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Minimalistic peptide supramolecular co-assembly: expanding the conformational space for nanotechnology

机译:极简肽超分子共组装:扩大纳米技术的构象空间

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摘要

Molecular self-assembly is a ubiquitous process in nature and central to bottom-up nanotechnology. In particular, the organization of peptide building blocks into ordered supramolecular structures has gained much interest due to the unique properties of the products, including biocompatibility, chemical and structural diversity, robustness and ease of large-scale synthesis. In addition, peptides, as short as dipeptides, contain all the molecular information needed to spontaneously form well-ordered structures at both the nano- and the micro-scale. Therefore, peptide supramolecular assembly has been effectively utilized to produce novel materials with tailored properties for various applications in the fields of material science, engineering, medicine, and biology. To further expand the conformational space of peptide assemblies in terms of structural and functional complexity, multicomponent (two or more) peptide supramolecular co-assembly has recently evolved as a promising extended approach, similar to the structural diversity of natural sequence-defined biopolymers (proteins) as well as of synthetic covalent co-polymers. The use of this methodology was recently demonstrated in various applications, such as nanostructure physical dimension control, the creation of non-canonical complex topologies, mechanical strength modulation, the design of light harvesting soft materials, fabrication of electrically conducting devices, induced fluorescence, enzymatic catalysis and tissue engineering. In light of these significant advancements in the field of peptide supramolecular co-assembly in the last few years, in this tutorial review, we provide an updated overview and future prospects of this emerging subject.
机译:分子自组装是自然界无处不在的过程,是自底向上纳米技术的核心。特别地,由于产物的独特性质,包括生物相容性,化学和结构多样性,坚固性和易于大规模合成,将肽结构单元组织成有序的超分子结构引起了极大的兴趣。另外,短至二肽的肽含有在纳米和微米级自发形成有序结构所需的所有分子信息。因此,肽超分子组装已被有效地用于生产具有定制性质的新颖材料,以用于材料科学,工程,医学和生物学领域的各种应用。为了在结构和功能复杂性方面进一步扩大肽装配体的构象空间,与天然序列定义的生物聚合物(蛋白质)的结构多样性相似,多组分(两个或多个)肽超分子共装配最近发展成为一种有前途的扩展方法。 )以及合成共价共聚物。最近在各种应用中证明了这种方法的使用,例如纳米结构物理尺寸控制,非规范复杂拓扑的创建,机械强度调制,光收集软材料的设计,导电装置的制造,感应荧光,酶促法催化和组织工程。鉴于近几年来肽超分子共组装领域的这些重大进展,在本教程回顾中,我们提供了该新兴主题的更新概述和未来前景。

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  • 作者

    Pandeeswar Makam; Ehud Gazit;

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  • 年(卷),期 -1(47),10
  • 年度 -1
  • 页码 3406–3420
  • 总页数 27
  • 原文格式 PDF
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