Ciarleglio Gianluca, Placido Monica, Toto Elisa, Santonicola Maria Gabriella
Department of Chemical Engineering Materials Environment, Sapienza University of Rome, Via del Castro Laurenziano 7, 00161 Rome, Italy.
Erbagil s.r.l., Via Luigi Settembrini 13, 82037 Telese Terme, Italy.
Polymers (Basel). 2024 Sep 30;16(19):2765. doi: 10.3390/polym16192765.
Smart materials for drug delivery are designed to offer a precise and controlled release of therapeutic agents. By responding to specific physiological stimuli, such as changes in temperature and pH, these materials improve treatment efficacy and minimize side effects, paving the way for personalized therapeutic solutions. In this study, we present the fabrication of dual-responsive alginate/poly(N-isopropylacrylamide) (PNIPAM) microspheres, having the ability to respond to both pH and temperature variations and embedding the lipophilic bioactive compound Ozoile. Ozoile Stable Ozonides is obtained from extra virgin olive oil and acts as an inducer, interacting with major biological pathways by means of modulating the systemic redox balance. The dual-responsive microspheres are prepared by electrospray technique without the use of organic solvents. PNIPAM is synthesized by radical polymerization using the APS/TEMED redox initiators. The microspheres are further optimized with a chitosan coating to enhance their stability and modulate the degradation kinetics of the gel matrix. A comprehensive morphological analysis, Fourier transform infrared (FTIR) spectroscopy, and degradation assays are conducted to confirm the structural stability and pH-responsive behavior of the hydrogel microspheres. A study of the volume phase transition temperature (VPTT) by differential scanning calorimetry (DSC) is used to assess the microsphere thermal response. This research introduces a promising methodology for the development of targeted drug delivery systems, which are particularly useful in the context of oxidative stress modulation and inflammation management.
用于药物递送的智能材料旨在实现治疗剂的精确可控释放。通过对特定生理刺激(如温度和pH值变化)做出响应,这些材料提高了治疗效果并将副作用降至最低,为个性化治疗方案铺平了道路。在本研究中,我们展示了双响应藻酸盐/聚(N-异丙基丙烯酰胺)(PNIPAM)微球的制备,该微球能够对pH值和温度变化做出响应,并包埋亲脂性生物活性化合物奥佐伊勒。奥佐伊勒稳定臭氧化物由特级初榨橄榄油制得,作为一种诱导剂,通过调节全身氧化还原平衡与主要生物途径相互作用。双响应微球通过电喷雾技术制备,不使用有机溶剂。PNIPAM通过使用APS/TEMED氧化还原引发剂的自由基聚合反应合成。微球进一步用壳聚糖涂层进行优化,以提高其稳定性并调节凝胶基质的降解动力学。进行了全面的形态分析、傅里叶变换红外(FTIR)光谱分析和降解试验,以确认水凝胶微球的结构稳定性和pH响应行为。通过差示扫描量热法(DSC)对体积相变温度(VPTT)进行研究,以评估微球的热响应。本研究为靶向药物递送系统的开发引入了一种有前景的方法,该系统在氧化应激调节和炎症管理方面特别有用。