Mormile Cristina, Opriș Ocsana, Bellucci Stefano, Lung Ildiko, Kacso Irina, Turza Alexandru, La Pietra Matteo, Vacacela Gomez Cristian, Stegarescu Adina, Soran Maria-Loredana
National Institute for Research and Development of Isotopic and Molecular Technologies, 67-103 Donat, 400293 Cluj-Napoca, Romania.
Faculty of Chemistry, Sapienza University of Rome, P. le Aldo Moro 5, 00185 Rome, Italy.
J Funct Biomater. 2023 Nov 23;14(12):558. doi: 10.3390/jfb14120558.
The synthesis of graphene-based materials for drug delivery represents an area of active research, and the use of graphene in drug delivery systems is promising due to its unique properties. Thus, in the present work, we discuss the potential of few-layer graphene in a hydrogel system for dopamine release. The hydrogels are frequently used for these systems for their special physico-chemical properties, which can ensure that the drug is effectively released in time. However, the release from such structures is mostly determined by diffusion alone, and to overcome this restriction, the hydrogel can be "improved" with nanoscale fillers like graphene. The release kinetics of the composite obtained were analyzed to better understand how the use of graphene, instead of the more common graphene oxide (GO) and reduced graphene oxide (rGO), affects the characteristics of the system. Thus, the systems developed in this study consist of three main components: biopolymer, graphene, and dopamine. The hydrogels with graphene were prepared by combining two different solutions, one with polyacrylic acid and agarose and one with graphene prepared by the exfoliation method with microwave irradiation. The drug delivery systems were developed by adding dopamine to the obtained hydrogels. After 24 h of release, the presence of dopamine was observed, demonstrating that the system developed can slow down the drug's degradation because of the interactions with the graphene nanoplates and the polymer matrix.
用于药物递送的石墨烯基材料的合成是一个活跃的研究领域,由于其独特的性质,石墨烯在药物递送系统中的应用前景广阔。因此,在本工作中,我们讨论了少层石墨烯在水凝胶系统中用于多巴胺释放的潜力。水凝胶因其特殊的物理化学性质而经常用于这些系统,这可以确保药物及时有效地释放。然而,这种结构的释放大多仅由扩散决定,为了克服这一限制,可以用石墨烯等纳米级填料对水凝胶进行“改进”。分析了所得复合材料的释放动力学,以更好地理解使用石墨烯而非更常见的氧化石墨烯(GO)和还原氧化石墨烯(rGO)如何影响系统的特性。因此,本研究中开发的系统由三个主要成分组成:生物聚合物、石墨烯和多巴胺。含石墨烯的水凝胶是通过将两种不同的溶液混合制备的,一种是聚丙烯酸和琼脂糖溶液,另一种是通过微波辐照剥离法制备的石墨烯溶液。通过向所得水凝胶中添加多巴胺来开发药物递送系统。释放24小时后,观察到多巴胺的存在,这表明所开发的系统由于与石墨烯纳米片和聚合物基质的相互作用,可以减缓药物的降解。