» Articles » PMID: 33669404

Chemically-Gated and Sustained Molecular Transport Through Nanoporous Gold Thin Films in Biofouling Conditions

Overview
Date 2021 Mar 6
PMID 33669404
Citations 1
Authors
Affiliations
Soon will be listed here.
Abstract

Sustained release and replenishment of the drug depot are essential for the long-term functionality of implantable drug-delivery devices. This study demonstrates the use nanoporous gold (np-Au) thin films for in-plane transport of fluorescein (a small-molecule drug surrogate) over large (mm-scale) distances from a distal reservoir to the site of delivery, thereby establishing a constant flux of molecular release. In the absence of halides, the fluorescein transport is negligible due to a strong non-specific interaction of fluorescein with the pore walls. However, in the presence of physiologically relevant concentration of ions, halides preferentially adsorb onto the gold surface, minimizing the fluorescein-gold interactions and thus enabling in-plane fluorescein transport. In addition, the nanoporous film serves as an intrinsic size-exclusion matrix and allows for sustained release in biofouling conditions (dilute serum). The molecular release is reproducibly controlled by gating it in response to the presence of halides at the reservoir (source) and the release site (sink) without external triggers (e.g., electrical and mechanical).

Citing Articles

Applications of Nanoporous Gold in Therapy, Drug Delivery, and Diagnostics.

Sondhi P, Lingden D, Bhattarai J, Demchenko A, Stine K Metals (Basel). 2024; 13(1).

PMID: 39238564 PMC: 11376205. DOI: 10.3390/met13010078.

References
1.
Di Trani N, Silvestri A, Sizovs A, Wang Y, Erm D, Demarchi D . Electrostatically gated nanofluidic membrane for ultra-low power controlled drug delivery. Lab Chip. 2020; 20(9):1562-1576. PMC: 7249613. DOI: 10.1039/d0lc00121j. View

2.
Casalini T, Salvalaglio M, Perale G, Masi M, Cavallotti C . Diffusion and aggregation of sodium fluorescein in aqueous solutions. J Phys Chem B. 2011; 115(44):12896-904. DOI: 10.1021/jp207459k. View

3.
Erlebacher J, Aziz M, Karma A, Dimitrov N, Sieradzki K . Evolution of nanoporosity in dealloying. Nature. 2001; 410(6827):450-3. DOI: 10.1038/35068529. View

4.
Nguyen Q, Ali M, Nasir S, Ensinger W . Transport properties of track-etched membranes having variable effective pore-lengths. Nanotechnology. 2015; 26(48):485502. DOI: 10.1088/0957-4484/26/48/485502. View

5.
Anglin E, Cheng L, Freeman W, Sailor M . Porous silicon in drug delivery devices and materials. Adv Drug Deliv Rev. 2008; 60(11):1266-1277. PMC: 2710886. DOI: 10.1016/j.addr.2008.03.017. View