Mohan Hugh, Bincoletto Valeria, Arpicco Silvia, Giordani Silvia
School of Chemical Sciences, Dublin City University, Glasnevin, D09 NA55 Dublin, Ireland.
Department of Drug Science and Technology, University of Torino, Via P. Giuria 9, 10125 Torino, Italy.
Materials (Basel). 2022 Aug 30;15(17):5987. doi: 10.3390/ma15175987.
Boron/nitrogen co-doped carbon nano-onions (BN-CNOs) are spherical nanoparticles that consist of multiple inter-nestled fullerene layers, giving them an onion-like internal structure. They have potential as nanocarriers due to their small size, aqueous dispersibility, and biocompatibility. The non-covalent attachment of a biocompatible polymer to BN-CNOs is a simple and effective method of creating a scaffold for a novel nanocarrier system as it allows for increased aqueous dispersibility whilst preventing the immune system from recognising the particle as a foreign object. The non-covalent approach also preserves the electronic and structural properties of the BN-CNOs. In this study, we attached a hyaluronic acid-phospholipid (HA-DMPE) conjugate polymer to the BN-CNO's surface to improve its hydrophilicity and provide targetability toward HA-receptor overexpressing cancer cells. To this end, various ratios of HA-DMPE to BN-CNOs were investigated. The resulting supramolecular systems were characterised via UV-Vis absorption and FTIR spectroscopy, dynamic light scattering, and zeta potential techniques. It was found that the HA-DMPE conjugate polymer was permanently wrapped around the BN-CNO nanoparticle surface. Moreover, the resulting BN-CNO/HA-DMPE supramolecular systems displayed enhanced aqueous solubility compared to unfunctionalised BN-CNOs, with excellent long-term stability observed in aqueous dispersions.
硼/氮共掺杂碳纳米洋葱(BN-CNOs)是由多个相互嵌套的富勒烯层组成的球形纳米颗粒,赋予它们类似洋葱的内部结构。由于其尺寸小、在水中的分散性和生物相容性,它们具有作为纳米载体的潜力。将生物相容性聚合物非共价连接到BN-CNOs上是一种简单有效的方法,可用于创建新型纳米载体系统的支架,因为它可以提高在水中的分散性,同时防止免疫系统将颗粒识别为异物。非共价方法还保留了BN-CNOs的电子和结构特性。在本研究中,我们将透明质酸-磷脂(HA-DMPE)共轭聚合物连接到BN-CNO的表面,以提高其亲水性,并使其对过表达HA受体的癌细胞具有靶向性。为此,研究了HA-DMPE与BN-CNOs的各种比例。通过紫外-可见吸收光谱、傅里叶变换红外光谱、动态光散射和zeta电位技术对所得的超分子系统进行了表征。结果发现,HA-DMPE共轭聚合物永久包裹在BN-CNO纳米颗粒表面。此外,与未功能化的BN-CNOs相比,所得的BN-CNO/HA-DMPE超分子系统在水中的溶解度增强,在水分散体中观察到优异的长期稳定性。