Chinese Journal of Clinical Pharmacology and Therapeutics ›› 2026, Vol. 31 ›› Issue (7): 957-964.doi: 10.12092/j.issn.1009-2501.2026.07.012
Previous Articles Next Articles
Bei TIAN(
), Mei GUO, Zhiwang WANG(
), Yue ZHANG, Ping QUAN, Yue ZHAO, Qiwei WANG, Xinyu ZHU, Jing SHAO
Received:2025-07-11
Revised:2025-09-23
Online:2026-07-26
Published:2026-08-04
Contact:
Zhiwang WANG
E-mail:3117564120@qq.com;wzw0933@126.com
CLC Number:
Bei TIAN, Mei GUO, Zhiwang WANG, Yue ZHANG, Ping QUAN, Yue ZHAO, Qiwei WANG, Xinyu ZHU, Jing SHAO. New research progress of tumor necrosis factor-α signaling pathway regulating alcoholic hepatitis[J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(7): 957-964.
| 信号网络 | 有效组分/ 小分子抑制剂 | 不同效应及组织病理变化 | 作用机制 | 参考文献 |
| NF-κB | PDTC (NF-κB拮抗剂) | 缓解氧化应激;降低肝细胞凋亡和肝组 织损伤 | 抑制IκBa磷酸化 | [ |
| 甘蔗糖蜜多酚提取物 | 阻断炎症级联反应 | 下调TNF-α、NF-κB的表达 | [ | |
| TLR4 | 穗花杉双黄酮 | 减轻肝脏炎症反应 | 抑制TLR4/NF-κB/TNF-α信号通路 | [ |
| TLR4/MD-2抗体 | 胶原纤维沉积减少;缓解肝纤维化;减少肝细胞凋亡 | 抑制LPS-TLR4/MD-2-TNF-α信号 通路 | [ | |
| 参苓白术散 | 减少肝细胞脂滴空泡数量;炎性细胞浸 润减少 | 下调TNF-α、TLR4表达 | [ | |
| NLRP3 | 清肝活血方 | 降低肝脏脂质累积;减轻炎性细胞浸润 | 下调TNF-α、NLRP3表达 | [ |
| 黄芪甲苷Ⅳ | 减轻肝脏炎症反应 | 下调TNF-α、NLRP3表达 | [ | |
| MAPK | 佛手精油 | 缓解肝脏组织结构紊乱;抑制炎性细胞 浸润 | 抑制TNF-α、MAPK表达 | [ |
| SB203580 (p38 MAPK抑制剂) | 减轻肝脏炎症 | 下调TNF-α、p38 MAPK表达 | [ | |
| STAT3 | AG490 (STAT3抑制剂) | 缓解肝脏炎症反应 | 抑制STAT3磷酸化 | [ |
| Hydroxytyrosol | 减轻炎性细胞浸润 | 抑制STAT3/iNOS/TNF-α信号通路 | [ | |
| mTOR | 岩藻多糖 | 改善肝脏脂质代谢紊乱及肝脏变形 | 下调TNF-α、p-mTORC1和p-p70S6K表达 | [ |
| TGF-β1 | 尖叶假龙胆 | 降低MDA含量,加速酒精代谢 | 抑制TNF-α和TGF-β1表达 | [ |
| IL-6 | 参麦注射液 | 改善肝功能;减轻炎症反应 | 下调TNF-α、IL-6的表达 | [ |
Table 1 Mechanism of effective components/small molecule inhibitors in regulating AH through TNF-α mediated signaling network
| 信号网络 | 有效组分/ 小分子抑制剂 | 不同效应及组织病理变化 | 作用机制 | 参考文献 |
| NF-κB | PDTC (NF-κB拮抗剂) | 缓解氧化应激;降低肝细胞凋亡和肝组 织损伤 | 抑制IκBa磷酸化 | [ |
| 甘蔗糖蜜多酚提取物 | 阻断炎症级联反应 | 下调TNF-α、NF-κB的表达 | [ | |
| TLR4 | 穗花杉双黄酮 | 减轻肝脏炎症反应 | 抑制TLR4/NF-κB/TNF-α信号通路 | [ |
| TLR4/MD-2抗体 | 胶原纤维沉积减少;缓解肝纤维化;减少肝细胞凋亡 | 抑制LPS-TLR4/MD-2-TNF-α信号 通路 | [ | |
| 参苓白术散 | 减少肝细胞脂滴空泡数量;炎性细胞浸 润减少 | 下调TNF-α、TLR4表达 | [ | |
| NLRP3 | 清肝活血方 | 降低肝脏脂质累积;减轻炎性细胞浸润 | 下调TNF-α、NLRP3表达 | [ |
| 黄芪甲苷Ⅳ | 减轻肝脏炎症反应 | 下调TNF-α、NLRP3表达 | [ | |
| MAPK | 佛手精油 | 缓解肝脏组织结构紊乱;抑制炎性细胞 浸润 | 抑制TNF-α、MAPK表达 | [ |
| SB203580 (p38 MAPK抑制剂) | 减轻肝脏炎症 | 下调TNF-α、p38 MAPK表达 | [ | |
| STAT3 | AG490 (STAT3抑制剂) | 缓解肝脏炎症反应 | 抑制STAT3磷酸化 | [ |
| Hydroxytyrosol | 减轻炎性细胞浸润 | 抑制STAT3/iNOS/TNF-α信号通路 | [ | |
| mTOR | 岩藻多糖 | 改善肝脏脂质代谢紊乱及肝脏变形 | 下调TNF-α、p-mTORC1和p-p70S6K表达 | [ |
| TGF-β1 | 尖叶假龙胆 | 降低MDA含量,加速酒精代谢 | 抑制TNF-α和TGF-β1表达 | [ |
| IL-6 | 参麦注射液 | 改善肝功能;减轻炎症反应 | 下调TNF-α、IL-6的表达 | [ |
| 1 | Enciu VT, Ologeanu PM, Constantinescu A, et al. Latest insights in alcohol-related liver disease and alcoholic hepatitis[J]. Rom J Intern Med, 2025, 63 (2): 97- 106. |
| 2 |
Wang W, Liu M, Fu X, et al. Hydroxysafflor yellow A ameliorates alcohol-induced liver injury through PI3K/Akt and STAT3/NF-κB signaling pathways[J]. Phytomedicine, 2024, 132, 155814- 155814.
