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Target-Specific Superparamagnetic Hydrogel with Excellent pH Sensitivity and Reversibility: A Promising Platform for Biomedical Applications

机译:靶特异性超顺磁性水凝胶,具有优异的pH敏感性和可逆性:一种有希望的生物医学应用的平台

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Superparamagnetism has been widely used for many biomedical applications, such as early detection of inflammatory cancer and diabetes, magnetic resonance imaging (MRI), hyperthermia, etc., whereas incorporation of superparamagnetism in stimulus-responsive hydrogels has now gained substantial interest and attention for application in these fields. Recently, pH-responsive superparamagnetic hydrogels showing the potential use in disease diagnosis, biosensors, polymeric drug carriers, and implantable devices, have been developed based on the fact that pH is an important environmental factor in the body and some disease states manifest themselves by a change in the pH value. However, improvement in pH sensitivity of magnetic hydrogels is a dire need for their practical applications. In this study, we report the distinctly high pH sensitivity of new synthesized dual-responsive magnetic hydrogel nanocomposites, which was accomplished by copolymerization (free-radical polymerization) of two pH-sensitive monomers, acrylic acid (AA) and vinylsulfonic acid (VSA) with an optimum ratio, in the presence of presynthesized superparamagnetic iron oxide nanoparticles (Fe_(3)O_(4)(OH)_(x) ). The monomers contain pH-sensitive functional groups (COO~(–) and SO_(3)~(–) for AA and VSA, respectively), and they have also been widely used as biomaterials because of the good biocompatibility. The pH sensitivity of the superparamagnetic hydrogel, poly(acrylic acid-co -vinylsulfonic acid), PAAVSA/Fe_(3)O_(4), was investigated by swelling studies at different pH values from pH 7 to 1.4. Distinct pH reversibility of the system was also demonstrated through swelling/deswelling analysis. Thermal stability, chemical configuration, magnetic response, and structural properties of the system have been explored by suitable characterization techniques. Furthermore, the study reveals a pH-responsive significant change in the overall morphology and packing fraction of iron oxide nanoparticles in PAAVSA/Fe_(3)O_(4) via energy-dispersive X-ray (EDX) elemental mapping with the field emission scanning electron microscopy (FESEM) study (for freeze-dried PAAVSA/Fe_(3)O_(4), swelled at different pH values), implying a drastic change in susceptibility and induced saturation magnetization of the system. These important features could be easily utilized for the purpose of diagnosis using magnetic probe and/or impedance analysis techniques.
机译:SuperParamagnetism已被广泛用于许多生物医学应用,例如早期检测炎症癌和糖尿病,磁共振成像(MRI),热疗等,而在刺激反应水凝胶中的掺入过度分度,现在对应用进行了大量的兴趣和关注在这些领域。最近,基于pH是体内的重要环境因素和某些疾病状态,已经开发了显示疾病诊断,生物传感器,聚合物药物载体和可植入装置的疾病诊断,生物传感器,聚合物药物载体和可植入装置的潜在用途。更改pH值。然而,磁性水凝胶的pH值敏感性的改善是对其实际应用的令人责任。在该研究中,我们报告了新的合成双响应磁性水凝胶纳米复合材料的明显高pH敏感性,其通过两种pH敏感单体,丙烯酸(AA)和乙烯基磺酸(VSA)的共聚合(自由基聚合)完成具有最佳比例,在存在未加工的超顺磁性氧化铁纳米颗粒(Fe_(3)O_(4)(OH) _(X))中。单体含有pH敏感的官能团(分别用于AA和VSA的COO〜( - )和SO_(3)〜( - ),并且由于良好的生物相容性,它们也被广泛用作生物材料。通过在从pH7至1.4的不同pH值下的溶胀研究,研究了超顺磁水凝胶的pH敏感性,Paavsa / Fe_(3)O_(4),从pH7-1.4的不同pH值进行溶胀研究。还通过膨胀/抛弃分析证明了系统的不同pH可逆性。通过合适的表征技术探索了系统的热稳定性,化学配置,磁响应和结构性能。此外,该研究揭示了Paavsa / Fe_(3)O_(4)中的氧化铁纳米粒子的整体形态和包装级分的pH-响应性显着变化,通过能量分散X射线(EDX)元素映射与场发射扫描电子显微镜(FeSEM)研究(用于冻干Paavsa / Fe_(3)O_(4),在不同的pH值溶胀),暗示易感性和系统诱导饱和磁化的激烈变化。可以使用磁探针和/或阻抗分析技术容易地利用这些重要特征来诊断。

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