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将有序介孔碳嵌入热敏水凝胶:一种用于运载货物并控制其释放曲线的前沿策略。

Embedding Ordered Mesoporous Carbons into Thermosensitive Hydrogels: A Cutting-Edge Strategy to Vehiculate a Cargo and Control Its Release Profile.

作者信息

Boffito Monica, Laurano Rossella, Giasafaki Dimitra, Steriotis Theodore, Papadopoulos Athanasios, Tonda-Turo Chiara, Cassino Claudio, Charalambopoulou Georgia, Ciardelli Gianluca

机构信息

Department of Mechanical and Aerospace Engineering, Politecnico di Torino, 10129 Turin, Italy.

PolitoBIOMed Lab, Politecnico di Torino, 10129 Turin, Italy.

出版信息

Nanomaterials (Basel). 2020 Oct 29;10(11):2165. doi: 10.3390/nano10112165.

Abstract

The high drug loading capacity, cytocompatibility and easy functionalization of ordered mesoporous carbons (OMCs) make them attractive nanocarriers to treat several pathologies. OMCs' efficiency could be further increased by embedding them into a hydrogel phase for an prolonged drug release. In this work, OMCs were embedded into injectable thermosensitive hydrogels. In detail, rod-like (diameter ca. 250 nm, length ca. 700 nm) and spherical (diameter approximately 120 nm) OMCs were synthesized by nanocasting selected templates and loaded with ibuprofen through a melt infiltration method to achieve complete filling of their pores (100% loading yield). In parallel, an amphiphilic Poloxamer® 407-based poly(ether urethane) was synthesized (Mn¯ 72 kDa) and solubilized at 15 and 20% concentration in saline solution to design thermosensitive hydrogels. OMC incorporation into the hydrogels (10 mg/mL concentration) did not negatively affect their gelation potential. Hybrid systems successfully released ibuprofen at a slower rate compared to control gels (gels embedding ibuprofen as such), but with no significant differences between rod-like and spherical OMC-loaded gels. OMCs can thus work as effective drug reservoirs that progressively release their payload over time and also upon encapsulation in a hydrogel phase, thus opening the way to their application to treat many different pathological states (e.g., as topical medications).

摘要

有序介孔碳(OMC)具有高药物负载能力、细胞相容性和易于功能化的特点,使其成为治疗多种疾病的有吸引力的纳米载体。通过将OMC嵌入水凝胶相中以实现药物的长效释放,可以进一步提高其效率。在这项工作中,OMC被嵌入可注射的热敏水凝胶中。具体而言,通过纳米浇铸选定的模板合成了棒状(直径约250 nm,长度约700 nm)和球形(直径约120 nm)的OMC,并通过熔体渗透法将布洛芬负载到其中,以实现其孔的完全填充(100%负载率)。同时,合成了一种基于两亲性泊洛沙姆®407的聚(醚脲)(Mn¯ 72 kDa),并将其以15%和20%的浓度溶解在盐溶液中以设计热敏水凝胶。将OMC掺入水凝胶(浓度为10 mg/mL)不会对其凝胶化潜力产生负面影响。与对照凝胶(直接包埋布洛芬的凝胶)相比,混合体系成功地以较慢的速率释放布洛芬,但棒状和球形OMC负载凝胶之间没有显著差异。因此,OMC可以作为有效的药物储存库,随着时间的推移逐渐释放其负载物,并且在包封于水凝胶相中时也是如此,从而为其应用于治疗许多不同的病理状态(例如作为局部用药)开辟了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/153e/7692333/b3b758f86e51/nanomaterials-10-02165-g001.jpg

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