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设计自组装肽纳米纤维诱导利多卡因矿化用于缓慢释放和延长镇痛。

Designer self-assembling peptide nanofibers induce biomineralization of lidocaine for slow-release and prolonged analgesia.

机构信息

Department of Anesthesiology, West China Hospital, Sichuan University, China; Laboratory of Anesthesia and Critical Care Medicine, National-Local Joint Engineering Research Center of Translational Medicine of Anesthesiology, West China Hospital, Sichuan University, China.

Department of Anesthesiology, West China Hospital, Sichuan University, China; Laboratory of Anesthesia and Critical Care Medicine, National-Local Joint Engineering Research Center of Translational Medicine of Anesthesiology, West China Hospital, Sichuan University, China.

出版信息

Acta Biomater. 2022 Jul 1;146:66-79. doi: 10.1016/j.actbio.2022.05.002. Epub 2022 May 8.

Abstract

The burst release of small molecular water-soluble drugs is a major problem when pursuing their long-acting formulations. Although various types of carrier materials have been developed for tackling this problem, it is still a big challenge to prevent water-soluble small molecules from fast release and diffusion. In this study, a biomineralization strategy based upon a self-assembling peptide is proposed for the slow release of lidocaine, a classic anesthetic with high solubility and a very small molecular weight. A bolaamphiphilic peptide was designed to self-assemble and produce negatively charged nanofibers, which were used as the template to absorb positively charged lidocaine molecules through an electrostatic interaction. The biomineralization of lidocaine was then induced by adjusting the pH, which lead to the formation of lidocaine microcrystals with a homogenous size. The microcrystals were incorporated into a hyaluronic acid hydrogel to form an injectable formulation. This formulation slowly released lidocaine and generate a prolonged anesthetic and analgesic effect in rodent models. Due to the constrained local and plasma lidocaine concentration, as well as the biocompatibility and biodegradability of the peptide materials, this formulation also showed considerable safety. These results suggest that nanofiber assisted biomineralization can provide a potential strategy for the fabrication of long-acting formulations for small molecular water-soluble drugs. STATEMENT OF SIGNIFICANCE: Long-acting formulations are highly pursued to achieve stronger therapeutic effect, or to avoid repeated administration of drugs, especially through painful injection. Using carrier materials to slow down the release of bioactive molecules is a common strategy to reach this goal. However, for many water-soluble small molecular drugs currently used in clinic, it is notoriously difficult to slow down their release and diffusion. This study proposes a novel strategy based on a controllable mineralization process using self-assembling peptide nanofibers as the template. Taking lidocaine as an example, we showed how peptide-drug microcrystals with well-controlled size and shape could be obtained, which exhibit significantly prolonged anesthetic and analgesic effect. As a proof-of-concept study, this work proposes a promising strategy to control the release of water-soluble small molecular drugs.

摘要

小分子水溶性药物的突释是追求长效制剂的主要问题。尽管已经开发了各种类型的载体材料来解决这个问题,但防止水溶性小分子快速释放和扩散仍然是一个巨大的挑战。在这项研究中,提出了一种基于自组装肽的生物矿化策略,用于缓慢释放具有高溶解度和非常小分子量的经典麻醉剂利多卡因。设计了一种两亲性肽自组装并产生带负电荷的纳米纤维,用作模板通过静电相互作用吸收带正电荷的利多卡因分子。然后通过调节 pH 值诱导利多卡因的生物矿化,导致形成具有均匀尺寸的利多卡因微晶。将微晶掺入透明质酸水凝胶中形成可注射制剂。该制剂缓慢释放利多卡因,并在啮齿动物模型中产生长效的麻醉和镇痛效果。由于局部和血浆中利多卡因的浓度受到限制,以及肽材料的生物相容性和可降解性,该制剂也表现出相当的安全性。这些结果表明,纳米纤维辅助生物矿化可为小分子水溶性药物的长效制剂的制备提供一种潜在策略。

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