College of Life Science, Engineering Research Center of the Chinese Ministry of Education for Bioreactor and Pharmaceutical Development, Jilin Agricultural University, Changchun 130118, China.
College of Tropical Crops, Hainan University, Haikou, China.
Int J Pharm. 2021 Apr 1;598:120327. doi: 10.1016/j.ijpharm.2021.120327. Epub 2021 Feb 2.
Human basic fibroblast growth factor (hFGF2) is widely recognized for accelerating skin wound healing in both animal models and randomized clinical trials. However, the low skin permeation and bioavailability of hFGF2 remain the most limiting factors in the pharmacological application. For the first time, Camelina Lipid Droplets (CLD) delivery system was displayed important virtue, by promoting the skin absorption of hFGF2, which is a key factor that accelerates the skin wound repair, and provide a new alternative for skin therapy. In this study, we used the CLD as a safer material to prepare the nanoparticles, which were characterized by size and morphology. Our data revealed that particle sizes of Camelina Lipid Droplets linked to hFGF2 (CLD-hFGF2) were around 133.5 nm; it also displayed that the complex of CLD-hFGF2 penetrates the skin barrier in deeper than an individual hFGF2. This suggests that once the hFGF2 is fixed onto the surface of CLD, it can cross the stratum corneum and play a therapeutic role into the dermis. Furthermore, we demonstrated that CLD-hFGF2 enhances fibroblast migration, and significantly improves skin regeneration for accelerating wound healing without any significant toxicity. This paper highlights the importance of CLD as an emerging delivery system; it is also providing a new and applicable therapeutic research direction through enhancing the skin permeation of hFGF2 to accelerate wound healing.
人碱性成纤维细胞生长因子(hFGF2)在动物模型和随机临床试验中均被广泛认为可加速皮肤伤口愈合。然而,hFGF2 的皮肤渗透性和生物利用度低仍然是其在药理学应用中最具限制的因素。首次展示了荠蓝脂滴(CLD)输送系统的重要优点,通过促进 hFGF2 的皮肤吸收,这是加速皮肤伤口修复的关键因素,并为皮肤治疗提供了新的选择。在这项研究中,我们使用 CLD 作为更安全的材料来制备纳米颗粒,并对其大小和形态进行了表征。我们的数据表明,与 hFGF2 结合的荠蓝脂滴(CLD-hFGF2)的颗粒大小约为 133.5nm;还表明 CLD-hFGF2 复合物可以穿透皮肤屏障更深,而不是单个 hFGF2。这表明一旦 hFGF2 固定在 CLD 的表面,它就可以穿过角质层并发挥治疗作用进入真皮。此外,我们证明 CLD-hFGF2 可增强成纤维细胞迁移,并显著改善皮肤再生,加速伤口愈合,而没有任何明显的毒性。本文强调了 CLD 作为新兴输送系统的重要性;它还通过增强 hFGF2 的皮肤渗透性来加速伤口愈合,为增强皮肤渗透性提供了新的适用的治疗研究方向。