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仿生与生物纳架构学。

Biomimetic and Biological Nanoarchitectonics.

机构信息

International Center for Materials Nanoarchitectonics (WPI-MANA), National Institute for Materials Science (NIMS), 1-1 Namiki, Tsukuba 305-0044, Japan.

Department of Advanced Materials Science, Graduate School of Frontier Sciences, The University of Tokyo, 5-1-5 Kashiwanoha, Chiba 277-8561, Japan.

出版信息

Int J Mol Sci. 2022 Mar 25;23(7):3577. doi: 10.3390/ijms23073577.

Abstract

A post-nanotechnology concept has been assigned to an emerging concept, nanoarchitectonics. Nanoarchitectonics aims to establish a discipline in which functional materials are fabricated from nano-scale components such as atoms, molecules, and nanomaterials using various techniques. Nanoarchitectonics opens ways to form a more unified paradigm by integrating nanotechnology with organic chemistry, supramolecular chemistry, material chemistry, microfabrication technology, and biotechnology. On the other hand, biological systems consist of rational organization of constituent molecules. Their structures have highly asymmetric and hierarchical features that allow for chained functional coordination, signal amplification, and vector-like energy and signal flow. The process of nanoarchitectonics is based on the premise of combining several different processes, which makes it easier to obtain a hierarchical structure. Therefore, nanoarchitectonics is a more suitable methodology for creating highly functional systems based on structural asymmetry and hierarchy like biosystems. The creation of functional materials by nanoarchitectonics is somewhat similar to the creation of functional systems in biological systems. It can be said that the goal of nanoarchitectonics is to create highly functional systems similar to those found in biological systems. This review article summarizes the synthesis of biomimetic and biological molecules and their functional structure formation from various viewpoints, from the molecular level to the cellular level. Several recent examples are arranged and categorized to illustrate such a trend with sections of (i) synthetic nanoarchitectonics for bio-related units, (ii) self-assembly nanoarchitectonics with bio-related units, (iii) nanoarchitectonics with nucleic acids, (iv) nanoarchitectonics with peptides, (v) nanoarchitectonics with proteins, and (vi) bio-related nanoarchitectonics in conjugation with materials.

摘要

后纳米科技概念被赋予了一个新兴概念,即纳米构筑学。纳米构筑学旨在建立一门学科,通过使用各种技术,从原子、分子和纳米材料等纳米级组件构建功能性材料。纳米构筑学通过将纳米技术与有机化学、超分子化学、材料化学、微制造技术和生物技术相结合,为形成更加统一的范式开辟了道路。另一方面,生物系统由组成分子的合理组织构成。它们的结构具有高度不对称和层次化的特征,允许功能协调、信号放大和类似向量的能量和信号流动。纳米构筑学的过程基于结合几个不同过程的前提,这使得获得层次结构变得更加容易。因此,纳米构筑学是一种更适合于创建具有结构不对称性和层次性的高度功能性系统的方法,如生物系统。通过纳米构筑学创造功能性材料在某种程度上类似于在生物系统中创造功能性系统。可以说,纳米构筑学的目标是创造类似于生物系统中发现的高度功能性系统。

这篇综述文章从分子水平到细胞水平,从各个角度总结了仿生和生物分子的合成及其功能结构的形成。从(i)与生物相关的单元的合成纳米构筑学、(ii)与生物相关的单元的自组装纳米构筑学、(iii)与核酸的纳米构筑学、(iv)与肽的纳米构筑学、(v)与蛋白质的纳米构筑学和(vi)与材料结合的生物相关的纳米构筑学等几个方面,安排和分类了几个最近的例子来说明这种趋势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e415/8998553/5105c6e411d2/ijms-23-03577-g001.jpg

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