Department of Chemistry, University of Kalyani, Kalyani 741235, West Bengal, India.
Scientist Novel Hair Dyes, Henkel Beauty Care, Henkel AG & Co. KGaA, Henkelstraße 67, 40589 Düsseldorf, Germany.
ACS Appl Bio Mater. 2022 Aug 15;5(8):3896-3911. doi: 10.1021/acsabm.2c00435. Epub 2022 Aug 4.
The global health scenario in present times has raised human awareness about drug delivery strategies. Among colloidal drug delivery vehicles, vesicular nanocarriers such as liposomes and niosomes are popular. However, liposomes and niosomes get disrupted in the harsh environment of the gastrointestinal tract. In this context, the drug delivery community has reported the superior performance of vesicles containing bile salts, that is, bilosomes. The present work attempts to examine the structural/morphological aspects underlying the superior performance of bilosomes. Optical microscopy, electron microscopy, and light scattering give a definite proof of the enhanced stability of bilosomes compared to niosomes, both prepared from the same amphiphilic molecule. Fluorescence probing of the vesicles provides detailed insight into the bilayer characteristics and the differences between bilosomes and niosomes. Fluorescence resonance energy transfer studies lend further support to the findings that bilosomes have a more flexible bilayer structure than niosomes. The entrapment efficiency of the vesicles for the well-known antioxidant curcumin (whose bioavailability is a matter of concern due to low water solubility) was also studied. Bilosomes show higher curcumin entrapment efficiency than niosomes. For use in drug delivery, one needs to establish a trade-off between cargo/drug entrapment and release. Thus, a flexible bilayer structure is an advantage.
当前的全球健康形势提高了人们对药物传递策略的认识。在胶体药物传递载体中,囊泡纳米载体如脂质体和非诺体很受欢迎。然而,脂质体和非诺体在胃肠道的恶劣环境中会被破坏。在这种情况下,药物传递界报告了含有胆汁盐的囊泡(即双体)的优越性能。本工作试图研究双体优越性能的结构/形态学基础。光学显微镜、电子显微镜和光散射技术为双体与由相同两亲分子制备的非诺体相比具有增强的稳定性提供了明确的证据。囊泡的荧光探针提供了对双层特性以及双体和非诺体之间差异的详细了解。荧光共振能量转移研究进一步支持了这样的发现,即双体具有比非诺体更灵活的双层结构。囊泡对众所周知的抗氧化剂姜黄素(由于其低水溶性而引起生物利用度问题)的包封效率也进行了研究。双体显示出比非诺体更高的姜黄素包封效率。为了在药物传递中使用,需要在货物/药物包封和释放之间建立平衡。因此,灵活的双层结构是一个优势。