Water-soluble and predictable-release triptolide prodrugs block bleomycin-induced pulmonary fibrosis in mice

IF 6 2区 医学 Q1 CHEMISTRY, MEDICINAL
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Abstract

Idiopathic pulmonary fibrosis (IPF) is a progressive respiratory disease with no known cause. It is characterized by widespread inflammation and structural abnormalities in the alveoli of the lungs, ultimately leading to the development of pulmonary fibrosis. Triptolide (TP), an epoxy-diterpene lactone compound known for its potent anti-inflammatory and antifibrotic effects, was limited clinical use due to poor water solubility and side effects. Two soluble TP prodrugs (PG490-88 and Minnelide) have entered clinical research. However, their activities are based on enzyme metabolism, which is influenced by species-specific differences. In this study, we present water-soluble TP derivatives synthesized by introducing ethylenediamine carbamate groups (TP-DEAs) at the 14-hydroxy position. The introduced groups were found to spontaneously convert into the parent drug through enzyme-independent metabolic conversion. The water solubility and stability of the compounds were examined in vitro. Notably, TP-DEA2 exhibited high water solubility (30.8 mg/mL), exceeding TP solubility by more than 1181-fold. In vitro, TP-DEA2 converted to TP autonomously without the involvement of enzymes. In addition, TP-DEA2 can inhibit the expression of a disintegrin and metalloproteinase 10 (ADAM 10) induced by TGF-β1 and reduce the secretion of a-SMA in fibroblasts. In vivo, TP-DEA2 transformed into TP, effectively inhibiting fibrosis in the bleomycin group without observed toxicity. Importantly, positive outcomes when administering TP-DEA2 at a later stage post-bleomycin exposure suggest its potential role in treating IPF.

Abstract Image

水溶性和可预测释放的三苯氧胺原药可阻止博莱霉素诱导的小鼠肺纤维化
特发性肺纤维化(IPF)是一种病因不明的进行性呼吸系统疾病。其特点是肺部肺泡出现广泛炎症和结构异常,最终导致肺纤维化。雷公藤内酯(Triptolide,TP)是一种环氧二萜内酯化合物,以其强大的抗炎和抗纤维化作用而闻名,但由于水溶性差和副作用,其临床应用受到限制。两种可溶性 TP 原药(PG490-88 和 Minnelide)已进入临床研究。然而,它们的活性基于酶代谢,而酶代谢受物种差异的影响。在本研究中,我们介绍了通过在 14-羟基位置引入氨基甲酸乙二胺基团(TP-DEAs)合成的水溶性 TP 衍生物。研究发现,引入的基团可通过不依赖酶的代谢转化自发地转化为母体药物。体外测试了这些化合物的水溶性和稳定性。值得注意的是,TP-DEA2 具有很高的水溶性(30.8 毫克/毫升),比 TP 的水溶性高出 1181 倍以上。在体外,TP-DEA2 可自主转化为 TP,无需酶的参与。此外,TP-DEA2 还能抑制 TGF-β1 诱导的分解蛋白和金属蛋白酶 10(ADAM 10)的表达,并减少成纤维细胞中 a-SMA 的分泌。在体内,TP-DEA2 转化为 TP,有效抑制了博莱霉素组的纤维化,且未观察到毒性。重要的是,在暴露于博莱霉素后的晚期阶段施用TP-DEA2的积极结果表明,它在治疗IPF方面具有潜在的作用。
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来源期刊
CiteScore
11.70
自引率
9.00%
发文量
863
审稿时长
29 days
期刊介绍: The European Journal of Medicinal Chemistry is a global journal that publishes studies on all aspects of medicinal chemistry. It provides a medium for publication of original papers and also welcomes critical review papers. A typical paper would report on the organic synthesis, characterization and pharmacological evaluation of compounds. Other topics of interest are drug design, QSAR, molecular modeling, drug-receptor interactions, molecular aspects of drug metabolism, prodrug synthesis and drug targeting. The journal expects manuscripts to present the rational for a study, provide insight into the design of compounds or understanding of mechanism, or clarify the targets.
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