Department of Bioengineering, Santa Clara University, Santa Clara, CA 95053, USA.
Int J Mol Sci. 2022 Apr 8;23(8):4118. doi: 10.3390/ijms23084118.
Over the past few years, researchers have demonstrated the use of hydrogels to design drug delivery platforms that offer a variety of benefits, including but not limited to longer circulation times, reduced drug degradation, and improved targeting. Furthermore, a variety of strategies have been explored to develop stimulus-responsive hydrogels to design smart drug delivery platforms that can release drugs to specific target areas and at predetermined rates. However, only a few studies have focused on exploring how innate hydrogel properties can be optimized and modulated to tailor drug dosage and release rates. Here, we investigated the individual and combined roles of polymer concentration and crosslinking density (controlled using both chemical and nanoparticle-mediated physical crosslinking) on drug delivery rates. These experiments indicated a strong correlation between the aforementioned hydrogel properties and drug release rates. Importantly, they also revealed the existence of a saturation point in the ability to control drug release rates through a combination of chemical and physical crosslinkers. Collectively, our analyses describe how different hydrogel properties affect drug release rates and lay the foundation to develop drug delivery platforms that can be programmed to release a variety of bioactive payloads at defined rates.
在过去的几年中,研究人员已经证明了水凝胶在设计药物输送平台方面的应用,这些平台具有多种优势,包括但不限于更长的循环时间、减少药物降解和改善靶向性。此外,已经探索了各种策略来开发对刺激响应的水凝胶,以设计能够将药物递送到特定靶区并以预定速率释放的智能药物输送平台。然而,只有少数研究集中在探索如何优化和调节固有水凝胶性质以调整药物剂量和释放速率。在这里,我们研究了聚合物浓度和交联密度(分别通过化学和纳米颗粒介导的物理交联来控制)对药物释放速率的单独和联合作用。这些实验表明,上述水凝胶性质与药物释放速率之间存在很强的相关性。重要的是,它们还揭示了通过化学和物理交联剂的组合控制药物释放速率的能力存在饱和点。总的来说,我们的分析描述了不同的水凝胶性质如何影响药物释放速率,并为开发能够以定义的速率释放各种生物活性有效载荷的药物输送平台奠定了基础。