脂质硝基烯纳米颗粒用于局部缺血再灌注的治疗。

Q1 Pharmacology, Toxicology and Pharmaceutics
Gary Z Yu, Thiruganesh Ramasamy, Marco Fazzari, Xucai Chen, Bruce Freeman, John J Pacella
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引用次数: 6

摘要

原理:使用超声靶向LNP空化(UTC)治疗微血管阻塞(MVO)可以机械地缓解微循环中的物理阻塞,但不专门针对相关的炎症环境。亲电脂肪酸硝基烯衍生物(硝基脂肪酸)显示出多效抗炎信号和转录调节作用,具有很强的治疗潜力,但缺乏快速靶向递送的手段。本研究的目的是开发含有硝基脂肪酸的脂质纳米颗粒(LNP),它保留了标准LNP的机械功效,并且可以快速靶向递送组织保护载荷,减少炎症并改善缺血再灌注后的血管功能。方法:采用HPLC-MS/MS和超高速显微镜对硝基脂肪酸LNP (NO2-FA-LNP)的稳定性和声学行为进行表征。将LNP用于超声靶向空化大鼠后肢缺血再灌注损伤模型。结果:在健康大鼠后肢和缺血再灌注损伤后,超声靶向LNP空化(UTC)后静脉给予NO2-FA-LNP均可增强NO2-FA组织输送和微血管灌注。此外,缺血再灌注后血管炎症介质表达和脂质过氧化降低,表明NO2-FA-LNP对炎症损伤有保护作用。结论:UTC靶向NO2-FA-LNP血管提供了一种快速的局部抗炎治疗缺血再灌注损伤部位的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Lipid nitroalkene nanoparticles for the focal treatment of ischemia reperfusion.

Lipid nitroalkene nanoparticles for the focal treatment of ischemia reperfusion.

Lipid nitroalkene nanoparticles for the focal treatment of ischemia reperfusion.

Lipid nitroalkene nanoparticles for the focal treatment of ischemia reperfusion.

Rationale: The treatment of microvascular obstruction (MVO) using ultrasound-targeted LNP cavitation (UTC) therapy mechanically relieves the physical obstruction in the microcirculation but does not specifically target the associated inflammatory milieu. Electrophilic fatty acid nitroalkene derivatives (nitro-fatty acids), that display pleiotropic anti-inflammatory signaling and transcriptional regulatory actions, offer strong therapeutic potential but lack a means of rapid targeted delivery. The objective of this study was to develop nitro-fatty acid-containing lipid nanoparticles (LNP) that retain the mechanical efficacy of standard LNP and can rapidly target delivery of a tissue-protective payload that reduces inflammation and improves vascular function following ischemia-reperfusion. Methods: The stability and acoustic behavior of nitro-fatty acid LNP (NO2-FA-LNP) were characterized by HPLC-MS/MS and ultra-high-speed microscopy. The LNP were then used in a rat hindlimb model of ischemia-reperfusion injury with ultrasound-targeted cavitation. Results: Intravenous administration of NO2-FA-LNP followed by ultrasound-targeted LNP cavitation (UTC) in both healthy rat hindlimb and following ischemia-reperfusion injury showed enhanced NO2-FA tissue delivery and microvascular perfusion. In addition, vascular inflammatory mediator expression and lipid peroxidation were decreased in tissues following ischemia-reperfusion revealed NO2-FA-LNP protected against inflammatory injury. Conclusions: Vascular targeting of NO2-FA-LNP with UTC offers a rapid method of focal anti-inflammatory therapy at sites of ischemia-reperfusion injury.

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来源期刊
Nanotheranostics
Nanotheranostics Pharmacology, Toxicology and Pharmaceutics-Pharmacology, Toxicology and Pharmaceutics (miscellaneous)
CiteScore
10.40
自引率
0.00%
发文量
37
审稿时长
12 weeks
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