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A microfluidic platform for investigating transmembrane pressure-induced glomerular leakage

  • Ting-Hsuan Chen
  • , Jie-Sheng Chen
  • , Yi-Ching Ko
  • , Jyun-Wei Chen
  • , Hsueh-Yao Chu
  • , Chih-Shuan Lu
  • , Chiao-Wen Chu
  • , Hsiang-Hao Hsu*
  • , Fan-Gang Tseng*
  • *Corresponding author for this work

    Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

    93 Downloads (CityUHK Scholars)

    Abstract

    Transmembrane pressure across the glomerular filter barrier may underlie renal failure. However, studies of renal failure have been difficult owing to a lack of in vitro models to capture the transmembrane pressure in a controlled approach. Here we report a microfluidic platform of podocyte culture to investigate transmembrane pressure induced glomerular leakage. Podocytes, the glomerular epithelial cells essential for filtration function, were cultivated on a porous membrane supplied with transmembrane pressure ΔP. An anodic aluminum oxide membrane with collagen coating was used as the porous membrane, and the filtration function was evaluated using dextrans of different sizes. The results show that dextran in 20 kDa and 70 kDa can penetrate the podocyte membrane, whereas dextran in 500 kDa was blocked until ΔP ≥ 60 mmHg, which resembles the filtration function when ΔP was in the range of a healthy kidney (ΔP < 60 mmHg) as well as the hypertension-induced glomerular leakage (ΔP ≥ 60 mmHg). Additionally, analysis showed that synaptopodin and actin were also downregulated when ΔP > 30 mmHg, indicating that the dysfunction of renal filtration is correlated with the reduction of synaptopodin expression and disorganized actin cytoskeleton. Taking together, our microfluidic platform enables the investigation of transmembrane pressure in glomerular filter membrane, with potential implications for drug development in the future.
    Original languageEnglish
    JournalMicromachines
    Volume9
    Issue number5
    Online published10 May 2018
    DOIs
    Publication statusPublished - May 2018

    Research Keywords

    • Glomerular leakage
    • Microfluidics
    • Podocytes
    • Transmembrane pressure

    Publisher's Copyright Statement

    • This full text is made available under CC-BY 4.0. https://creativecommons.org/licenses/by/4.0/

    RGC Funding Information

    • RGC-funded

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