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从硅藻到基于二氧化硅的生物杂化材料。

From diatoms to silica-based biohybrids.

机构信息

Chimie de la matière condensée de Paris, CNRS, UPMC, Collège de France, 11 place Marcelin Berthelot, 75231 Paris Cedex 05, France.

出版信息

Chem Soc Rev. 2011 Feb;40(2):849-859. doi: 10.1039/c0cs00122h. Epub 2010 Dec 21.

Abstract

This critical review shows that diatoms can be a source of inspiration for the synthesis of advanced nanostructured biohybrids. These single cell microalgae are living inside a porous silica shell called 'frustule'. Mimicking this model, silica-based biohybrids have been produced via the so-called sol-gel process. Biomolecules such as proteins, enzymes or antibodies can be trapped within a silica matrix leading to hybrid biosensors and bioreactors. Whole cells remain viable and retain their metabolic activity leading to the formation of living biohybrids that offer new possibilities in the field of biotechnology and nanomedicine. Diatom frustules exhibit an incredible variety of sophisticated shapes; they can be used as 3D hierarchically structured materials for the realization of sensors, photonic devices or microfluidics. They can also be a model for the bio-templated synthesis of nanostructured materials. Diatom nanotechnology is becoming a new field of research where biologists and materials scientists are working together! (125 references).

摘要

这篇评论文章表明,硅藻可能成为先进的纳米结构生物杂化材料合成的灵感来源。这些单细胞微藻生活在一种叫做“壳”的多孔硅壳内。模仿这种模型,通过所谓的溶胶-凝胶法生产了基于硅的生物杂化材料。生物分子,如蛋白质、酶或抗体,可以被困在硅基质中,从而形成杂交生物传感器和生物反应器。完整的细胞仍然保持活力并保持其代谢活性,从而形成活的生物杂化材料,为生物技术和纳米医学领域提供了新的可能性。硅藻壳具有令人难以置信的多种复杂形状;它们可用作用于实现传感器、光子器件或微流控的 3D 分级结构材料。它们还可以作为生物模板合成纳米结构材料的模型。硅藻纳米技术正在成为一个新的研究领域,生物学家和材料科学家正在携手合作!(引用 125 次)

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