自组装肽(SAPs)是制备抗菌和伤口愈合纳米结构的有力工具

Marilisa Pia Dimmito, L. Marinelli, I. Cacciatore, Anna Lucia Valeri, Alessandra Rapino, A. Stefano
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摘要

超分子自组装(SA)是一种自然发生的、由自由能量驱动的分子根据组装环境产生纳米结构系统的过程。SA分子吸引了研究的注意力,因为它们具有独特的物理化学性质,可以使纳米结构非常适合生物医学应用,如诊断、药物输送、组织工程和再生医学。由于多肽具有高生物活性和低毒性,其自组装特性作为药物和给药平台具有一定的优势。在已发现的自组装生物活性肽(SAPs)中,抗菌肽(AMPs)广泛分布于植物和动物领域,作为一种绕过常规抗菌药物对抗感染的替代策略发挥着关键作用,容易产生耐药性。基于这些证据,本文综述了多肽自组装的机制,以及其在感染性疾病和伤口敷料中的可能意义。
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Self-assembling Peptides (SAPs) as Powerful Tools for the Preparation of Antimicrobial and Wound-healing Nanostructures
Supramolecular self-assembly (SA) is a naturally occurring and free energy-driven process of molecules to produce nanostructured systems depending on the assembling environment. SA molecules have captivated the research attention since they possess singular physicochemical properties that are potentially useful to make the nanostructures quite suitable for biomedical applications, such as diagnostics, drug delivery, tissue engineering, and regenerative medicine. Due to their high biological activity and low toxicity, the self-assembly properties of peptides bid certain advantages as drugs and drug delivery platforms. Among the discovered self-assembling bioactive peptides (SAPs), antimicrobial peptides (AMPs) are widely distributed through plant and animal kingdoms and play a key role as an alternative strategy to fight infections bypassing conventional antimicrobial drugs, susceptible to antimicrobial resistance. Based on this evidence, in this review, we summarized the mechanism of the self-assembling of peptides, the main forces responsible for the SAPs formation, and the studies regarding their possible implication in infectious diseases as well as wound dressing materials.
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