Silva Elisabete, Barreiros Luísa, Segundo Marcela A, Costa Lima Sofia A, Reis Salette
UCIBIO, REQUIMTE, Departamento de Ciências Químicas, Faculdade de Farmácia, Universidade do Porto, Rua de Jorge Viterbo Ferreira, 228, 4050-313 Porto, Portugal.
UCIBIO, REQUIMTE, Departamento de Ciências Químicas, Faculdade de Farmácia, Universidade do Porto, Rua de Jorge Viterbo Ferreira, 228, 4050-313 Porto, Portugal.
Acta Biomater. 2017 Apr 15;53:439-449. doi: 10.1016/j.actbio.2017.01.057. Epub 2017 Jan 22.
Knowledge of delivery system transport through epidermal cell monolayer is vital to improve skin permeation and bioavailability. Recently, nanostructured lipid carriers (NLCs) have gained great attention for transdermal delivery due to their biocompatibility, high drug payload, occlusive properties and skin hydration effect. However, the nanocarriers transport related mechanisms in epidermal epithelial cells are not yet understood. In this research, the internalization and transport pathways of the NLCs across the epidermal epithelial cell monolayer (HaCaT cells) were investigated. The 250nm sized witepsol/miglyol NLCs, prepared by hot homogenization had reduced cytotoxicity and no effect on the integrity of cell membrane in human HaCaT keratinocytes. The internalization was time-, concentration- and energy-dependent, and the uptake of NLCs was a vesicle-mediated process by macropinocytosis and clathrin-mediated pathways. 3% of NLCs were found at the apical membrane side of the HaCaT monolayer through exocytosis mechanism. Additionally, the endoplasmic reticulum, Golgi apparatus and microtubules played crucial roles in the transport of NLCs out of HaCaT cells. NLCs were transported intact across the human keratinocytes monolayer, without disturbing the tight junction's structure. From the transcytosis data only approximately 12% of the internalized NLCs were passed from the apical to the basolateral side. The transcytosis of NLCs throughout the HaCaT cell monolayer towards the basolateral membrane side requires the involvement of the endoplasmic reticulum, Golgi apparatus and microtubules. Our findings may contribute to a systematic understanding of NLCs transport across epidermal epithelial cell monolayers and their optimization for clinical transdermal application.
Transdermal drug delivery is a challenging and growing area of clinical application. Lipid nanoparticles such as nanostructured lipid carriers (NLCs) have gained wide interest for transdermal drug delivery. However these nanocarriers' interactions with epidermal epithelial barrier are yet unknown. Unveiling the mechanisms involved in NLCs transport across the epidermal epithelial monolayers will contribute with valuable information to achieve enhanced skin permeability, superior bioavailability and consequently improved therapeutic effect. With our present work we could certainly provide researchers and clinicians guidance for the design of optimized transdermal delivery systems, based on the nanomaterials and biological interactions.
了解递送系统通过表皮细胞单层的转运对于提高皮肤渗透性和生物利用度至关重要。最近,纳米结构脂质载体(NLC)因其生物相容性、高载药量、封闭性和皮肤保湿作用而在透皮给药方面备受关注。然而,纳米载体在表皮上皮细胞中的转运相关机制尚不清楚。在本研究中,研究了NLC跨表皮上皮细胞单层(HaCaT细胞)的内化和转运途径。通过热均质法制备的250nm大小的Witepsol/ Miglyol NLC对人HaCaT角质形成细胞的细胞毒性降低,且对细胞膜完整性无影响。内化是时间、浓度和能量依赖性的,NLC的摄取是通过巨胞饮作用和网格蛋白介导的途径的囊泡介导过程。通过胞吐机制在HaCaT单层的顶端膜侧发现了3%的NLC。此外,内质网、高尔基体和微管在NLC从HaCaT细胞中转运过程中起关键作用。NLC完整地穿过人角质形成细胞单层,而不干扰紧密连接的结构。从转胞吞数据来看,只有大约12%内化的NLC从顶端侧转运到基底外侧。NLC在整个HaCaT细胞单层向基底外侧膜侧的转胞吞作用需要内质网、高尔基体和微管的参与。我们的研究结果可能有助于系统地了解NLC跨表皮上皮细胞单层的转运及其在临床透皮应用中的优化。
透皮给药是一个具有挑战性且不断发展的临床应用领域。脂质纳米颗粒如纳米结构脂质载体(NLC)在透皮给药方面引起了广泛关注。然而,这些纳米载体与表皮上皮屏障的相互作用尚不清楚。揭示NLC跨表皮上皮单层转运所涉及的机制将为实现增强的皮肤渗透性、卓越的生物利用度以及因此改善的治疗效果提供有价值的信息。通过我们目前的工作,我们肯定可以为基于纳米材料和生物相互作用的优化透皮递送系统的设计为研究人员和临床医生提供指导。