Related Experiment Video
Updated: May 13, 2025

Artificial Lung Device Priming for In Situ Fiber Bundle Surface Grafting
Published on: March 28, 2025
Artificial Lung Device Priming for In Situ Fiber Bundle Surface Grafting
Romario Pusey1, Sarah Majin1, Amir Mokhammad1
1Department of Chemistry and Chemical & Biomedical Engineering, University of New Haven.
Abstract:
Although the high surface area-to-volume ratio of the artificial lung fiber bundle enhances gas exchange, the large surface area, dense arrangement, and surface chemistries of the fibers are major contributors to thrombosis. To mitigate this, it is essential to uniformly modify the surface chemistries to effectively reduce non-specific protein fouling, which can help limit thrombosis and lower the risk of thromboembolism or bleeding caused by systemic anticoagulants. In this study, we explored the application and antifouling properties of zwitterionic polymer grafts on polypropylene fiber bundles. The grafting process involved priming the artificial lung device with zwitterionic polysulfobetaine molecules and polydopamine linkers for in situ coating. The antifouling performance was evaluated using standard fibrinogen enzyme-linked immunosorbent assay (ELISA) and platelet lactate dehydrogenase fouling assays. X-ray Photoelectron Spectroscopy confirmed the surface coating, and significant reductions in fouling were observed on coated fibers compared to uncoated ones, demonstrating the utility of the grafting process and the promise of its antifouling effects. However, differences in the appearance of the coating on fibers within the bundle were noted with the coating by priming process, which could affect the overall antifouling performance. Addressing this issue could further enhance the antifouling efficiency of lung fiber bundles modified through in situ grafting.

