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三维打印介孔支架的药物递送应用

Drug Delivery Applications of Three-Dimensional Printed (3DP) Mesoporous Scaffolds.

作者信息

Limongi Tania, Susa Francesca, Allione Marco, di Fabrizio Enzo

机构信息

Dipartimento di Scienza Applicata e Tecnologia, Politecnico di Torino, Corso Duca Degli Abruzzi 24, 10129 Torino, Italy.

SMILEs Lab, PSE Division, King Abdullah University of Science and Technology, Thuwal 23955-6900, Saudi Arabia.

出版信息

Pharmaceutics. 2020 Sep 8;12(9):851. doi: 10.3390/pharmaceutics12090851.

Abstract

Mesoporous materials are structures characterized by a well-ordered large pore system with uniform porous dimensions ranging between 2 and 50 nm. Typical samples are zeolite, carbon molecular sieves, porous metal oxides, organic and inorganic porous hybrid and pillared materials, silica clathrate and clathrate hydrates compounds. Improvement in biochemistry and materials science led to the design and implementation of different types of porous materials ranging from rigid to soft two-dimensional (2D) and three-dimensional (3D) skeletons. The present review focuses on the use of three-dimensional printed (3DP) mesoporous scaffolds suitable for a wide range of drug delivery applications, due to their intrinsic high surface area and high pore volume. In the first part, the importance of the porosity of materials employed for drug delivery application was discussed focusing on mesoporous materials. At the end of the introduction, hard and soft templating synthesis for the realization of ordered 2D/3D mesostructured porous materials were described. In the second part, 3DP fabrication techniques, including fused deposition modelling, material jetting as inkjet printing, electron beam melting, selective laser sintering, stereolithography and digital light processing, electrospinning, and two-photon polymerization were described. In the last section, through recent bibliographic research, a wide number of 3D printed mesoporous materials, for in vitro and in vivo drug delivery applications, most of which relate to bone cells and tissues, were presented and summarized in a table in which all the technical and bibliographical details were reported. This review highlights, to a very cross-sectional audience, how the interdisciplinarity of certain branches of knowledge, as those of materials science and nano-microfabrication are, represent a growing valuable aid in the advanced forum for the science and technology of pharmaceutics and biopharmaceutics.

摘要

介孔材料是一种具有有序大孔系统的结构,其均匀的孔尺寸范围在2至50纳米之间。典型的样品包括沸石、碳分子筛、多孔金属氧化物、有机和无机多孔杂化材料及柱撑材料、硅包合物和包合物水合物化合物。生物化学和材料科学的进步促使人们设计并实现了从刚性到柔性的不同类型的多孔材料,包括二维(2D)和三维(3D)骨架。本综述重点关注适用于广泛药物递送应用的三维打印(3DP)介孔支架,因为它们具有固有的高表面积和高孔体积。在第一部分中,讨论了用于药物递送应用的材料孔隙率的重要性,重点是介孔材料。在引言的结尾,描述了用于实现有序二维/三维介观结构多孔材料的硬模板和软模板合成方法。在第二部分中,描述了3DP制造技术,包括熔融沉积建模、材料喷射(如喷墨打印)、电子束熔炼、选择性激光烧结、立体光刻和数字光处理、静电纺丝以及双光子聚合。在最后一部分中,通过最近的文献研究,展示并汇总了大量用于体外和体内药物递送应用的3D打印介孔材料,其中大多数与骨细胞和组织有关,并在一个表格中报告了所有技术和文献细节。本综述向非常广泛的受众强调了材料科学和纳米微加工等某些知识分支的跨学科性,在pharmaceutics和biopharmaceutics科学技术的先进论坛中如何代表着一种越来越有价值的帮助。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b41/7558976/779650e1bdcd/pharmaceutics-12-00851-g001.jpg

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