仙球内酯I通过重编程vdr依赖性脂肪酸代谢抑制肝星状细胞活化和肝纤维化。

IF 5.7 3区 医学 Q1 INTEGRATIVE & COMPLEMENTARY MEDICINE
Mengyao Zhu, Lu Ren, Wenlong Xiao, Longjian Wang, Zhiming Hu, Nani Wang
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引用次数: 0

摘要

肝星状细胞(HSCs)激活是肝纤维化的一个核心病理机制,新出现的证据表明脂肪酸代谢重编程是这一过程的关键调节因子。我们的研究确定了维生素D受体(VDR)是HSC激活过程中脂肪酸代谢的关键转录协调者。小鼠基因VDR缺失加剧了肝纤维化的进展,这与TGF-β1水平升高和Smad3磷酸化增加有关。从机制上说,VDR缺乏通过上调脂质生成酶(脂肪酸合成酶、乙酰辅酶a羧化酶1、ATP柠檬酸裂解酶)和去饱和酶(硬脂酰辅酶a去饱和酶1、脂肪酸去饱和酶1/2)以及抑制β-氧化看门手肉碱棕榈酰基转移酶1A (CPT1A)来破坏脂质稳态。在TGF-β1活化的hsc和纤维化肝组织中均观察到病理性VDR下调,提示存在疾病相关的调节回路。骨化三醇介导的VDR激活逆转TGF-β1诱导的Smad3磷酸化和代谢酶表达正常化,有效减少脂质积累和胶原沉积。我们进一步发现仙王内酯I是一种新型的天然VDR激动剂,通过同时下调脂肪生成/去饱和机制和上调CPT1A来重新平衡脂肪酸代谢。在VDR敲除后,senkyunolide I的抗纤维化作用完全消失,证实了其严格的受体依赖性。这些发现确定了VDR是HSC激活中代谢重编程的主要调节因子,并验证了药理学VDR激活是一种有希望的肝纤维化治疗策略。仙球内酯I通过VDR信号的双重代谢调节能力突出了其靶向抗纤维化干预的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Senkyunolide I suppresses hepatic stellate cell activation and liver fibrosis by reprogramming VDR-dependent fatty acid metabolism.

Hepatic stellate cells (HSCs) activation represents a central pathological mechanism in liver fibrosis, with emerging evidence implicating fatty acid metabolic reprogramming as a critical regulator of this process. Our study established the vitamin D receptor (VDR) as a key transcriptional coordinator of fatty acid metabolism during HSC activation. Genetic VDR deletion in mice exacerbated liver fibrosis progression, which was associated with elevated TGF-β1 levels and increased Smad3 phosphorylation. Mechanistically, VDR deficiency disrupted lipid homeostasis through the upregulation of lipogenic enzymes (fatty acid synthase, acetyl-CoA carboxylase 1, ATP citrate lyase) and desaturases (stearoyl-CoA desaturase-1, fatty acid desaturases 1/2) and the suppression of the β-oxidation gatekeeper carnitine palmitoyltransferase 1A (CPT1A). Pathological VDR downregulation was observed in both TGF-β1-activated HSCs and fibrotic liver tissues, suggesting a disease-associated regulatory circuit. Calcitriol-mediated VDR activation reversed TGF-β1-induced Smad3 phosphorylation and normalized metabolic enzyme expression, effectively reducing lipid accumulation and collagen deposition. We further identified senkyunolide I as a novel natural VDR agonist that rebalances fatty acid metabolism by simultaneously downregulating lipogenesis/desaturation machinery and upregulating CPT1A. The complete abolition of anti-fibrotic effects of senkyunolide I following VDR knockdown confirmed its strict receptor dependency. These findings identify VDR as a master regulator of metabolic reprogramming in HSC activation and validate pharmacological VDR activation as a promising therapeutic strategy for liver fibrosis. The dual metabolic regulatory capacity of senkyunolide I through VDR signaling highlights its potential for targeted antifibrotic intervention.

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来源期刊
Chinese Medicine
Chinese Medicine INTEGRATIVE & COMPLEMENTARY MEDICINE-PHARMACOLOGY & PHARMACY
CiteScore
7.90
自引率
4.10%
发文量
133
审稿时长
31 weeks
期刊介绍: Chinese Medicine is an open access, online journal publishing evidence-based, scientifically justified, and ethical research into all aspects of Chinese medicine. Areas of interest include recent advances in herbal medicine, clinical nutrition, clinical diagnosis, acupuncture, pharmaceutics, biomedical sciences, epidemiology, education, informatics, sociology, and psychology that are relevant and significant to Chinese medicine. Examples of research approaches include biomedical experimentation, high-throughput technology, clinical trials, systematic reviews, meta-analysis, sampled surveys, simulation, data curation, statistics, omics, translational medicine, and integrative methodologies. Chinese Medicine is a credible channel to communicate unbiased scientific data, information, and knowledge in Chinese medicine among researchers, clinicians, academics, and students in Chinese medicine and other scientific disciplines of medicine.
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