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High efficiency single-step biomaterial-based microparticle fabrication via template-directed supramolecular coordination chemistry

机译:通过模板指导的超分子配位化学高效制备基于生物材料的一步法

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摘要

Biomaterial-based microparticles have attracted much attention for medical and biological applications such as pharmaceutics, bioseparation and cosmetics. Emerging technologies enable versatile and facile fabrication of microparticles, with key features being purity, precise size control, mild preparation conditions and minimal processing. Here, an innovative approach combining template synthesis, biomolecule assembly and partial-purification within a single step for high efficiency fabrication of pure biomaterial-based microparticles is reported. This concept is based on facile co-precipitation of biomolecules within CaCO3 templates and simultaneous crosslinking of entrapped biomolecules via Ca2+ driven supramolecular coordination chemistry, followed by template removal. Carbohydrate (alginate) and proteins (casein and fresh milk) are used as models of biomolecules. The process driven by selective crosslinking automatically excludes non-specific materials from the template and thus provides the additional function of partial-purification, as demonstrated using highly complexed fresh milk. This green approach to fabrication of biomaterial-based microparticles offers three critical advantages (i) mild conditions to preserve the chemical and secondary structures of biomolecules; (ii) single processing step to facilitate scale-up production; and (iii) partial-purification without the need for upstream raw material purification. This innovative approach not only addresses fundamental issues in fabrication techniques, but also marks progress in energy and environmental conservation during manufacturing processes.
机译:基于生物材料的微粒已在医学和生物学应用(例如制药,生物分离和化妆品)中引起了广泛关注。新兴技术可以实现微粒的灵活多样的制造,其主要特征是纯度,精确的尺寸控制,适度的制备条件和最少的加工。在这里,报告了一种创新方法,该方法将模板合成,生物分子组装和部分纯化结合在一个步骤中,从而可以高效地制造纯生物材料基微粒。该概念基于CaCO3模板中生物分子的容易共沉淀,以及通过Ca2 +驱动的超分子配位化学同时包裹所捕获的生物分子的交联,然后去除模板。碳水化合物(藻酸盐)和蛋白质(酪蛋白和鲜牛奶)被用作生物分子的模型。选择性交联驱动的过程自动将非特异性物质排除在模板之外,从而提供了部分纯化的附加功能,如使用高度复杂的鲜牛奶所证明的那样。这种绿色的基于生物材料的微粒制造方法具有三个关键优势:(i)保持生物分子化学结构和二级结构的温和条件; (ii)单一加工步骤以促进规模生产; (iii)部分纯化,无需上游原料纯化。这种创新的方法不仅解决了制造技术中的基本问题,而且标志着制造过程中在能源和环境保护方面的进步。

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