仿生矿化改良生物体:一种生物修饰的材料掺入策略

Yueqi Zhao, R. Tang
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引用次数: 28

摘要

生物矿化作用是生物有机体控制的矿物形成过程,在自然界中起着连接生物有机体与矿物材料的重要作用。受生物矿化的启发,仿生矿化作为将生物有机体和功能材料整合在一起的桥梁工具,有利于发展多样化的功能有机体-材料杂交体。本文综述了生物与物质结合的仿生矿化技术的最新进展。在这些技术的基础上,病毒、原核生物和真核生物材料杂交体的制备和应用已经得到了介绍,它们在疫苗改良、细胞保护、能源生产、环境和生物医学治疗等领域显示出巨大的潜力。我们建议开展更多的功能生物和材料组合方面的研究,以提高特定生物材料杂交的设计和应用。这些合理设计的生物-材料混合体将为未来生产具有更先进功能的“活材料”提供启示。本文综述了近年来以仿生矿化为组合手段,通过与功能材料的结合来改善生物有机体的研究进展。合成材料,如人造外壳或细胞器,赋予被封闭的生物体多种功能。各种病毒-、原核生物-和真核生物-材料杂交体的成功构建,显示了材料结合策略在疫苗开发、癌症治疗、生物光合作用和环境保护等方面的巨大潜力。提出的挑战和前景为未来生物材料混合材料的发展提供了更多的灵感。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvement of Organisms by Biomimetic Mineralization: A Material Incorporation Strategy for Biological Modification
Biomineralization, a bio-organism controlled mineral formation process, plays an important role in linking biological organisms and mineral materials in nature. Inspired by biomineralization, biomimetic mineralization is used as a bridge tool to integrate biological organisms and functional materials together, which can be beneficial for the development of diversified functional organism-material hybrids. In this review, recent progresses on the techniques of biomimetic mineralization for organism-material combinations are summarized and discussed. Based upon these techniques, the preparations and applications of virus-, prokaryotes-, and eukaryotes-material hybrids have been presented and they demonstrate the great potentials in the fields of vaccine improvement, cell protection, energy production, environmental and biomedical treatments, etc. We suggest that more researches about functional organism and material combination with more biocompatible techniques should be developed to improve the design and applications of specific organism-material hybrids. These rationally designed organism-material hybrids will shed light on the production of "live materials" with more advanced functions in future. Statement of significance This review summaries the recent attempts on improving biological organisms by their integrations with functional materials, which can be achieved by biomimetic mineralization as the combination tool. The integrated materials, as the artificial shells or organelles, confer diversified functions on the enclosed organisms. The successful constructions of various virus-, prokaryotes-, and eukaryotes-material hybrids have demonstrated the great potentials of the material incorporation strategy in vaccine development, cancer treatment, biological photosynthesis and environment protection etc. The suggested challenges and perspectives indicate more inspirations for the future development of organism-material hybrids.
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