Title :
Living three-dimensional micro fabricated constructs for the replacement of vital organ function
Author :
Borenstein, J.T. ; Cheung, W. ; Hartman, L. ; Kaazempur-Mofrad, M.R. ; King, K.R. ; Sevy, A. ; Shin, M. ; Weinberg, E.J. ; Vacanti, J.P.
Author_Institution :
Dept. of Biomed. Eng., Charles Stark Draper Lab. Inc., Cambridge, MA, USA
Abstract :
We report the first demonstration of high-resolution three-dimensional constructs of living tissue suitable for transplantation for vital organ replacement devices. This work invokes a microfluidic approach, in which the blood supply of the liver or kidney is simulated using computational fluid dynamics; the vascular supply is then fabricated by replica molding of thin sheets of biopolymers stacked to form three-dimensional channel networks. These vascular networks are lined with endothelial cells in capillary-like structures that permeate the polymer construct with a rich bed of blood vessels. Organ function is achieved by arranging organ-specific cells in compartments adjacent to the blood vessels, which are separated by nanoporous polymer membranes. Initial results demonstrate that rat hepatocytes are sustained and retain their function for periods of weeks when oxygenated medium is perfused through the engineered capillary networks, a promising first step towards the ultimate goal of organ replacement.
Keywords :
biological fluid dynamics; biomembranes; blood vessels; cellular biophysics; computational fluid dynamics; haemodynamics; haemorheology; kidney; microfluidics; micromachining; polymers; replica techniques; tissue engineering; biopolymers; blood vessels; capillary like structures; computational fluid dynamics; endothelial cells; engineered capillary networks; kidney; liver; living tissue; microfluidic approach; nanoporous polymer membranes; organ specific cells; oxygenated medium; rat hepatocytes; replica molding; three-dimensional channel networks; three-dimensional micro fabricated constructs; transplantation; vascular networks; vascular supply; vital organ function; vital organ replacement devices; Biomembranes; Blood vessels; Cells (biology); Computational fluid dynamics; Computational modeling; Liver; Microfluidics; Nanoporous materials; Polymers; Soft lithography;
Conference_Titel :
TRANSDUCERS, Solid-State Sensors, Actuators and Microsystems, 12th International Conference on, 2003
Conference_Location :
Boston, MA, USA
Print_ISBN :
0-7803-7731-1
DOI :
10.1109/SENSOR.2003.1217125