整合了天然茯苓的肺靶向吸入脂质纳米药物通过抗炎和修复肺屏障改善急性肺损伤。

IF 10.5 1区 医学 Q1 CHEMISTRY, MULTIDISCIPLINARY Journal of Controlled Release Pub Date : 2024-09-10 DOI:10.1016/j.jconrel.2024.09.013
Zhi-Chao Sun,Ran Liao,Caihong Xian,Ran Lin,Liying Wang,Yifei Fang,Zhongde Zhang,Yuntao Liu,Jun Wu
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引用次数: 0

摘要

急性肺损伤(ALI)或急性呼吸窘迫综合征(ARDS)是由 COVID-19、流感和败血症等多种疾病引起的高死亡率疾病。目前的疗法主要依靠吸入一氧化氮或注射药物(如糖皮质激素),但其毒性、副作用或给药途径限制了其临床应用。本研究从 Pogostemon cablin Benth 中提取了具有抗炎作用的疏水性黄酮醇 pachypodol (Pac),并将其夹杂在脂质体(Pac@liposome,Pac-lipo)中,以改善其溶解度、生物分布和生物利用度,从而提高 ALI/ARDS 的治疗效果。经证实,纳米化的 Pac-lipo 具有稳定的物理性质、良好的生物分布和可靠的生物相容性。体外试验证明,Pac-lipo 具有抗炎特性,对脂多糖(LPS)诱导的巨噬细胞和内皮细胞的内皮和上皮屏障分别具有保护作用。此外,还验证了 Pac-lipo 在治疗 LPS 诱导的小鼠 ALI 中的作用。与单独使用 Pac 相比,Pac-lipo 在缓解 ALI 表型方面表现出更好的效果:它能明显减轻肺指数,改善肺功能,抑制肺组织中 TNF-α、IL-6、IL-1β 和 iNOS 等细胞因子的表达,减轻 HE 染色显示的肺损伤,减少支气管肺泡灌洗液中的蛋白质含量和细胞总数,修复肺上皮和血管内皮屏障。在潜在机制方面,RNA 测序结果显示,药物的作用与多种免疫和炎症相关的信号通路有关。分子对接和 Western 印迹显示,Pac-lipo 可抑制 TLR4-MyD88-NF-κB/MAPK 信号通路的激活。综上所述,我们的新药(Pac-lipo)首次通过抑制 TLR4-MyD88-NF-κB/MAPK 通路介导的炎症和肺屏障破坏来改善 ALI。这些发现为临床治疗 ALI 提供了一种前景广阔的策略。
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Natural pachypodol integrated, lung targeted and inhaled lipid nanomedicine ameliorates acute lung injury via anti-inflammation and repairing lung barrier.
Acute lung injury (ALI) or acute respiratory distress syndrome (ARDS) is a high-mortality disease caused by multiple disorders such as COVID-19, influenza, and sepsis. Current therapies mainly rely on the inhalation of nitric oxide or injection of pharmaceutical drugs (e.g., glucocorticoids); however, their toxicity, side effects, or administration routes limit their clinical application. In this study, pachypodol (Pac), a hydrophobic flavonol with anti-inflammatory effects, was extracted from Pogostemon cablin Benth and intercalated in liposomes (Pac@liposome, Pac-lipo) to improve its solubility, biodistribution, and bioavailability, aiming at enhanced ALI/ARDS therapy. Nanosized Pac-lipo was confirmed to have stable physical properties, good biodistribution, and reliable biocompatibility. In vitro tests proved that Pac-lipo has anti-inflammatory property and protective effects on endothelial and epithelial barriers in lipopolysaccharide (LPS)-induced macrophages and endothelial cells, respectively. Further, the roles of Pac-lipo were validated on treating LPS-induced ALI in mice. Pac-lipo showed better effects than did Pac alone on relieving ALI phenotypes: It significantly attenuated lung index, improved pulmonary functions, inhibited cytokine expression such as TNF-α, IL-6, IL-1β, and iNOS in lung tissues, alleviated lung injury shown by HE staining, reduced protein content and total cell number in bronchoalveolar lavage fluid, and repaired lung epithelial and vascular endothelial barriers. As regards the underlying mechanisms, RNA sequencing results showed that the effects of the drugs were associated with numerous immune- and inflammation-related signaling pathways. Molecular docking and western blotting demonstrated that Pac-lipo inhibited the activation of the TLR4-MyD88-NF-κB/MAPK signaling pathway. Taken together, for the first time, our new drug (Pac-lipo) ameliorates ALI via inhibition of TLR4-MyD88-NF-κB/MAPK pathway-mediated inflammation and disruption of lung barrier. These findings may provide a promising strategy for ALI treatment in the clinic.
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来源期刊
Journal of Controlled Release
Journal of Controlled Release 医学-化学综合
CiteScore
18.50
自引率
5.60%
发文量
700
审稿时长
39 days
期刊介绍: The Journal of Controlled Release (JCR) proudly serves as the Official Journal of the Controlled Release Society and the Japan Society of Drug Delivery System. Dedicated to the broad field of delivery science and technology, JCR publishes high-quality research articles covering drug delivery systems and all facets of formulations. This includes the physicochemical and biological properties of drugs, design and characterization of dosage forms, release mechanisms, in vivo testing, and formulation research and development across pharmaceutical, diagnostic, agricultural, environmental, cosmetic, and food industries. Priority is given to manuscripts that contribute to the fundamental understanding of principles or demonstrate the advantages of novel technologies in terms of safety and efficacy over current clinical standards. JCR strives to be a leading platform for advancements in delivery science and technology.
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