利用脂质体纳米纤维素水凝胶进行nir光驱动的按需药物递送

IF 6.2 Q1 CHEMISTRY, APPLIED
Puja Gangurde , Zahra Gounani , Jacopo Zini , Roberta Teixeira Polez , Monika Österberg , Patrick Lauren , Tatu Lajunen , Timo Laaksonen
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引用次数: 0

摘要

刺激反应纳米颗粒因其通过外部信号控制药物释放的能力而受到关注。然而,生物降解和毒性等挑战阻碍了它们的应用。本研究通过将光活化脂质体与纤维素纳米纤维(CNF)水凝胶结合,创建了一个控制释放系统,其中脂质体作为药物储存器,保护药物分子并防止不必要的货物泄漏,以实现按需局部药物递送。我们对阳离子脂质体与纳米纤维素表面相互作用的研究表明,尽管脂质体分布不均匀,但由于强静电相互作用和纤维网络,脂质体与纳米纤维素水凝胶结合,形成了一个类似仓库的药物储存库系统。我们评估了水凝胶厚度和光照剂量以优化货物释放。在近红外光(808 nm, 1 W/cm2)的激活下,热敏脂质体双层内的光敏剂产生热量,使脂质体泄漏,导致按需释放货物。我们观察到在低剂量光(20 J/cm2)下释放高达50%,暴露于高剂量光(80 J/cm2)后增加到80%,突出了系统的灵敏度。这种双平台结合了纳米纤维素的生物相容性和光活化脂质体的可调性,为按需给药提供了有希望的方法,具有个性化医疗的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Harnessing liposomal nanocellulose hydrogel for NIR-light driven on-demand drug delivery

Harnessing liposomal nanocellulose hydrogel for NIR-light driven on-demand drug delivery
Stimuli-responsive nanoparticles have gained attention for their ability to control drug release via external signals. However, challenges like biodegradation and toxicity hinder their applications. This study introduces a system by integrating light-activated liposomes with cellulose nanofiber (CNF) hydrogel, creating a controlled release system where liposomes act as drug reservoirs, protecting drug molecules and preventing unwanted cargo leakage for on-demand localized drug delivery. Our surface interaction study between cationic liposomes and nanocellulose shows that the liposomes, while not uniformly distributed, are bound to the nanocellulose hydrogel due to strong electrostatic interactions and fiber networks, thus forming a depot-like drug reservoir system.
We evaluated hydrogel thickness and light dose to optimize the cargo release. Upon activation with near-infrared light (808 nm, 1 W/cm2), the photosensitizer inside the bilayer of thermosensitive liposome generates heat, which makes liposome leaky, resulting in on-demand cargo release. We observed up to 50 % release at low dose (20 J/cm2) of light, which increased to 80 % after exposure to higher dose of light (80 J/cm2), highlighting the sensitivity of the system. This dual-platform combines the biocompatibility of nanocellulose with tunability of light-activated liposomes, presenting promising approach for on-demand drug delivery with significant potential for personalized medicine.
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CiteScore
8.70
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