鱼腥草酸钠通过TNF-α/JAK-STAT信号通路预防NiO-NPs诱导的大鼠肺损伤

IF 6.1 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Zongtong Yang , Tiefeng Sun , Mengru Zhang , Xiaojing Li , Yi Wang , Wei Li , Qiwei Wang , Xinru Wang , Shizeng Liu , Wenhui Wang , Ping Wang
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引用次数: 0

摘要

氧化镍纳米材料(NiO-NPs)作为工程纳米材料,经常与各种炎症性疾病的发病有关。然而,目前尚无针对NiO-NPs暴露引起的肺炎的特异性治疗剂。本研究采用大鼠Ⅱ肺泡上皮细胞(ACE-Ⅱ)模型建立NiO-NPs细胞毒性模型,研究NiO-NPs对细胞的影响,同时采用非暴露气管灌注技术建立Wistar大鼠肺损伤模型。为了解决这一病理问题,我们配制了一种流动性好、分散均匀的鱼腥草酸钠纳米乳,并通过鱼腥草汤、鱼腥草酸钠片和鱼腥草酸钠纳米乳三种不同的给药途径,评估其对nio - nnp诱导的急性肺损伤的治疗效果和机制。同时,通过网络药理学和转录组学分析来确定关键的分子靶点和信号通路。结果表明,鱼腥草和SH在体外和体内均能显著降低TNF-α水平,抑制JAK-STAT信号通路的激活,从而减轻nio - nps诱导的肺损伤。在所测试的各种配方中,SH纳米乳表现出最显著的治疗效果。本研究为nio - nps诱导的肺损伤提供了一种有希望的治疗策略,并有助于推进纳米材料相关炎症性疾病的药物干预。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sodium houttuyfonate prevents NiO-NPs induced lung injury in rats through the TNF-α/JAK-STAT signaling pathway
Nickel oxide nanomaterials (NiO-NPs), as engineered nanomaterials, are frequently implicated in the onset of various inflammatory disorders. However, no specific therapeutic agent is currently available for pneumonia induced by NiO-NPs exposure. In the present study, a cytotoxicity model was established using rat type Ⅱ alveolar epithelial cells (ACE-Ⅱ) to investigate the cellular effects of NiO-NPs, while a rat model of lung injury was developed in Wistar rats via a non-exposure tracheal instillation technique. To address this pathology, we formulated a sodium houttuyfonate (SH) nanoemulsion characterized by favorable fluidity and uniform dispersion, and evaluated its therapeutic efficacy and underlying mechanisms in NiO-NPs-induced acute lung injury through three distinct administration routes: Houttuynia cordata decoction, SH tablets and SH nanoemulsion. Concurrently, network pharmacology and transcriptomic analyses were conducted to identify key molecular targets and signaling pathways. The findings demonstrated that both Houttuynia cordata and SH significantly reduced TNF-α levels and inhibited the activation of the JAK-STAT signaling pathway both in vitro and in vivo, thereby mitigating NiO-NPs-induced pulmonary injury. Among the various formulations tested, the SH nanoemulsion exhibited the most pronounced therapeutic efficacy. This study offers a promising therapeutic strategy for NiO-NPs-induced lung injury and contributes to the advancement of pharmacological interventions for nanomaterial-related inflammatory diseases.
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来源期刊
CiteScore
12.10
自引率
5.90%
发文量
1234
审稿时长
88 days
期刊介绍: Ecotoxicology and Environmental Safety is a multi-disciplinary journal that focuses on understanding the exposure and effects of environmental contamination on organisms including human health. The scope of the journal covers three main themes. The topics within these themes, indicated below, include (but are not limited to) the following: Ecotoxicology、Environmental Chemistry、Environmental Safety etc.
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