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孔壁配体组装对用于控释药物的介孔有机硅纳米颗粒生物降解的影响

Impact of Pore-Walls Ligand Assembly on the Biodegradation of Mesoporous Organosilica Nanoparticles for Controlled Drug Delivery.

作者信息

Omar Haneen, Moosa Basem, Alamoudi Kholod, Anjum Dalaver H, Emwas Abdul-Hamid, El Tall Omar, Vu Binh, Tamanoi Fuyu, AlMalik Abdulaziz, Khashab Niveen M

机构信息

Smart Hybrid Materials Laboratory, Advanced Membranes, and Porous Materials Center, King Abdullah University of Science and Technology, Thuwal 23955-6900, Saudi Arabia.

King Abdullah University of Science and Technology (KAUST), Core Labs, Thuwal 23955-6900, Saudi Arabia.

出版信息

ACS Omega. 2018 May 14;3(5):5195-5201. doi: 10.1021/acsomega.8b00418. eCollection 2018 May 31.

Abstract

Porous materials with molecular-scale ordering have attracted major attention mainly because of the possibility to engineer their pores for selective applications. Periodic mesoporous organosilica is a class of hybrid materials where self-assembly of the organic linkers provides a crystal-like pore wall. However, unlike metal coordination, specific geometries cannot be predicted because of the competitive and dynamic nature of noncovalent interactions. Herein, we study the influence of competing noncovalent interactions in the pore walls on the biodegradation of organosilica frameworks for drug delivery application. These results support the importance of studying self-assembly patterns in hybrid frameworks to better engineer the next generation of dynamic or "soft" porous materials.

摘要

具有分子尺度有序性的多孔材料主要因其有可能对其孔隙进行设计以用于选择性应用而备受关注。周期性介孔有机硅是一类混合材料,其中有机连接体的自组装形成了类似晶体的孔壁。然而,与金属配位不同,由于非共价相互作用的竞争性和动态性质,无法预测特定的几何结构。在此,我们研究了孔壁中竞争性非共价相互作用对用于药物递送应用的有机硅框架生物降解的影响。这些结果支持了研究混合框架中的自组装模式对于更好地设计下一代动态或“软”多孔材料的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0846/6641955/b3124eadca15/ao-2018-00418a_0001.jpg

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