乙酰紫草素通过靶向PPARγ介导的代谢功能障碍减轻饮食诱导的MASLD

Acetylshikonin mitigates diet-induced MASLD by targeting PPARγ-mediated metabolic dysfunction.

作者信息Ling Ou, Qian Du, Jiayang Liu, Haiyan Tai, Yinghan Chai, Xiaoqiong Tan, Bing Li, Lirong Tan, Ying Cao, Tingting Zhu
PMID41808872
发布时间2026-02-23
DOI10.3389/fphar.2026.1735481

实验完整度

包含体内动物模型、体外细胞模型、功能验证及机制验证,如分子对接、热位移分析等。

主要模型

C57BL/6J小鼠HFHC饮食诱导MASLD模型 C57BL/6J小鼠CCl4诱导肝纤维化模型 Hepa1-6小鼠肝细胞 HCCLM3人肝癌细胞

重点核对

AS给药剂量为600 mg/kg/天,灌胃,持续6周(HFHC模型)或4周(CCl4模型)。 细胞实验采用PA/OA(0.6 mM,OA:PA=2:1)诱导脂肪变性,AS浓度为2-4 μM。 体内外实验均验证PPARγ为关键靶点,AS下调其表达。 GW9662(PPARγ拮抗剂)与AS联用增强降脂效果。 分子对接显示AS与PPARγ强结合,热位移分析验证直接结合。

摘要

Introduction: The liver, as the central metabolic hub of the body, is highly susceptible to diet-induced injury. The increasing prevalence of metabolic dysfunction-associated steatotic liver disease (MASLD) highlights the urgent need for effective clinical interventions. Currently, there are no specific therapeutics for MASLD, and dietary patterns are closely associated with its pathogenesis, making the exploration of natural bioactive compounds a promising strategy.Methods: In this study, we identified acetylshikonin (AS), a component derived from traditional Chinese medicine (TCM), as a core bioactive agent targeting MASLD via a cross-screening strategy of MASLD-related TCM formulas. Male mouse models of MASLD were induced by a high-fat and high-cholesterol (HFHC) diet or carbon tetrachloride (CCl4) and treated with AS (600 mg/kg, gavage) for six consecutive weeks. In vitro experiments were conducted on Hepa1-6 and HCCLM3 hepatocytes stimulated with palmitic acid/oleic acid (PA/OA, 1:2). Integrated network pharmacology, molecular docking, and thermal shift assays were applied to explore the underlying mechanism.Results: In vivo results showed that AS markedly attenuated hepatic steatosis (assessed by triglyceride and total cholesterol levels) and liver fibrosis (evaluated by collagen deposition). In vitro, AS suppressed intracellular lipid accumulation (validated by Oil Red O staining and lipid quantification) and inflammatory responses (assessed by pro-inflammatory cytokine expression) in the stimulated hepatocytes. Mechanistically, AS downregulated the transcriptional expression of key genes involved in lipid metabolism (Pparγ and Srebp1c), inflammation (Tnfα and Ccl2), and fibrosis (Col1a1 and Acta2) pathways. Integrated analyses confirmed peroxisome proliferator-activated receptor γ (PPARγ) as the core direct target of AS. Western blotting demonstrated that AS reduced PPARγ protein expression, and its lipid-lowering effect was synergistically enhanced when combined with the PPARγ antagonist GW9662.Discussion: This is the first study to definitively confirm that AS exerts therapeutic effects on diet-induced MASLD by targeting the PPARγ signaling pathway, thereby reducing hepatic lipid deposition, alleviating inflammation, and ameliorating liver fibrosis progression. Our findings provide novel experimental evidence supporting the use of natural products in MASLD treatment and lay a theoretical foundation for the application of AS in the health management of diet-related liver diseases.

