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一种用于局部递送治疗性纳米颗粒至宫颈癌的三维可打印水凝胶配方。

A Three-Dimensional Printable Hydrogel Formulation for the Local Delivery of Therapeutic Nanoparticles to Cervical Cancer.

机构信息

Département de Génie des Mines, de la Métallurgie et des Matériaux, Centre de Recherche sur les Matériaux Avancés (CERMA), Université Laval, Québec G1V 0A6, Canada.

Axe Médecine Régénératrice, Centre de Recherche du CHU de Québec - Université Laval, 2705, boul. Laurier (T1-61a), Québec G1V 4G2, Canada.

出版信息

ACS Biomater Sci Eng. 2022 Mar 14;8(3):1200-1214. doi: 10.1021/acsbiomaterials.1c01399. Epub 2022 Feb 28.

Abstract

Cervical cancer is the fourth most common malignancy among women. Compared to other types of cancer, therapeutic agents can be administrated locally at the mucosal vaginal membrane. Thermosensitive gels have been developed over the years for contraception or for the treatment of bacterial, fungal, and sexually transmitted infections. These formulations often carry therapeutic nanoparticles and are now being considered in the arsenal of tools for oncology. They can also be three-dimensionally (3D) printed for a better geometrical adjustment to the anatomy of the patient, thus enhancing the local delivery treatment. In this study, a localized delivery system composed of a Pluronic F127-alginate hydrogel with efficient nanoparticle (NP) release properties was prepared for intravaginal application procedures. The kinetics of hydrogel degradation and its NP releasing properties were demonstrated with ultrasmall gold nanoparticles (∼80% of encapsulated AuNPs released in 48 h). The mucoadhesive properties of the hydrogel formulation were assayed by the periodic acid/Schiff reagent staining, which revealed that 19% of mucins were adsorbed on the gel's surface. The hydrogel formulation was tested for cytocompatibility in three cell lines (HeLa, CRL 2616, and BT-474; no sign of cytotoxicity revealed). The release of AuNPs from the hydrogel and their accumulation in vaginal membranes were quantitatively measured / with positron emission tomography, a highly sensitive modality allowing real-time imaging of nanoparticle diffusion (lag time to start of permeation of 3.3 h, 47% of AuNPs accumulated in the mucosa after 42 h). Finally, the potential of the AuNP-containing Pluronic F127-alginate hydrogel for 3D printing was demonstrated, and the geometrical precision of the 3D printed systems was measured by magnetic resonance imaging (<0.5 mm precision; deviation from the design values <2.5%). In summary, this study demonstrates the potential of Pluronic F127-alginate formulations for the topical administration of NP-releasing gels applied to vaginal wall therapy. This technology could open new possibilities for photothermal and radiosensitizing oncology applications.

摘要

宫颈癌是女性中第四常见的恶性肿瘤。与其他类型的癌症相比,可以将治疗剂局部施用于阴道黏膜。多年来,已经开发出了热敏凝胶用于避孕或治疗细菌、真菌和性传播感染。这些制剂通常携带治疗性纳米颗粒,现在正在被考虑作为肿瘤学工具的一部分。它们也可以进行三维(3D)打印,以便更好地适应患者的解剖结构,从而增强局部递药治疗效果。在这项研究中,制备了一种由 Pluronic F127-海藻酸钠水凝胶组成的局部递药系统,该系统具有高效的纳米颗粒(NP)释放性能,可用于阴道内应用程序。通过超小金纳米颗粒(在 48 小时内释放约 80%的包裹的 AuNPs)证明了水凝胶的降解动力学及其 NP 释放性能。通过周期性酸/希夫试剂染色测定了水凝胶制剂的粘膜粘附性能,结果表明 19%的粘蛋白被吸附在凝胶表面。在三种细胞系(HeLa、CRL 2616 和 BT-474)中测试了水凝胶制剂的细胞相容性,结果表明没有细胞毒性迹象。通过正电子发射断层扫描(PET)定量测量了 AuNP 从水凝胶中的释放及其在阴道膜中的积累,这是一种高度敏感的模态,允许实时成像纳米粒子的扩散(渗透开始的滞后时间为 3.3 小时,42 小时后 47%的 AuNPs 积累在粘膜中)。最后,证明了含有 AuNP 的 Pluronic F127-海藻酸钠水凝胶用于 3D 打印的潜力,并通过磁共振成像(MRI)测量了 3D 打印系统的几何精度(<0.5mm 的精度;与设计值的偏差<2.5%)。总之,这项研究证明了 Pluronic F127-海藻酸钠制剂用于阴道壁治疗的局部施用的 NP 释放凝胶的潜力。这项技术为光热和放射增敏肿瘤学应用开辟了新的可能性。

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