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Ionic Driven Embedment of Hyaluronic Acid Coated Liposomes in Polyelectrolyte Multilayer Films for Local Therapeutic Delivery

机译:离子驱动的透明质酸涂层脂质体在聚电解质多层膜中的局部包埋递送。

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摘要

The ability to control the spatial distribution and temporal release of a therapeutic remains a central challenge for biomedical research. Here, we report the development and optimization of a novel substrate mediated therapeutic delivery system comprising of hyaluronic acid covalently functionalized liposomes (HALNPs) embedded into polyelectrolyte multilayer (PEM) platform via ionic stabilization. The PEM platform was constructed from sequential deposition of Poly-L-Lysine (PLL) and Poly(Sodium styrene sulfonate) (SPS) “(PLL/SPS)4.5” followed by adsorption of anionic HALNPs. An adsorption affinity assay and saturation curve illustrated the preferential HALNP deposition density for precise therapeutic loading. (PLL/SPS)2.5 capping layer on top of the deposited HALNP monolayer further facilitated complete nanoparticle immobilization, cell adhesion, and provided nanoparticle confinement for controlled linear release profiles of the nanocarrier and encapsulated cargo. To our knowledge, this is the >first study to demonstrate the successful embedment of a translatable lipid based nanocarrier into a substrate that allows for temporal and spatial release of both hydrophobic and hydrophilic drugs. Specifically, we have utilized our platform to deliver chemotherapeutic drug Doxorubicin from PEM confined HALNPs. Overall, we believe the development of our HALNP embedded PEM system is significant and will catalyze the usage of substrate mediated delivery platforms in biomedical applications.
机译:控制治疗剂的空间分布和暂时释放的能力仍然是生物医学研究的主要挑战。在这里,我们报告开发和优化的新型基质介导的治疗传递系统,该系统包括通过离子稳定作用嵌入聚电解质多层(PEM)平台的透明质酸共价功能化脂质体(HALNPs)。 PEM平台是通过依次沉积聚-L-赖氨酸(PLL)和聚(苯乙烯磺酸钠)(SPS)“(PLL / SPS)4.5”构建的,然后吸附阴离子HALNP。吸附亲和力测定和饱和度曲线说明了用于精确治疗负载的优先HALNP沉积密度。沉积的HALNP单层顶部的(PLL / SPS)2.5覆盖层进一步促进了纳米颗粒的完全固定,细胞粘附,并为纳米载体和封装货物的线性释放分布提供了纳米颗粒限制。据我们所知,这是>第一项研究,以证明可翻译的基于脂质的纳米载体成功嵌入基质中,从而可以在时间和空间上释放疏水性和亲水性药物。具体而言,我们已经利用我们的平台从PEM受限的HALNPs中递送化疗药物阿霉素。总体而言,我们认为HALNP嵌入式PEM系统的开发意义重大,并将催化生物医学应用中底物介导的递送平台的使用。

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