Publications by authors named "Michael Atie"

Article Synopsis
  • * It features a longer fiber length than its predecessor, leading to improved blood flow, gas exchange, and lower pressure drop during testing—showing a significant drop in resistance at pediatric flow rates.
  • * In vivo tests indicate excellent performance, achieving 100% blood oxygen saturation and minimal pressure drop, making the PAL-LR a potential breakthrough in reducing strain on the heart for patients with pulmonary issues.
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The ability to cost-effectively produce large surface area microfluidic devices would bring many small-scale technologies such as microfluidic artificial lungs (μALs) from the realm of research to clinical and commercial applications. However, efforts to scale up these devices, such as by stacking multiple flat μALs have been labor intensive and resulted in bulky devices. Here, we report an automated manufacturing system, and a series of cylindrical multi-layer lungs manufactured with the system and tested for fluidic fidelity and function.

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Microfluidic artificial lungs (μALs) are a new class of membrane oxygenators. Compared to traditional hollow-fiber oxygenators, μALs closely mimic the alveolar microenvironment due to their size-scale and promise improved gas exchange efficiency, hemocompatibility, biomimetic blood flow networks, and physiologically relevant blood vessel pressures and shear stresses. Clinical translation of μALs has been stalled by restrictive microfabrication techniques that limit potential artificial lung geometries, overall device size, and throughput.

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