用于消除尿毒症毒素的 MXene 密闭微胶囊

IF 13.9 Q1 CHEMISTRY, MULTIDISCIPLINARY Aggregate (Hoboken, N.J.) Pub Date : 2024-03-21 DOI:10.1002/agt2.542
Xiaomin Ye, Chaoyu Yang, Li Wang, Qihui Fan, Luoran Shang, Fangfu Ye
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引用次数: 0

摘要

生物医学应用非常需要具有高吸附效率和出色生物安全性的吸附剂。MXene 具有这些优点,是一种很有前途的候选材料,但原始 MXene 面临着表面位点效用不足和加工性有限等困境。在此,我们通过微流控技术开发了封装 MXene 的多孔微胶囊。这种微胶囊具有生物质水凝胶外壳,可为核心中的 MXene 提供强有力的支撑,从而使微胶囊具有高 MXene 剂量和显著的生物安全性。此外,MXene 纳米片通过金属离子诱导的凝胶化作用组装成三维网络,从而避免了重新堆积,显著提高了表面利用率。此外,在制备过程中对微胶囊进行冷冻预处理,可在外壳中形成大孔结构,从而促进目标分子的扩散。这些特点加上磁性纳米粒子的加入所带来的额外磁响应性,使微胶囊在清除尿毒症毒素(包括肌酐、尿素和尿酸)方面表现突出。因此,预计MXene封装微胶囊在透析相关应用中将是一种前景广阔的吸附剂,而微流控封装与金属离子凝胶化的结合将为构建具有所需功能的混合MXene材料提供一种新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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MXene confined microcapsules for uremic toxins elimination

Adsorbents with high adsorption efficiency and excellent biosafety for biomedical applications are highly required. MXene is a promising candidate owning these advantages, yet pristine MXene faces dilemmas including insufficient utility of surface site as well as limited processibility. Here, we develop MXene-encapsulated porous microcapsules via microfluidics. The microcapsules have a biomass hydrogel shell that provides robust support for MXene in the core, by which the microcapsules are endowed with high MXene dosage and remarkable biosafety. Additionally, the MXene nanoflakes assemble into a three-dimensional network via metal ion-induced gelation, thereby avoiding restacking and significantly improving surface utilization. Moreover, a freeze-pretreatment of the microcapsules during preparation results in the formation of a macroporous structure in the shell, which can facilitate the diffusion of the target molecules. These features, combined with additional magneto-responsiveness rendered by the incorporation of magnetic nanoparticles, contribute to prominent performances of the microcapsules in cleaning uremia toxins including creatinine, urea, and uric acid. Thus, it is anticipated that the MXene-encapsulated microcapsules will be promising adsorbents in dialysis-related applications, and the combination of microfluidic encapsulation with metal ion gelation will provide a novel approach for construction of hybrid MXene materials with desired functions.

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来源期刊
CiteScore
17.40
自引率
0.00%
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0
审稿时长
7 weeks
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