4.2 Article

Biotemplated Hollow Mesoporous Silica Particles as Efficient Carriers for Drug Delivery

期刊

ACS APPLIED BIO MATERIALS
卷 4, 期 5, 页码 4201-4214

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsabm.0c01671

关键词

biotemplate; porous material; cellulose nanocrystals; hollow silica nanorod; hollow DFNS; drug delivery; dye removal

资金

  1. Natural Science and Engineering Research Council of Canada (NSERC) [2018-05781]
  2. Research Council at the Shahid Chamran University of Ahvaz
  3. Ministry of Science of Iran

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Researchers designed three types of hollow-shaped porous silica materials using a biotemplate-directed method, demonstrating potential applications in drug delivery and dye removal. The materials showed efficient adsorption of methylene blue, with sponge-like DFNS exhibiting the highest adsorption capacity. Moreover, drug-loaded hollow silica nanorods displayed a greater anticancer effect on breast cancer cells compared to free doxorubicin.
We designed three types of hollow-shaped porous silica materials via a three-step biotemplate-directed method: porous hollow silica nanorods, hollow dendritic fibrous nano-structured silica (DFNS), and ultraporous sponge-like DFNS. The first step was making a biotemplate, for which we used cellulose nanocrystals (CNCs), consisting of rod-shaped nanoparticles synthesized by conventional acid hydrolysis of cellulose fibers. In a second step, core-shell samples were prepared using CNC particles as hard template by two procedures. In the first one, coreshell CNC-silica nanoparticles were synthesized by a polycondensation reaction, which exclusively took place at the surface of the CNCs. In the second procedure, a typical synthesis of DFNS was conducted in a bicontinuous microemulsion with the assistance of additives. DFNS was assembled on the surface of the CNCs, giving rise to core-shell CNC-DFNS structures. Finally, all of the silica-coated CNC composites were calcined, during which the CNC was removed from the core and hollow structures were formed. These materials are very light-weight and highly porous. All three structures were tested as nanocarriers for drug delivery and absorbents for dye removal applications. Dye removal results showed that they can adsorb methylene blue efficiently, with ultraporous sponge-like DFNS showing the highest adsorption capacity, followed by hollow DFNS and hollow silica nanorods. Furthermore, breast cancer cells show a lower cell viability when exposed to doxorubicin-loaded hollow silica nanorods compared with control or doxorubicin cultures, suggesting that the loaded nanorod has a greater anticancer effect than free doxorubicin.

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