Publication: A microfluidic renal proximal tubule with active reabsorptive function
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Date
2017
Published Version
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Public Library of Science
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Citation
Vedula, Else M., José Luis Alonso, M. Amin Arnaout, and Joseph L. Charest. 2017. “A microfluidic renal proximal tubule with active reabsorptive function.” PLoS ONE 12 (10): e0184330. doi:10.1371/journal.pone.0184330. http://dx.doi.org/10.1371/journal.pone.0184330.
Research Data
Abstract
In the kidney, the renal proximal tubule (PT) reabsorbs solutes into the peritubular capillaries through active transport. Here, we replicate this reabsorptive function in vitro by engineering a microfluidic PT. The microfluidic PT architecture comprises a porous membrane with user-defined submicron surface topography separating two microchannels representing a PT filtrate lumen and a peritubular capillary lumen. Human PT epithelial cells and microvascular endothelial cells in respective microchannels created a PT-like reabsorptive barrier. Co-culturing epithelial and endothelial cells in the microfluidic architecture enhanced viability, metabolic activity, and compactness of the epithelial layer. The resulting tissue expressed tight junctions, kidney-specific morphology, and polarized expression of kidney markers. The microfluidic PT actively performed sodium-coupled glucose transport, which could be modulated by administration of a sodium-transport inhibiting drug. The microfluidic PT reproduces human physiology at the cellular and tissue levels, and measurable tissue function which can quantify kidney pharmaceutical efficacy and toxicity.
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Keywords
Engineering and Technology, Fluidics, Microfluidics, Biology and Life Sciences, Anatomy, Renal System, Kidneys, Medicine and Health Sciences, Physical Sciences, Chemistry, Chemical Compounds, Organic Compounds, Carbohydrates, Monosaccharides, Glucose, Organic Chemistry, Physiology, Renal Physiology, Biochemistry, Bioenergetics, Energy-Producing Organelles, Mitochondria, Cell Biology, Cellular Structures and Organelles, Cellular Types, Animal Cells, Epithelial Cells, Endothelial Cells, Biological Tissue, Epithelium, Plant Science, Plant Physiology, Solute Transport
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