4.8 Article

Fabrication and characterization of microfluidic probes for convection enhanced drug delivery

Journal

JOURNAL OF CONTROLLED RELEASE
Volume 111, Issue 3, Pages 252-262

Publisher

ELSEVIER
DOI: 10.1016/j.jconrel.2005.11.018

Keywords

convection enhanced delivery; microfluidics; microfabrication; brain; convection-diffusion model

Funding

  1. NINDS NIH HHS [NS 045236] Funding Source: Medline

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Convection enhanced drug delivery (CED) is a promising therapeutic method for treating diseases of the brain by enhancing the penetration of drugs. Most controlled release delivery methods rely on diffusion from a source to transport drugs throughout tissue. CED relies on direct infusion of drugs into tissue at a sufficiently high rate so that convective transport of drug is at least as important as diffusive transport. This work describes the fabrication and characterization of microfluidic probes for CED protocols and the role diffusion plays in determining penetration. Microfluidic channels were formed on silicon substrates by employing a sacrificial photoresist layer encased in a parylene structural layer. Flow in the microchannels was characterized by applying constant upstream pressures from 35 to 310 kPa, which resulted in flow rates of 0.5-4.5 mu L/min. The devices were used to infuse Evans Blue and albumin in hydrogel brain phantoms. The results of these infusions were compared to a simple convection-diffusion model for infusions into porous media. In vivo infusions of albumin were performed in the gray matter of rats at upstream pressures of 35, 70, and 140 kPa. The microfabricated probes show reduced evidence of backflow along the device-tissue interface when compared with conventional needles used for CED. (c) 2005 Elsevier B.V. All rights reserved.

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