用于成像和治疗应用的碱性磷酸酶指导的多肽组件

IF 5.4 2区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Chengfan Wu, Pingge Jiang, Wen Su and Yunfeng Yan*, 
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引用次数: 0

摘要

自组装是一种构建高度稳定和有序的超分子结构的强大策略,广泛存在于自然界和生命系统中。肽具有易于合成、可调机械稳定性、良好的生物安全性和生物可降解性等优点,因此经常被用作自组装过程中的构建模块。在多肽自组装的引发剂中,酶是在温和的反应条件下引导这一过程的最佳候选物质。碱性磷酸酶(ALP)是一种重要且常用的生物标记物,它能裂解磷酸基团,引发亲水性到疏水性的转变,从而诱导多肽自组装。近年来,ALP 诱导的多肽自组装在生物成像和治疗领域取得了突破性进展,激发了用于诊断和治疗的自组装生物材料的发展。在本综述中,我们将重点介绍 ALP 诱导多肽组装的最新进展,并对其潜在影响进行展望。最后,我们简要讨论了该领域未来研究面临的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Alkaline Phosphatase-Instructed Peptide Assemblies for Imaging and Therapeutic Applications

Alkaline Phosphatase-Instructed Peptide Assemblies for Imaging and Therapeutic Applications

Self-assembly, a powerful strategy for constructing highly stable and well-ordered supramolecular structures, widely exists in nature and in living systems. Peptides are frequently used as building blocks in the self-assembly process due to their advantageous characteristics, such as ease of synthesis, tunable mechanical stability, good biosafety, and biodegradability. Among the initiators for peptide self-assembly, enzymes are excellent candidates for guiding this process under mild reaction conditions. As a crucial and commonly used biomarker, alkaline phosphatase (ALP) cleaves phosphate groups, triggering a hydrophilicity-to-hydrophobicity transformation that induces peptide self-assembly. In recent years, ALP-instructed peptide self-assembly has made breakthroughs in biological imaging and therapy, inspiring the development of self-assembly biomaterials for diagnosis and therapeutics. In this review, we highlight the most recent advancements in ALP-instructed peptide assemblies and provide perspectives on their potential impact. Finally, we briefly discuss the ongoing challenges for future research in this field.

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来源期刊
Biomacromolecules
Biomacromolecules 化学-高分子科学
CiteScore
10.60
自引率
4.80%
发文量
417
审稿时长
1.6 months
期刊介绍: Biomacromolecules is a leading forum for the dissemination of cutting-edge research at the interface of polymer science and biology. Submissions to Biomacromolecules should contain strong elements of innovation in terms of macromolecular design, synthesis and characterization, or in the application of polymer materials to biology and medicine. Topics covered by Biomacromolecules include, but are not exclusively limited to: sustainable polymers, polymers based on natural and renewable resources, degradable polymers, polymer conjugates, polymeric drugs, polymers in biocatalysis, biomacromolecular assembly, biomimetic polymers, polymer-biomineral hybrids, biomimetic-polymer processing, polymer recycling, bioactive polymer surfaces, original polymer design for biomedical applications such as immunotherapy, drug delivery, gene delivery, antimicrobial applications, diagnostic imaging and biosensing, polymers in tissue engineering and regenerative medicine, polymeric scaffolds and hydrogels for cell culture and delivery.
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