doi: 10.1016/j.phymed.2024.155814 |
| 3 | 李丽, 刘艳, 陈静. 重症酒精性肝炎患者血清 TNF-α、IL-1β 表达与病情严重程度相关性分析[J]. 临床消化病杂志, 2022, 34 (4): 221- 225. |
| 4 |
Shen H, Liangpunsakul S, Iwakiri Y, et al. Immunological mechanisms and emerging therapeutic targets in alcohol-associated liver disease[J]. Cell Mol Immunol, 2025, 22 (10): 1190- 1204.
doi: 10.1038/s41423-025-01291-w |
| 5 |
Chuyun Y, Wanting H, Jinqi T, et al. Pathogenic mechanisms and regulatory factors involved in alcoholic liver disease[J]. J Transl Med, 2023, 21 (1): 300- 300.
doi: 10.1186/s12967-023-04166-8 |
| 6 |
Yuk MJ, Kim KJ, Kim SI, et al. TNF in human tuberculosis: A double-edged sword[J]. Immune Network, 2024, 24 (1): e4- e4.
doi: 10.4110/in.2024.24.e4 |
| 7 |
García-Domínguez M. The role of TNF-α in neuropathic pain: An immunotherapeutic perspective[J]. Life, 2025, 15 (5): 785.
doi: 10.3390/life15050785 |
| 8 | Scarlata MGG, Colaci C, Scarcella M, et al. The role of cytokines in the pathogenesis and treatment of alcoholic liver disease[J]. Diseases (Basel, Switzerland), 2024, 12 (4): 69. |
| 9 | 陈思韵, 冯钟文, 庞丽君, 等. 基于网络药理学探究积雪草酸抗酒精性肝炎的作用机制[J]. 中国药理学通报, 2021, 37 (8): 1145- 1151. |
| 10 |
Hu Y, Wang Y, Li X, et al. Clostridium butyricum JJ100 and Lacticaseibacillus rhamnosus LR alleviate liver injury in mice caused by continuous high-dose-alcohol exposure by protecting the intestinal barrier, rebuilding the gut microbiota and regulating AMPK and TLR4/NF-κB signaling pathways[J]. Food Function, 2025, 16 (16): 6687- 6702.
doi: 10.1039/D5FO00915D |
| 11 |
Xiong SY, Wu GS, Li C, et al. Clinical efficacy of probiotics in the treatment of alcoholic liver disease: a systematic review and meta-analysis[J]. Front Cell Infect Microbiol, 2024, 14, 1358063.
doi: 10.3389/fcimb.2024.1358063 |
| 12 | Mao H, Zhao X, Sun S. NF-κB in inflammation and cancer [J]. Cell Mol Immunol, 2025: 1-29. |
| 13 |
Qing G, Yizi J, Xinyu C, et al. NF-κB in biology and targeted therapy: new insights and translational implications[J]. Signal Trans Targeted Therapy, 2024, 9 (1): 53- 53.
doi: 10.1038/s41392-024-01757-9 |
| 14 |
Louvet A, Mathurin P. Pathophysiology of alcoholic hepatitis[J]. Nat Rev Gastroenterol Hepatol, 2021, 18 (11): 712- 728.
doi: 10.1186/s12967-023-04166-8 |
| 15 |
Sun L, Wen S, Li Q, et al. L-theanine relieves acute alcoholic liver injury by regulating the TNF-α/NF-κB signaling pathway in C57BL/6J mice[J]. J Fun Foods, 2021, 86, 104699.
doi: 10.1016/j.jff.2021.104699 |
| 16 |
Wang M, Zhao L, Wang Y, et al. Sugarcane molasses polyphenol extract attenuates alcohol-induced chronic liver damage via antioxidant, anti-inflammatory, and CYP2E1/Keap1/NF-κB pathway modulation[J]. Nutrients, 2025, 17 (9): 1589.
