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Smart Magnetically Responsive Hydrogel Nanoparticles Prepared by a Novel Aerosol-Assisted Method for Biomedical and Drug Delivery Applications

机译:通过新型气溶胶辅助方法制备的用于生物医学和药物输送应用的智能磁响应水凝胶纳米颗粒

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We have developed a novel spray gelation-based method to synthesize a new series of magnetically responsive hydrogel nanoparticles for biomedical and drug delivery applications. The method is based on the production of hydrogel nanoparticles from sprayed polymeric microdroplets obtained by an air-jet nebulization process that is immediately followed by gelation in a crosslinking fluid. Oligoguluronate (G-blocks) was prepared through the partial acid hydrolysis of sodium alginate. PEG-grafted chitosan was also synthesized and characterized (FTIR, EA, and DSC). Then, magnetically responsive hydrogel nanoparticles based on alginate and alginate/G-blocks were synthesized via aerosolization followed by either ionotropic gelation or both ionotropic and polyelectrolyte complexation using CaC1_2 or PEG-g-chitosan/CaC1_2 as crosslinking agents, respectively. Particle size and dynamic swelling were determined using dynamic light scattering (DLS) and microscopy. Surface morphology of the nanoparticles was examined using SEM. The distribution of magnetic cores within the hydrogels nanoparticles was also examined using TEM. In addition, the iron and calcium contents of the particles were estimated using EDS. Spherical magnetic hydrogel nanoparticles with average particle size of 811 ± 162 to 941 ± 2 nm were obtained. This study showed that the developed method is promising for the manufacture of hydrogel nanoparticles, and it represents a relatively simple and potential low-cost system.
机译:我们已经开发了一种基于喷雾胶凝的新型方法,可以合成一系列用于生物医学和药物输送应用的磁响应水凝胶纳米颗粒。该方法是基于由喷射的聚合物微滴生产的水凝胶纳米颗粒,所述聚合物微滴是通过喷气雾化工艺获得的,随后立即在交联流体中胶凝。通过藻酸钠的部分酸水解制备寡聚古龙酸酯(G-嵌段)。还合成并表征了PEG接枝的壳聚糖(FTIR,EA和DSC)。然后,通过气雾化,然后分别使用CaC1_2或PEG-g-壳聚糖/ CaC1_2作为交联剂,通过离子化凝胶或离子型和离子型与聚电解质的络合物合成基于藻酸盐和藻酸盐/ G嵌段的磁响应水凝胶纳米颗粒。使用动态光散射(DLS)和显微镜确定颗粒大小和动态溶胀。使用SEM检查纳米颗粒的表面形态。还使用TEM检查了水凝胶纳米颗粒中磁芯的分布。另外,使用EDS估算了颗粒中的铁和钙含量。获得平均粒径为811±162至941±2 nm的球形磁性水凝胶纳米颗粒。这项研究表明,所开发的方法有望用于制造水凝胶纳米颗粒,它代表了一个相对简单且潜在的低成本系统。

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