实验结论

提炼研究问题、关键发现与证据,快速把握文章的核心贡献。

研究问题
乙酰紫草素(AS)能否通过靶向PPARγ改善饮食诱导的MASLD?
核心机制
AS通过抑制PPARγ通路,下调脂质代谢、炎症和纤维化相关基因表达,从而减轻肝脏脂肪沉积、炎症和纤维化。
主要证据
体内HFHC和CCl4模型中,AS减轻肝脏脂肪变性和纤维化;体外PA/OA诱导的Hepa1-6和HCCLM3细胞中,AS抑制脂质积累和炎症;分子对接、热位移分析及Western blot证实AS直接靶向PPARγ并降低其表达。
研究意义
该研究首次确认AS通过靶向PPARγ治疗饮食诱导的MASLD,为天然产物在MASLD治疗中的应用提供实验依据,并为AS在饮食相关肝病健康管理中的应用奠定理论基础。

研究路径

按研究推进顺序梳理实验设计、验证步骤与关键观察。

1

交叉方剂筛选活性成分

从四种治疗NAFLD的中药方剂中筛选共同活性成分,并确定AS为候选化合物。

通过TCMSP和SymMap数据库筛选OB≥30%和DL≥0.18的活性成分,利用Venn图确定七种共有成分,包括AS。

2

网络药理学预测疾病靶点

预测AS与MASLD相关的潜在靶点,构建PPI网络并进行富集分析。

从DisGeNET、GeneCards、CTD数据库收集MASLD靶点,与AS靶点取交集,使用STRING构建PPI网络,并通过DAVID进行GO和KEGG富集分析。

3

体内验证AS改善代谢紊乱和纤维化

验证AS在HFHC饮食诱导的MASLD模型和CCl4诱导的肝纤维化模型中的治疗效果。

雄性C57BL/6J小鼠分别喂食HFHC饮食或注射CCl4,同时给予AS(600 mg/kg/天)灌胃6周或4周。检测体重、肝重、血脂、血糖、肝组织病理(H&E、油红O、天狼星红染色)以及相关基因表达。

4

体外验证AS抑制脂质积累和炎症

在PA/OA诱导的Hepa1-6和HCCLM3细胞中验证AS对脂质积累和炎症的抑制作用。

用PA/OA(0.6 mM,OA:PA=2:1)诱导细胞脂肪变性,并用不同浓度AS(2-4 μM)处理。检测细胞活力、TG/TC含量、油红O和BODIPY染色评估脂质积累,qPCR检测炎症和脂质代谢基因。

5

机制验证AS靶向PPARγ

验证AS直接结合并下调PPARγ,确认PPARγ是核心靶点。

通过分子对接预测AS与PPARγ等靶点结合,热位移分析验证直接结合;Western blot检测PPARγ蛋白表达;使用PPARγ拮抗剂GW9662观察协同降脂效果。

研究方法

按研究目的归类文中使用的方法,便于定位所需技术。

产品清单

实验环节名称品牌货号
乙酰紫草素MCE--
GW9662MCE--
油红O染色试剂盒SolarBioG1262
DMEM培养基Sangon BiotechE600033
胎牛血清Procell164210-50
青霉素-链霉素Yuanpei BiotechS110JV
棕榈酸SolarBioH8780
油酸Aladdin0108485
转化生长因子-β1----
CCK-8检测试剂盒APExBIOK1018
总胆固醇检测试剂盒Nanjing JianchengA111-1-1
甘油三酯检测试剂盒Nanjing JianchengA110-1-1
PrimeScript逆转录试剂盒TaKaRaRR036A
BODIPYMCE121207-31-6
PVDF膜Millipore--
抗PPARγ抗体Proteintech16643-1-AP
抗GAPDH抗体Proteintech60004-1-Ig
HRP偶联二抗Azyme--

关键环节

汇总复现实验时建议重点确认的条件及原文阅读提示。

环节核对要点
动物模型建立与给药
小鼠品系(C57BL/6J,8周龄,雄性)、分组(n=6)、AS剂量(600 mg/kg/天,灌胃)、处理时长(HFHC模型6周,CCl4模型4周)、CCl4剂量(0.5 mL/kg,腹腔注射,每周2次)、饮食类型(HFHC:20%脂肪、2%胆固醇)。
阅读提示:详见 Materials and Methods 2.6
细胞模型建立与处理
细胞系(Hepa1-6、HCCLM3)、诱导剂浓度(PA/OA,0.6 mM,OA:PA=2:1)、AS处理浓度(2-4 μM)、处理时间(24小时)、AS细胞毒性浓度(IC50)。
阅读提示:详见 Materials and Methods 2.9, 2.10, 以及 Results 3.3 和 3.4
分子靶点验证
热位移分析(AS浓度4 μM,处理2小时)、Western blot(PPARγ抗体、蛋白上样量30 μg)、PPARγ拮抗剂GW9662浓度(文中未明确说明)。
阅读提示:详见 Materials and Methods 2.15, 2.16 和 Results 3.6