设计肽类两亲体作为组织工程支架

IF 15.9 1区 化学 Q1 CHEMISTRY, PHYSICAL
Weizhen Sun , David Alexander Gregory , Xiubo Zhao
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引用次数: 3

摘要

肽两亲体(PAs)是一种基于肽的分子,其包含肽序列作为共价共轭到疏水段(如脂质尾部)的头基团。它们可以自组装成有序的超分子纳米结构,如胶束、囊泡、扭曲带和纳米纤维。此外,天然氨基酸的多样性为产生不同序列的PAs提供了可能。这些特性以及它们的生物相容性、生物降解性和与天然细胞外基质(ECM)的高度相似性使得PAs被认为是组织工程(TE)应用的理想支架材料。本文介绍了20种天然规范氨基酸作为构建模块,然后重点介绍了三种pa:两亲肽,脂化肽两亲分子和超分子肽两亲分子偶联物,以及它们的设计规则,指示肽自组装过程。此外,本文还讨论了pa水凝胶的三维生物制造策略,并考虑了pa基支架在TE中的最新进展,重点是骨、软骨和神经组织的体外和体内再生。最后,对未来的展望和面临的挑战进行了讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Designed peptide amphiphiles as scaffolds for tissue engineering

Designed peptide amphiphiles as scaffolds for tissue engineering

Peptide amphiphiles (PAs) are peptide-based molecules that contain a peptide sequence as a head group covalently conjugated to a hydrophobic segment, such as lipid tails. They can self-assemble into well-ordered supramolecular nanostructures such as micelles, vesicles, twisted ribbons and nanofibers. In addition, the diversity of natural amino acids gives the possibility to produce PAs with different sequences. These properties along with their biocompatibility, biodegradability and a high resemblance to native extracellular matrix (ECM) have resulted in PAs being considered as ideal scaffold materials for tissue engineering (TE) applications. This review introduces the 20 natural canonical amino acids as building blocks followed by highlighting the three categories of PAs: amphiphilic peptides, lipidated peptide amphiphiles and supramolecular peptide amphiphile conjugates, as well as their design rules that dictate the peptide self-assembly process. Furthermore, 3D bio-fabrication strategies of PAs hydrogels are discussed and the recent advances of PA-based scaffolds in TE with the emphasis on bone, cartilage and neural tissue regeneration both in vitro and in vivo are considered. Finally, future prospects and challenges are discussed.

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来源期刊
CiteScore
28.50
自引率
2.60%
发文量
175
审稿时长
31 days
期刊介绍: "Advances in Colloid and Interface Science" is an international journal that focuses on experimental and theoretical developments in interfacial and colloidal phenomena. The journal covers a wide range of disciplines including biology, chemistry, physics, and technology. The journal accepts review articles on any topic within the scope of colloid and interface science. These articles should provide an in-depth analysis of the subject matter, offering a critical review of the current state of the field. The author's informed opinion on the topic should also be included. The manuscript should compare and contrast ideas found in the reviewed literature and address the limitations of these ideas. Typically, the articles published in this journal are written by recognized experts in the field.
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