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用于增强红细胞冷冻保存的金属有机框架的降维

Dimensional Reduction of Metal-Organic Frameworks for Enhanced Cryopreservation of Red Blood Cells.

作者信息

Lei Qi, Sun Yaqian, Huang Junda, Liu Wei, Zhan Xiaolong, Yin Wenxiang, Guo Sishi, Sinelshchikova Anna, Brinker C Jeffrey, He Zhiyuan, Guo Jimin, Wuttke Stefan, Zhu Wei

机构信息

The Second Affiliated Hospital, Provincial Key Laboratory of Allergy & Clinical Immunology, Guangzhou Medical University, Guangzhou, 510260, P.R. China.

MOE International Joint Research Laboratory on Synthetic Biology and Medicines, School of Biology and Biological Engineering, South China University of Technology, Guangzhou, 510006, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2023 May 22;62(22):e202217374. doi: 10.1002/anie.202217374. Epub 2023 Apr 25.

Abstract

To increase the red blood cell (RBC) cryopreservation efficiency by metal-organic frameworks (MOFs), a dimensional reduction approach has been proposed. Namely, 3D MOF nanoparticles are progressively reduced to 2D ultra-thin metal-organic layers (MOLs). We found that 2D MOLs are beneficial for enhanced interactions of the interfacial hydrogen-bonded water network and increased utilization of inner ordered structures, due to the higher surface-to-volume ratio. Specifically, a series of hafnium (Hf)-based 2D MOLs with different thicknesses (monolayer to stacked multilayers) and densities of hydrogen bonding sites have been synthesized. Both ice recrystallization inhibition activity (IRI) and RBCs cryopreservation assay confirm the pronounced better IRI activity and excellent cell recovery efficiency (up to ≈63 % at a very low concentration of 0.7 mg mL ) of thin-layered Hf-MOLs compared to their 3D counterparts, thereby verifying the dimensional reduction strategy to improved cryoprotectant behaviors.

摘要

为了通过金属有机框架(MOF)提高红细胞(RBC)的冷冻保存效率,人们提出了一种降维方法。具体来说,三维MOF纳米颗粒被逐步还原为二维超薄金属有机层(MOL)。我们发现,由于二维MOL具有更高的表面积与体积比,其有利于增强界面氢键水网络的相互作用,并提高内部有序结构的利用率。具体而言,已合成了一系列具有不同厚度(单层到堆叠多层)和氢键位点密度的基于铪(Hf)的二维MOL。冰重结晶抑制活性(IRI)和红细胞冷冻保存试验均证实,与三维对应物相比,薄层Hf-MOL具有明显更好的IRI活性和优异的细胞回收率(在0.7 mg mL的极低浓度下高达≈63%),从而验证了降维策略可改善冷冻保护行为。

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