TY - JOUR
T1 - An intelligent dual-network magnetic separation microgels with real-time microenvironment monitoring for 4 °C refrigerated erythrocyte preservation
AU - Yu, Yan
AU - Yin, Yanqi
AU - Zhou, Bingchen
AU - Jia, Xinrui
AU - Tian, Boshi
AU - Cheng, Ziyong
AU - Gai, Shili
AU - Ding, He
AU - Liu, Kesong
AU - Yang, Piaoping
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/12/1
Y1 - 2025/12/1
N2 - Erythrocyte preservation requires maintaining cellular activity and functional integrity to ensure transfusion safety and efficacy. However, conventional cryopreservation methods suffer from operational complexity, while standard 4 °C refrigeration cannot prevent cellular damage caused by oxidative stress and metabolic dysregulation. Herein, we designed an intelligent control system based on a dual-network magnetic separation microgels, which can monitor changes to the microenvironment of erythrocyte preservation in real time during refrigerated storage at 4 °C. Red blood cells (RBCs) can be encapsulated in magnetic microgels self-assembled with reactive oxygen species (ROS)-sensitive phenylboronic acid ester bonds and pH-sensitive Schiff base bonds. Stored at 4 °C in a bacteriostatic environment, the microgels prevent the overproduction of ROS and mitigate pH decline caused by lactate accumulation. Its magnetic component enables efficient and convenient separation of RBCs. The intelligent control system enables real-time monitoring of ROS and pH variations within the preserved microenvironment, as indicated by the increase in resistance signal of the microgels. When the microgels' resistance exceeds the set threshold (ΔR/R0 = 0.08), the computer then intelligently controls the addition of the antioxidant. Using Balb/c mice RBCs as a model, the microgel system extends the preservation of RBCs for up to 20 days, outperforming a commercial protectant in all preservation parameters. Thus, this work provides an innovative solution for long-term hypothermic preservation and real-time monitoring of RBCs, which will effectively alleviate the supply pressure of clinical blood banks by reducing the RBCs scrapping rate.
AB - Erythrocyte preservation requires maintaining cellular activity and functional integrity to ensure transfusion safety and efficacy. However, conventional cryopreservation methods suffer from operational complexity, while standard 4 °C refrigeration cannot prevent cellular damage caused by oxidative stress and metabolic dysregulation. Herein, we designed an intelligent control system based on a dual-network magnetic separation microgels, which can monitor changes to the microenvironment of erythrocyte preservation in real time during refrigerated storage at 4 °C. Red blood cells (RBCs) can be encapsulated in magnetic microgels self-assembled with reactive oxygen species (ROS)-sensitive phenylboronic acid ester bonds and pH-sensitive Schiff base bonds. Stored at 4 °C in a bacteriostatic environment, the microgels prevent the overproduction of ROS and mitigate pH decline caused by lactate accumulation. Its magnetic component enables efficient and convenient separation of RBCs. The intelligent control system enables real-time monitoring of ROS and pH variations within the preserved microenvironment, as indicated by the increase in resistance signal of the microgels. When the microgels' resistance exceeds the set threshold (ΔR/R0 = 0.08), the computer then intelligently controls the addition of the antioxidant. Using Balb/c mice RBCs as a model, the microgel system extends the preservation of RBCs for up to 20 days, outperforming a commercial protectant in all preservation parameters. Thus, this work provides an innovative solution for long-term hypothermic preservation and real-time monitoring of RBCs, which will effectively alleviate the supply pressure of clinical blood banks by reducing the RBCs scrapping rate.
KW - Dual-network magnetic microgels
KW - Erythrocyte
KW - Intelligent control
KW - Real-time monitoring
KW - Refrigerated storage
UR - https://www.scopus.com/pages/publications/105021481929
U2 - 10.1016/j.cej.2025.170548
DO - 10.1016/j.cej.2025.170548
M3 - 文章
AN - SCOPUS:105021481929
SN - 1385-8947
VL - 525
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 170548
ER -