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Highly scalable and standardized organ-on-chip platform with TEER for biological barrier modeling. | LitMetric

AI Article Synopsis

  • The text discusses the limitations in developing new therapies due to inadequate predictive in vitro models and presents Organ-on-chip (OOC) technologies as a promising solution for improved tissue and disease modeling.
  • It introduces a scalable microfluidic platform called AKITA, designed for high, medium, and low throughput applications compatible with existing laboratory workflows in a standardized format.
  • AKITA is specifically optimized for studying vascularized biological barriers like the blood-brain barrier, using precise flow control and integrated sensors to monitor barrier integrity, ultimately aiding in preclinical drug testing and precision medicine.

Article Abstract

The development of new therapies is hampered by the lack of predictive, and patient-relevant in vitro models. Organ-on-chip (OOC) technologies can potentially recreate physiological features and hold great promise for tissue and disease modeling. However, the non-standardized design of these chips and perfusion control systems has been a barrier to quantitative high-throughput screening (HTS). Here we present a scalable OOC microfluidic platform for applied kinetic in vitro assays (AKITA) that is applicable for high, medium, and low throughput. Its standard 96-well plate and 384-well plate layouts ensure compatibility with existing laboratory workflows and high-throughput data collection and analysis tools. The AKITA plate is optimized for the modeling of vascularized biological barriers, primarily the blood-brain barrier, skin, and lung, with precise flow control on a custom rocker. The integration of trans-epithelial electrical resistance (TEER) sensors allows rapid and repeated monitoring of barrier integrity over long time periods. Together with automated liquid handling and compound permeability testing analyses, we demonstrate the flexibility of the AKITA platform for establishing human-relevant models for preclinical drug and precision medicine's efficacy, toxicity, and permeability under near-physiological conditions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11583584PMC
http://dx.doi.org/10.1080/21688370.2024.2315702DOI Listing

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