海藻酸盐/多孔二氧化硅基质用于生物体的封装:生物传感器、模块化生物反应器和生物修复装置的可调特性

M. Perullini, Mariano Calcabrini, M. Jobbágy, S. A. Bilmes
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引用次数: 15

摘要

摘要:将活细胞封装在无机二氧化硅水凝胶中,是设计生物传感器、模块化生物反应器和生物修复装置以及其他有趣应用的一种有前途的策略,引起了科学和技术的兴趣。这些主客体多功能材料(HGFM)将其客体的特定生物功能与宿主基质的特定生物功能协同结合,从而提高其性能。尽管无机固定化宿主在化学和物理稳定性方面比它们的(生物)聚合物基对应物有一些优势,但在合成过程中细胞与二氧化硅前体的直接接触以及在操作条件下无机宿主施加的限制已被证明会影响它们的生物反应。最近,我们提出了一种替代的两步程序,包括在生物相容性聚合物(如海藻酸盐)中进行预封装,以便在无机和更具细胞毒性的合成过程中为生物客人提供保护。通过这种方法,微生物的整个培养物被限制在无机宿主内部产生的小液体体积中,提供接近传统液体培养的条件。此外,在宿主合成过程中保护生物客体的事实,允许将合成参数扩展到生物相容条件之外,调整基质的微观结构。反过来,微观结构(纳米尺度上的孔隙度、组成结构的颗粒的旋转半径和颗粒团簇的分形维数)决定了宏观参数,如控制封装材料性能的光学质量和输运性质。在这里,我们回顾了两步法最有趣的应用,特别强调了主机的光学、传输和机械性能的优化,以及在操作条件下与来宾的相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Alginate/porous silica matrices for the encapsulation of living organisms: tunable properties for biosensors, modular bioreactors, and bioremediation devices
Abstract: The encapsulation of living cells within inorganic silica hydrogels is a promising strategy for the design of biosensors, modular bioreactors, and bioremediation devices, among other interesting applications, attracting scientific and technological interest. These hostguest multifunctional materials (HGFM) combine synergistically specific biologic functions of their guest with those of the host matrix enhancing their performance. Although inorganic immobilization hosts present several advantages over their (bio)polymer-based counterparts in terms of chemical and physical stability, the direct contact of cells with silica precursors during synthesis and the constraints imposed by the inorganic host during operating conditions have proved to influence their biological response. Recently, we proposed an alternative two-step procedure including a pre-encapsulation in biocompatible polymers such as alginates in order to confer protection to the biological guest during the inorganic and more cytotoxic synthesis. By means of this procedure, whole cultures of microorganisms remain confined in small liquid volumes generated inside the inorganic host, providing near conventional liquid culture conditions.Moreover, the fact of protecting the biological guest during the synthesis of the host, allows extending the synthesis parameters beyond biocompatible conditions, tuning the microstructure of the matrix. In turn, the microstructure (porosity at the nanoscale, radius of gyration of particles composing the structure, and fractal dimension of particle clusters) is determinant of macroscopic parameters, such as optical quality and transport properties that govern the encapsulation material’s performance. Here, we review the most interesting applications of the two-step procedure, making special emphasis on the optimization of optical, transport and mechanical properties of the host as well as in the interaction with the guest during operation conditions.
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