TY - JOUR
T1 - ECMO-associated hemolysis
T2 - Advances in mechanisms and clinical management
AU - Liu, Xinyu
AU - Li, Yuan
AU - Wang, Chenlu
AU - Wang, Hongyu
AU - Xi, Yifeng
AU - Sun, Anqiang
AU - Deng, Xiaoyan
AU - Chen, Zengsheng
AU - Fan, Yubo
N1 - Publisher Copyright:
© 2025 The Authors
PY - 2026/2
Y1 - 2026/2
N2 - Extracorporeal membrane oxygenation (ECMO) is a crucial life-support technology in critical care. However, ECMO can lead to severe complications, including hemolysis, and the underlying causes and molecular mechanisms of hemolysis are not well understood. This review systematically synthesizes prior research to elucidate hemolytic mechanisms and associated complications in ECMO therapy. We systematically investigated the effects of mechanical damage, material biocompatibility, blood component interactions, and clinical treatment on erythrocyte damage during ECMO support. This paper integrates biomechanical quantification of shear stress thresholds, and material science evaluation of surface-protein adsorption dynamics, and clinical observations of hemolysis patterns, conducted from biomechanical, material science and clinical perspectives. Based on these insights, we propose optimal ECMO design strategies and clinical measures to mitigate hemolysis. We further propose integrating intelligent biosensors, hemodynamically optimized circuits, and next-generation biomaterials to enhance real-time biocompatibility monitoring and therapeutic management.
AB - Extracorporeal membrane oxygenation (ECMO) is a crucial life-support technology in critical care. However, ECMO can lead to severe complications, including hemolysis, and the underlying causes and molecular mechanisms of hemolysis are not well understood. This review systematically synthesizes prior research to elucidate hemolytic mechanisms and associated complications in ECMO therapy. We systematically investigated the effects of mechanical damage, material biocompatibility, blood component interactions, and clinical treatment on erythrocyte damage during ECMO support. This paper integrates biomechanical quantification of shear stress thresholds, and material science evaluation of surface-protein adsorption dynamics, and clinical observations of hemolysis patterns, conducted from biomechanical, material science and clinical perspectives. Based on these insights, we propose optimal ECMO design strategies and clinical measures to mitigate hemolysis. We further propose integrating intelligent biosensors, hemodynamically optimized circuits, and next-generation biomaterials to enhance real-time biocompatibility monitoring and therapeutic management.
KW - Biocompatibility
KW - Clinical treatment
KW - Extracorporeal membrane oxygenation (ECMO)
KW - Hemolysis
KW - Shear stress
UR - https://www.scopus.com/pages/publications/105023863476
U2 - 10.1016/j.medntd.2025.100419
DO - 10.1016/j.medntd.2025.100419
M3 - 文献综述
AN - SCOPUS:105023863476
SN - 2590-0935
VL - 29
JO - Medicine in Novel Technology and Devices
JF - Medicine in Novel Technology and Devices
M1 - 100419
ER -