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一种新型方法,通过抑制肝细胞 MAPK 通路和凋亡,使用水飞蓟宾与 hybrid balloon flower root-derived exosome-like nanoparticles(BDEs)联合治疗对乙酰氨基酚诱导的肝毒性。

A novel approach to alleviate acetaminophen-induced hepatotoxicity with hybrid balloon flower root-derived exosome-like nanoparticles (BDEs) with silymarin via inhibition of hepatocyte MAPK pathway and apoptosis.

机构信息

Department of Pharmaceutics, School of Pharmacy, Fudan University and Key Laboratory of Smart Drug Delivery, Ministry of Education, Shanghai, 201203, People's Republic of China.

Science and Technology Innovation Center, Guangzhou University of Chinese Medicine, Guangzhou, 510405, China.

出版信息

Cell Commun Signal. 2024 Jun 18;22(1):334. doi: 10.1186/s12964-024-01700-z.

Abstract

INTRODUCTION

Balloon flower root-derived exosome-like nanoparticles (BDEs) have recently been proposed as physiologically active molecules with no cytotoxicity. However, the therapeutic effects of drug-induced hepatotoxicity of BDEs have not been elucidated. BDEs contain a large amount of platycodin D, which is widely known to be effective in regulating inflammation and ameliorating systemic toxicity. Thus, the main therapeutic activity of BDEs is attributed to inhibiting the inflammatory response and alleviating toxicity. In this study, we fabricated the hybrid BDEs fused with liposomes containing silymarin (SM) to enhance the synergistic effect on inhibition of acetaminophen-induced hepatotoxicity (APAP).

OBJECTIVE

Considering the potential therapeutic effects of BDEs, and the potential to achieve synergistic effects to improve therapeutic outcomes, we constructed hybrid BDEs with a soy lecithin-based liposome loaded with SM. Since liposomes can provide higher thermal stability and have greater structural integrity, these might be more resistant to clearance and enzymatic degradation of drug molecules.

METHODS

Hybrid BDEs with liposome-loaded SM (BDEs@lipo-SM) were fabricated by thin-film hydration and extrusion. BDEs@lipo-SM were characterized using dynamic light scattering and high-performance liquid chromatography. After confirmation of the physical properties of BDEs@lipo-SM, various therapeutic properties were evaluated.

RESULTS

BDEs@lipo-SM were internalized by hepatocytes and immune cells and significantly decreased mRNA expression of apoptosis and inflammation-relevant cytokines by inhibiting the hepatocyte MAPK pathway. BDEs@lipo-SM significantly induced an increase in glutathione levels and inhibited APAP-induced hepatotoxicity.

CONCLUSION

From this study, we know that BDEs are reliable and safe nanovesicles containing natural metabolites derived from balloon flower, and they can facilitate intercellular communication. BDEs are also easily modified to enhance drug loading capacity, targeting effects, and long-term accumulation in vivo. BDEs@lipo-SM have therapeutic benefits for acute liver injury and can alleviate cell death and toxicity. They can be efficiently delivered to the liver and effectively inhibit APAP-induced hepatotoxicity by inhibiting the MAPK signaling pathway and apoptosis, which accelerates liver recovery in the APAP-induced acute liver injury model. These findings highlight that BDEs represent an attractive delivery vehicle for drug delivery.

摘要

简介

近来,有人提出,风铃草根衍生的外泌体样纳米颗粒(BDEs)是一种具有生理活性且无细胞毒性的物质。然而,BDEs 诱导的肝毒性的治疗效果尚未阐明。BDEs 含有大量的桔梗皂苷 D,其被广泛认为可有效调节炎症并改善全身毒性。因此,BDEs 的主要治疗活性归因于抑制炎症反应和减轻毒性。在本研究中,我们构建了融合有含水飞蓟素(SM)的脂质体的杂交 BDEs,以增强其对乙酰氨基酚诱导的肝毒性(APAP)的抑制作用的协同效应。

目的

鉴于 BDEs 的潜在治疗效果,以及实现协同效应以改善治疗效果的潜力,我们构建了一种由大豆卵磷脂基脂质体负载 SM 的杂交 BDEs。由于脂质体可以提供更高的热稳定性和更大的结构完整性,它们可能更能抵抗药物分子的清除和酶降解。

方法

通过薄膜水化和挤压法制备了负载 SM 的杂交 BDEs(BDEs@lipo-SM)。通过动态光散射和高效液相色谱法对 BDEs@lipo-SM 进行了表征。在确认 BDEs@lipo-SM 的物理性质后,评估了各种治疗性质。

结果

BDEs@lipo-SM 被肝细胞和免疫细胞内化,并通过抑制肝细胞 MAPK 途径显著降低与凋亡和炎症相关的细胞因子的 mRNA 表达。BDEs@lipo-SM 显著诱导谷胱甘肽水平升高,并抑制 APAP 诱导的肝毒性。

结论

从这项研究中,我们了解到 BDEs 是一种可靠且安全的纳米囊泡,含有源自风铃草的天然代谢产物,可促进细胞间通讯。BDEs 也很容易进行修饰以增强药物载量、靶向效果和体内的长期积累。BDEs@lipo-SM 对急性肝损伤具有治疗益处,并可通过抑制 MAPK 信号通路和凋亡来减轻细胞死亡和毒性,从而加速 APAP 诱导的急性肝损伤模型中的肝恢复。这些发现强调了 BDEs 作为药物递送的有吸引力的载体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f59f/11184736/d7a602a5bb0e/12964_2024_1700_Sch1_HTML.jpg

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