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Red blood cell-activated antifreeze metal-organic framework armor for cryopreservation

作者:Xin Li, Z. Gong, Ming Xu, Song Wang, Bingbing Sun · 发表于:Materials Today Bio · 年份:2025 · DOI:10.1016/j.mtbio.2025.102529 · 被引用次数:4 · 研究领域:Phase Change Materials Research、Solar-Powered Water Purification Methods、Hydrogen's biological and therapeutic effects

Red blood cell (RBC) cryopreservation is essential for maintaining ex vivo biological function and enabling long-term storage. However, the fragile nature of RBCs makes them highly susceptible to hemolysis during freezing and thaw cycles, limiting their widespread application. Here, a metal-organic framework (MOF)-based armor has been developed in a physiological environment, which enables one-step in situ encapsulation and unloading of RBCs. This MOF armor, functioning as a nano-bio interface, effectively shields RBCs from cryo-induced damage while preserving their native oxygen-carrying function. The MOF-armored RBCs not only inhibit ice recrystallization by restricting water molecule movement within the porous MOF structure but also serve as a “catalyst” to induce the smoothing of the ice front during growth, reducing sodium chloride eutectic formation and accelerating ice melting. Cryopreservation assays demonstrate exceptional RBC recovery (51%) at a low MOF concentration (1 mg·mL -1 ), confirming the effectiveness of this protective strategy in enhancing cryoprotectant efficacy. These findings highlight the potential of MOF-derived architectures for the cryopreservation of various cell types and tissue samples, paving the way for innovative preservation technologies. A MOF-based armor enables the in situ encapsulation and unloading of RBCs, effectively protecting them from freeze-thaw damage. This protection is achieved by reducing ice grain size through the molecular-l...