Lietao Wang, Rifang Luo, Fanjun Zhang, Xin Fu, Wei Lai, Yao Xiong, Wei Zhang, Min Luo, Linhui Jia, Zhongwei Zhang, Min He, Yunbing Wang
The use of extracorporeal life support and indwelling blood-contacting devices in critically ill patients is frequently complicated by device-associated thrombosis, a persistent clinical challenge not fully addressed by current antithrombogenic coatings. This limitation is largely attributable to the profound systemic inflammatory state inherent to critical illness, which drives a hypercoagulable milieu through mechanisms of immunothrombosis that conventional coatings fail to mitigate. To address this dual pathophysiological challenge, we designed a novel composite coating comprising a zwitterionic poly(2-methacryloyloxyethyl phosphorylcholine) (PMPC) coordinated with copper ions (Cu(II)). This dual-functional strategy integrates the passive antifouling properties of the PMPC layer with the active, localized generation of nitric oxide (NO) catalyzed by Cu(II) from endogenous S-nitrosothiols. Systematic evaluation under both static and dynamic conditions, including blood models simulating critical illness inflammation, demonstrated that the PCDA coating synergistically resists protein adsorption and inhibits platelet activation; the coating provides superior protection against thrombus formation and inflammatory activation compared to conventional monofunctional surfaces. These findings suggest a translational advance toward enhancing the hemocompatibility and safety of life-support devices in the high-acuity ICU setting.