Institute of Advanced Chemistry of Catalonia (IQAC-CSIC), C/Jordi Girona, 18-26, Barcelona, Spain; CIBER of Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), Barcelona, Spain.
Institute of Advanced Chemistry of Catalonia (IQAC-CSIC), C/Jordi Girona, 18-26, Barcelona, Spain; CIBER of Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), Barcelona, Spain.
Mater Sci Eng C Mater Biol Appl. 2020 Jun;111:110838. doi: 10.1016/j.msec.2020.110838. Epub 2020 Mar 12.
Perfluorohexane-loaded nanocapsules are interesting materials for many biomedical applications such as oxygen delivery systems or contrast agents. However, their formulation into stable colloidal systems is challenging because of their hydro- and lipophobicity, high density and high vapour pressure. In this study, perfluorohexane-loaded polymeric nanocapsules are prepared for the first time by low-energy emulsification and selective solvent diffusion. The colloidal stability of the perfluorohexane nano-emulsion templates has been improved by the incorporation of an apolar low-density oil (isopropyl myristate) in the dispersed phase, thus addressing droplet coarsening and migration phenomena. The perfluorohexane-loaded nanocapsules prepared from the nano-emulsions show sizes smaller than the corresponding emulsion templates (below 150 nm by dynamic light scattering) and exhibit good stability under storage conditions. Hyperspectral enhanced dark field microscopy revealed a layered core/shell structure and allowed also to confirm the encapsulation of perfluorohexane which was quantified by elemental microanalysis. Although isopropyl myristate has an unfavourable biocompatibility profile, cell viability is enhanced when perfluorohexane is present in the nanocapsules, which is attributed to its high oxygen transport capacity.
全氟己烷负载纳米胶囊是许多生物医学应用(如氧输送系统或对比剂)的有趣材料。然而,由于其亲水性和疏脂性、高密度和高蒸气压,将其配制成稳定的胶体系统具有挑战性。在这项研究中,首次通过低能量乳化和选择性溶剂扩散制备了全氟己烷负载的聚合物纳米胶囊。通过在分散相中掺入非极性低密度油(肉豆蔻异丙酯),改善了全氟己烷纳米乳液模板的胶体稳定性,从而解决了液滴粗化和迁移现象。由纳米乳液制备的全氟己烷负载的纳米胶囊的粒径小于相应的乳液模板(动态光散射法小于 150nm),并且在储存条件下表现出良好的稳定性。高光谱增强暗场显微镜显示出分层的核/壳结构,并通过元素微分析证实了全氟己烷的封装,该封装通过元素微分析进行了定量。尽管肉豆蔻异丙酯的生物相容性不佳,但当纳米胶囊中存在全氟己烷时,细胞活力会增强,这归因于其高氧气传输能力。