Department of Biological Science and Technology, Faculty of Advanced Engineering, Tokyo University of Science, Tokyo, Japan.
Department of Nutrition and Food Science, Graduate School of Humanities and Sciences, Ochanomizu University, Tokyo, Japan.
Immunology. 2024 Sep;173(1):76-92. doi: 10.1111/imm.13798. Epub 2024 May 8.
Our newly developed menthyl esters of valine and isoleucine exhibit anti-inflammatory properties beyond those of the well-known menthol in macrophages stimulated by lipopolysaccharide (LPS) and in a mouse model of colitis induced by sodium dextran sulfate. Unlike menthol, which acts primarily through the cold-sensitive TRPM8 channel, these menthyl esters displayed unique mechanisms that operate independently of this receptor. They readily penetrated target cells and efficiently suppressed LPS-stimulated tumour necrosis factor-alpha (Tnf) expression mediated by liver X receptor (LXR), a key nuclear receptor that regulates intracellular cholesterol and lipid balance. The menthyl esters showed affinity for LXR and enhanced the transcriptional activity through their non-competitive and potentially synergistic agonistic effect. This effect can be attributed to the crucial involvement of SCD1, an enzyme regulated by LXR, which is central to lipid metabolism and plays a key role in the anti-inflammatory response. In addition, we discovered that the menthyl esters showed remarkable efficacy in suppressing adipogenesis in 3T3-L1 adipocytes at the mitotic clonal expansion stage in an LXR-independent manner as well as in mice subjected to diet-induced obesity. These multiple capabilities of our compounds establish them as formidable allies in the fight against inflammation and obesity, paving the way for a range of potential therapeutic applications.
我们新开发的缬氨酸和异亮氨酸的薄荷醇酯在脂多糖(LPS)刺激的巨噬细胞和葡聚糖硫酸钠诱导的结肠炎小鼠模型中表现出比著名的薄荷醇更强的抗炎特性。与主要通过冷敏感的 TRPM8 通道起作用的薄荷醇不同,这些薄荷醇酯表现出独特的机制,与该受体无关。它们容易穿透靶细胞,并有效地抑制 LXR 介导的脂多糖刺激的肿瘤坏死因子-α(Tnf)表达,LXR 是一种关键的核受体,调节细胞内胆固醇和脂质平衡。薄荷醇酯对 LXR 具有亲和力,并通过非竞争性和潜在协同激动作用增强转录活性。这种作用可以归因于 SCD1 的关键参与,SCD1 是一种受 LXR 调节的酶,它是脂质代谢的核心,在抗炎反应中起着关键作用。此外,我们发现,薄荷醇酯在 3T3-L1 脂肪细胞的有丝分裂克隆扩张阶段以 LXR 独立的方式以及在饮食诱导肥胖的小鼠中表现出显著抑制脂肪生成的功效。我们这些化合物的多种功能使其成为对抗炎症和肥胖的强大盟友,为一系列潜在的治疗应用铺平了道路。