DOI: 10.1097/mat.0000000000002810 ISSN: 1058-2916
A Novel Extracorporeal Membrane Oxygenation System With Enhanced Hemocompatibility and Long-Term Stability
Hongyu Wang, Sheng Liu, Zejian Jin, Yawei Wang, Jinian Li, Huichao Liu, Yuan Li, Wenbo Zhang, Chenlu Wang, Mengqi Zhang, Xingji Fu, Yubo Fan, Zengsheng Chen
To optimize and evaluate the hydrodynamic performance and gas exchange efficiency of a newly developed centrifugal blood pump and membrane oxygenator for extracorporeal membrane oxygenation (ECMO) support, blood pump and oxygenator designs were optimized from a hydrodynamic perspective by adopting a five-blade impeller for the pump and a circular flow path with a central inlet and bottom outlet for the oxygenator. Computational fluid dynamics (CFD) was used to evaluate shear distribution.
In vitro
experiments assessed pressure-flow characteristics. Long-term ECMO support (14 days) was performed in sheep using both venovenous (VV) and venoarterial (VA) modes. Key parameters, including plasma-free hemoglobin and comprehensive blood tests (biochemistry, coagulation, platelet function), were analyzed. Computational fluid dynamics revealed uniform pump flow with minimal high-shear volume and negligible stagnation in the oxygenator, indicating low hemolysis and thrombosis risk.
In vitro
, the oxygenator showed lower transmembrane pressure than Quadrox-PLS across 1–7 L/min and higher O
2
transfer (1–3 L/min).
In vivo
, circuit flow was stable (2.2 L/min [VV], 2.5 L/min [VA]) and oxygenator Δ
P
remained 10–12 mm Hg with stable oxygen exchange (155 ml/min [VV], 165 ml/min [VA]), and plasma-free hemoglobin (pfHb) remained below 50 mg/dL. Three non–device-related deaths occurred, and there were no device-related thrombotic or hemorrhagic complications. The ECMO system demonstrated excellent mechanical stability, effective long-term oxygenation, favorable hemodynamic performance, and outstanding hemocompatibility in large-animal models.