temperature. Scanning electron microscopy (SEM), transmis-sion electron microscopy (TEM), and X-ray powder scattering (XRD) were applied to characterize the MHSS. Besides, the MHSS sample prepared at 0.10 M iron salts and 2:1 molar ratio of [Fe2+]/[Fe3+] has a large hollow cavity space and super-paramagnetic characteristics, the inner amino-functio- nalized MHSS could be labeled with radioisotope 99mTc to study the MHSS’s magnetic targeting distribution in vivo. These results indicate the potential of MHSS in the magnetic targeted drug delivery system.
文章引用:赵琴, 陈忻, 余阳, 杨宇翔. 纳米磁性空心二氧化硅球的制备及其靶向作用的研究[J]. 临床医学进展, 2024, 14(3): 963-974. https://doi.org/10.12677/ACM.2024.143797

参考文献

[1] Teng, F., Xu, T., Liang, S., Buergen, G., Yao, W. and Zhu, Y. (2008) Synthesis of Hollow Mn3O4-in-Co3O4 Magnetic Microspheres and Its Chemiluminescence and Catalytic Properties. Catalysis Communications, 9, 1119-1124. [Google Scholar] [CrossRef
[2] Sadasivan, S. and Sukhorukov, G.B. (2006) Fabrication of Hol-low Multifunctional Spheres Containing MCM-41 Nanoparticles and Magnetite Nanoparticles Using Layer-by-Layer Method. Journal of Colloid and Interface Science, 304, 437-441. [Google Scholar] [CrossRef] [PubMed]
[3] Gruner, M.E. and Entel, P. (2007) Magnetic Properties of Nanostructured Hollow Microspheres. Journal of Magnetism and Magnetic Materials, 310, 2453-2455. [Google Scholar] [CrossRef
[4] Wu, W., DeCoster, M.A., Daniel, B.M., Chen, J.F., Yu, M.H., Cruntu, D. and Zhou, W.L. (2006) One-step Synthesis of Magnetic Hollow Silica and Their Application for Nanomedi-cine. Journal of Applied Physics, 99, 08H104. [Google Scholar] [CrossRef
[5] Zhou, J., Wu, W., Caruntu, D., Yu, M.H., Martin, A., Chen, J.F. and Zhou, W.L. (2007) Synthesis of Porous Magnetic Hollow Silica Nanospheres for Nanomedicine Application. The Journal of Physical Chemistry C, 111, 17473-17477. [Google Scholar] [CrossRef
[6] Zhou, W., Gao, P., Shao, L., Caruntu, D., Yu, M., Chen, J. and O’Connor, C.J. (2005) Drug-Loaded, Magnetic, Hollow Silica Nanocomposites for Nanomedicine. Nanomedicine: Nanotechnology, Biology and Medicine, 1, 233-237. [Google Scholar] [CrossRef] [PubMed]
[7] Fuertes, A.B., Valdés-Solís, T., Sevilla, M. and Tartaj, P. (2008) Fabrication of Monodisperse Mesoporous Carbon Capsules Decorated with Ferrite Nanoparticles. The Journal of Physi-cal Chemistry C, 112, 3648-3654. [Google Scholar] [CrossRef
[8] Shao, L., Caruntu, D., Chen, J.F., O’Connor, C.J. and Zhou, W.L. (2005) Fabrication of Magnetic Hollow Silica Nanospheres for Bioapplications. Journal of Applied Physics, 97, 10Q908. [Google Scholar] [CrossRef
[9] Pu, H.T., Jiang, F.J. and Yang, Z.L. (2006) Preparation and Properties of Soft Magnetic Particles Based on Fe3O4 and Hollow Polystyrene Microsphere Composite. Materials Chemistry and Physics, 100, 10-14. [Google Scholar] [CrossRef
[10] 黄冠华, 刘序彦, 房晨曦, 顾庆峰, 雷浩. 生物模板法制备磁性中空微球的方法和应用[J]. 化工进展, 2021, 40(5): 2613-2623.
[11] 鲍艳, 王彤. 中空SiO2微球的制备及其在缓/控释应用中的新进展[J]. 无机材料学报, 2016, 31(12): 1269-1278.
