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Porous-wall hollow glass microspheres as novel potential nanocarriers for biomedical applications.

Authors :
Li S
Nguyen L
Xiong H
Wang M
Hu TC
She JX
Serkiz SM
Wicks GG
Dynan WS
Source :
Nanomedicine : nanotechnology, biology, and medicine [Nanomedicine] 2010 Feb; Vol. 6 (1), pp. 127-36. Date of Electronic Publication: 2009 Jul 16.
Publication Year :
2010

Abstract

Porous-wall hollow glass microspheres (PW-HGMs) are a novel form of glass material consisting of a 10- to 100-microm-diameter hollow central cavity surrounded by a 1-microm-thick silica shell. A tortuous network of nanometer-scale channels completely penetrates the shell. We show here that these channels promote size-dependent uptake and controlled release of biological molecules in the 3- to 8-nm range, including antibodies and a modified single-chain antibody variable fragment. In addition, a 6-nm (70-kDa) dextran can be used to gate the porous walls, facilitating controlled release of an internalized short interfering RNA. PW-HGMs remained in place after mouse intratumoral injection, suggesting a possible application for the delivery of anticancer drugs. The combination of a hollow central cavity that can carry soluble therapeutic agents with mesoporous walls for controlled release is a unique characteristic that distinguishes PW-HGMs from other glass materials for biomedical applications.<br />From the Clinical Editor: Porous-wall hollow glass microspheres (PW-HGMs) are a novel form of glass microparticles with a tortuous network of nanometer-scale channels. These channels allow size-dependent uptake and controlled release of biological molecules including antibodies and single-chain antibody fragments. PW-HGMs remained in place after mouse intratumoral injection, suggesting a possible application for the delivery of anti-cancer drugs.<br /> (Copyright 2010 Elsevier Inc. All rights reserved.)

Details

Language :
English
ISSN :
1549-9642
Volume :
6
Issue :
1
Database :
MEDLINE
Journal :
Nanomedicine : nanotechnology, biology, and medicine
Publication Type :
Academic Journal
Accession number :
19616128
Full Text :
https://doi.org/10.1016/j.nano.2009.06.004