Silicon Nanotubes as Potential Therapeutic Platforms
Silicon nanotubes (SiNTs) with unique well-defined structural morphologies have been successfully fabricated and recognized as a novel architecture in the nanoscale Si family. While the typical dendritic microstructure of mesoporous silicon prepared anodically has been exploited previously for thera...
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doaj-cae3874306bb4ddabad782e2cc71565a2020-11-24T21:50:45ZengMDPI AGPharmaceutics1999-49232019-11-01111157110.3390/pharmaceutics11110571pharmaceutics11110571Silicon Nanotubes as Potential Therapeutic PlatformsNguyen T. Le0Yuan Tian1Roberto Gonzalez-Rodriguez2Jeffery L. Coffer3Department of Chemistry and Biochemistry, Texas Christian University, Fort Worth, TX 76129, USADepartment of Chemistry and Biochemistry, Texas Christian University, Fort Worth, TX 76129, USADepartment of Chemistry and Biochemistry, Texas Christian University, Fort Worth, TX 76129, USADepartment of Chemistry and Biochemistry, Texas Christian University, Fort Worth, TX 76129, USASilicon nanotubes (SiNTs) with unique well-defined structural morphologies have been successfully fabricated and recognized as a novel architecture in the nanoscale Si family. While the typical dendritic microstructure of mesoporous silicon prepared anodically has been exploited previously for therapeutics and biosensing, our status of utilizing SiNTs in this regard is still in its infancy. In this review, we focus on the fundamental properties of such nanotubes relevant to therapeutic applications, beginning with a description of our ability to sensitively tune the structure of a given SiNT through synthetic control and the associated detailed in vitro dissolution behavior (reflecting biodegradability). Emphasis is also placed here on the range of functional moieties available to attach to the surface of SiNTs through a summary of current studies involving surface functionalization and strategies that facilitate conjugation with molecules of interest for multiple purposes, including cell labeling, nucleotide attachment, and scaffolding of therapeutic metallic nanoparticles. Experiments addressing our ability to load the interior of a given nanotube with species capable of providing magnetic field-assisted drug delivery are also briefly described. Given the range of diverse properties demonstrated to date, we believe the future to be quite promising for employing SiNTs as therapeutic platforms.https://www.mdpi.com/1999-4923/11/11/571silicon nanotubessurface chemistrydrug delivery |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Nguyen T. Le Yuan Tian Roberto Gonzalez-Rodriguez Jeffery L. Coffer |
spellingShingle |
Nguyen T. Le Yuan Tian Roberto Gonzalez-Rodriguez Jeffery L. Coffer Silicon Nanotubes as Potential Therapeutic Platforms Pharmaceutics silicon nanotubes surface chemistry drug delivery |
author_facet |
Nguyen T. Le Yuan Tian Roberto Gonzalez-Rodriguez Jeffery L. Coffer |
author_sort |
Nguyen T. Le |
title |
Silicon Nanotubes as Potential Therapeutic Platforms |
title_short |
Silicon Nanotubes as Potential Therapeutic Platforms |
title_full |
Silicon Nanotubes as Potential Therapeutic Platforms |
title_fullStr |
Silicon Nanotubes as Potential Therapeutic Platforms |
title_full_unstemmed |
Silicon Nanotubes as Potential Therapeutic Platforms |
title_sort |
silicon nanotubes as potential therapeutic platforms |
publisher |
MDPI AG |
series |
Pharmaceutics |
issn |
1999-4923 |
publishDate |
2019-11-01 |
description |
Silicon nanotubes (SiNTs) with unique well-defined structural morphologies have been successfully fabricated and recognized as a novel architecture in the nanoscale Si family. While the typical dendritic microstructure of mesoporous silicon prepared anodically has been exploited previously for therapeutics and biosensing, our status of utilizing SiNTs in this regard is still in its infancy. In this review, we focus on the fundamental properties of such nanotubes relevant to therapeutic applications, beginning with a description of our ability to sensitively tune the structure of a given SiNT through synthetic control and the associated detailed in vitro dissolution behavior (reflecting biodegradability). Emphasis is also placed here on the range of functional moieties available to attach to the surface of SiNTs through a summary of current studies involving surface functionalization and strategies that facilitate conjugation with molecules of interest for multiple purposes, including cell labeling, nucleotide attachment, and scaffolding of therapeutic metallic nanoparticles. Experiments addressing our ability to load the interior of a given nanotube with species capable of providing magnetic field-assisted drug delivery are also briefly described. Given the range of diverse properties demonstrated to date, we believe the future to be quite promising for employing SiNTs as therapeutic platforms. |
topic |
silicon nanotubes surface chemistry drug delivery |
url |
https://www.mdpi.com/1999-4923/11/11/571 |
work_keys_str_mv |
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