Title :
Modeling and characterization of a valved glaucoma drainage device with implications for enhanced therapeutic efficacy
Author :
Pan, Tingrui ; Stay, Matthew S. ; Barocas, Victor H. ; Brown, J. David ; Ziaie, Babak
Author_Institution :
Dept. of Biomed. Eng., Univ. of Minnesota, Minneapolis, MN, USA
fDate :
5/1/2005 12:00:00 AM
Abstract :
We report on modeling and bench test results targeted at better understanding of valved glaucoma drainage devices (GDDs), a common current surgical treatment for glaucoma. A simple equivalent circuit is described to model fluid mechanical behavior of the aqueous humor in an eye with glaucoma, both before and after implantation of a valved GDD. Finite element method simulations (FEM), based on the lubrication-von Ka´rma´n model, are then performed to analyze the valve´s mechanical and fluidic performance. Using nanoporous membranes to mimic the in vivo fibrous capsule, we have developed a microfluidic bench test to simulate the aqueous humor flow and the post-implantation fibrous tissue encapsulation around the GDD back plate. Our numerical and bench test results show that, contrary to the prevailing belief, the valve significantly contributes to the total pressure drop even after fibrous capsule formation. Furthermore, we show that bypassing the valve through a simple polyimide tube insertion will dramatically lower the intraocular pressure (IOP) after fibrous capsule formation. This may offer a new treatment option in some patients with advanced glaucoma.
Keywords :
biological tissues; biomedical equipment; eye; finite element analysis; microfluidics; prosthetics; surgery; vision defects; aqueous humor flow; enhanced therapeutic efficacy; equivalent circuit; eye; fibrous capsule formation; finite element method simulations; fluid mechanical behavior; in vivo fibrous capsule; intraocular pressure; lubrication-von Karman model; microfluidic bench test; nanoporous membranes; polyimide tube insertion; post-implantation fibrous tissue encapsulation; surgical treatment; valved glaucoma drainage device; Analytical models; Biomembranes; Circuit simulation; Circuit testing; Equivalent circuits; Finite element methods; Nanoporous materials; Performance analysis; Surgery; Valves; Ahmed Glaucoma Valve™; glaucoma; glaucoma drainage device; microfluidic; modeling; Computer Simulation; Equipment Design; Equipment Failure Analysis; Eye; Glaucoma; Glaucoma Drainage Implants; Humans; Intraocular Pressure; Microfluidics; Models, Biological; Therapy, Computer-Assisted;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2005.845222