[12] Chang, Z., Li, H., Yang, Y., Yuan, H., Huang, Y., Yao, P. and Ni, C. (2022) Effects of Different Pore Structures on Loading and Sustained-Release of MMC by Hollow Mesoporous Fe(0)@mSiO2. Journal of Porous Materials, 29, 1489-1505. [Google Scholar] [CrossRef
[13] Tartaj, P., Gonzalez-Carreno, T. and Serna, C.J. (2001) Sin-gle-Step Nanoengineering of Silica Coated Maghemite Hollow Spheres with Tunable Magnetic Properties. Advanced Materials, 13, 1620-1624. [Google Scholar] [CrossRef
[14] Wu, W., Caruntu, D., Martin, A., Yu, M.H., O’Connor, C.J., Zhou, W.L. and Chen, J.F. (2007) Synthesis of Magnetic Hollow Silica Using Polystyrene Bead as a Template. Journal of magnetism and magnetic materials, 311, 578-582. [Google Scholar] [CrossRef
[15] Caruso, F., Spasova, M., Susha, A., Giersig, M. and Caruso, R. A. (2001) Magnetic Nanocomposite Particles and Hollow Spheres Constructed by a Sequential Layering Approach. Chemistry of Materials, 13, 109-116. [Google Scholar] [CrossRef
[16] Zhu, Y., Ikoma, T., Hanagata, N. and Kaskel, S. (2010) Rattle-Type Fe3O4@SiO2 Hollow Mesoporous Spheres as Carriers for Drug Delivery. Small, 6, 471-478. [Google Scholar] [CrossRef] [PubMed]
[17] Zhao, W., Chen, H., Li, Y., Li, L., Lang, M. and Shi, J. (2008) Uni-form Rattle-Type Hollow Magnetic Mesoporous Spheres as Drug Delivery Carriers and Their Sustained-Release Prop-erty. Advanced Functional Materials, 18, 2780-2788. [Google Scholar] [CrossRef
[18] Radziuk, D., Shchukin, D.G., Skirtach, A., Möhwald, H. and Sukhorukov, G. (2007) Synthesis of Silver Nanoparticles for Remote Opening of Polyelectrolyte Microcapsules. Langmuir, 23, 4612-4617. [Google Scholar] [CrossRef] [PubMed]
[19] Reetz, M.T. and Jaeger, K.E. (2000) Enantioselective Enzymes for Organic Synthesis Created by Directed Evolution. Chemistry—A European Journal, 6, 407-412. [Google Scholar] [CrossRef
[20] 邓伟, 陈国, 贾连昆, 王满意, 宫理想, 阚成友. 制备方法对模板法制备SiO2中空微球形貌的影响[J]. 化学学报, 2010, 68(19): 2000-2006.
[21] 王园园, 曾丹林, 沈康文. 聚苯乙烯基核壳型微球的研究进展[J]. 化工新型材料, 2019, 47(6): 55-58.
[22] Deng, Z., Chen, M., Gu, G. and Wu, L. (2008) A Facile Method to Fabricate ZnO Hollow Spheres and Their Photocatalytic Property. The Journal of Physical Chemistry B, 112, 16-22. [Google Scholar] [CrossRef] [PubMed]
[23] Chen, M., Wu, L., Zhou, S. and You, B. (2006) A Method for the Fabrica-tion of Monodisperse Hollow Silica Spheres. Advanced Materials, 18, 801-806. [Google Scholar] [CrossRef
[24] Liang, X., Shi, H., Jia, X., Yang, Y. and Liu, X. (2011) Dispersibil-ity, Shape and Magnetic Properties of Nano-Fe3O4 Particles. Materials Sciences and Applications, 2, Article No. 1644. [Google Scholar] [CrossRef
[25] Yuan, J., Zhang, X. and Qian, H. (2010) A Novel Approach to Fab-rication of Superparamagnetite Hollow Silica/Magnetic Composite Spheres. Journal of Magnetism and Magnetic Materi-als, 322, 2172-2176. [Google Scholar] [CrossRef
[26] Dong, C., Zhao, H., Yang, S., Shi, J., Huang, J., Cui, L. and Jia, B. (2013) 99mTc-Labeled Dimeric Octreotide Peptide: A Radiotracer with High Tumor Uptake for Single-Photon Emis-sion Computed Tomography Imaging of Somatostatin Receptor Subtype 2-Positive Tumors. Molecular Pharmaceutics, 10, 2925-2933. [Google Scholar] [CrossRef] [PubMed]
[27] Liu, Z., Huang, J., Dong, C., Cui, L., Jin, X., Jia, B. and Wang, F. (2012) 99mTc-Labeled RGD-BBN Peptide for Small-Animal SPECT/CT of Lung Carcinoma. Molecular Pharmaceutics, 9, 1409-1417. [Google Scholar] [CrossRef] [PubMed]