doi: 10.3390/nu17091589 |
| 17 |
Gerber-Tichet E, Blanchet FP, Majzoub K, et al. Toll-like receptor 4-a multifunctional virus recognition receptor[J]. Trends Microbiol, 2025, 33 (1): 34- 47.
doi: 10.1016/j.tim.2024.07.001 |
| 18 |
Zhang Y, Dou Z, Li S, et al. An ultrasonic degraded polysaccharide extracted from Pueraria lobata ameliorate ischemic brain injury in mice by regulating the gut microbiota and LPS-TLR4 pathway[J]. Ultrasonics Sonochemistry, 2025, 112, 107200.
doi: 10.1016/j.ultsonch.2024.107200 |
| 19 |
Ciesielska A, Matyjek M, Kwiatkowska K. TLR4 and CD14 trafficking and its influence on LPS-induced pro-inflammatory signaling[J]. Cell Mol Life Sci, 2021, 78, 1233- 1261.
doi: 10.1007/s00018-020-03656-y |
| 20 | 谢永华, 田力, 温扬敏. 穗花杉双黄酮对酒精肝损伤小鼠TLR4/NF-κB通路和肠道细菌的影响[J]. 热带医学杂志, 2025, 25 (5): 621- 626+643+729. |
| 21 |
Mou WL, Chen SR, Wu ZT, et al. LPS-TLR4/MD-2–TNF-α signaling mediates alcohol-induced liver fibrosis in rats[J]. J Toxicol Pathol, 2022, 35 (2): 193- 203.
doi: 10.1293/tox.2021-0018 |
| 22 | 蔡世揿, 周素芳, 周丽芳, 等. 参苓白术散调控TLR4/NLRP3通路对酒精性肝病治疗作用的机制研究[J]. 中国中药杂志, 2024, 49 (5): 1275- 1285. |
| 23 |
Cabral JE, Wu A, Zhou H, et al. Targeting the NLRP3 inflammasome for inflammatory disease therapy[J]. Trends Pharmacol Sci, 2025, 46 (6): 503- 519.
doi: 10.1016/j.tips.2025.04.007 |
| 24 |
Bai T, Guo HL, Wang F, et al. Gut microbiota and HMGB1/NLRP3/GSDMD inflammasome-dependent pyroptosis: mechanisms by physcion ameliorates alcoholic liver fibrosis[J]. Front Pharmacol, 2025, 16, 1532590.
doi: 10.3389/fphar.2025.1532590 |
| 25 |
Dong L, Zhang H, Kang Y, et al. NLRP3 and gut–liver axis: New possibility for the treatment of alcohol‐associated liver disease[J]. J Gastroenterol Hepatol, 2025, 40 (5): 1070- 1078.
doi: 10.1111/jgh.16935 |
| 26 | 吴琰, 圣炜, 王立顺, 等. 清肝活血方调控Caspase-4/Caspase-3/GSDME介导的细胞焦亡改善酒精性肝损伤[J]. 天津中医药, 2024, 41 (6): 773- 780. |
| 27 |
Wu S, Wen F, Zhong X, et al. Astragaloside IV ameliorate acute alcohol-induced liver injury in mice via modulating gut microbiota and regulating NLRP3/caspase-1 signaling pathway[J]. Ann Med, 2023, 55 (1): 2216942.
doi: 10.1080/07853890.2023.2216942 |
| 28 |
Wang X, Liu R, Liu D. The role of the MAPK signaling pathway in cardiovascular disease: pathophysiological mechanisms and clinical therapy[J]. Int J Mol Sci, 2025, 26 (6): 2667.
doi: 10.3390/ijms26062667 |
| 29 | He YX, Xiong JX, Liu JM, et al. Dahuang Zhechong pill alleviates liver fibrosis progression by regulating p38 MAPK/NF-κB/TGF-β1 pathway[J]. Chin J Int Med, 2024, 30 (12): 1- 8. |
| 30 |
Chen J, Ou G, Gu W, et al. Role in preventing alcoholic liver disease progression: A comparative study of whole-component finger citron essential oil and its major component d-limonene[J]. Nutrients, 2025, 17 (7): 1255.
doi: 10.3390/nu17071255 |
| 31 | Xiao Z, Zhicheng D, Hui F, et al. Scutellarin prevents acute alcohol-induced liver injury via inhibiting oxidative stress by regulating the Nrf2/HO-1 pathway and inhibiting inflammation by regulating the AKT, p38 MAPK/NF-κB pathways[J]. J Zhejiang University Sci B, 2023, 24 (7): 11- 15. |
| 32 | Samad MA, Ahmad I, Hasan A, et al. STAT3 signaling pathway in health and disease[J]. Med Comm, 2025, 6 (4): e70152. |
| 33 |
Zhang H, Yu S, Wang Y, et al. Targeting eukaryotic elongation factor 1A: How small-molecule inhibitors suppress tumor growth via diverse pathways[J]. Int J Mol Sci, 2025, 26 (15): 7331.
doi: 10.3390/ijms26157331 |
| 34 | Zhai L, Du C, Zhao Q, et al. The role of IRAK-M in pulmonary diseases: Mechanisms and therapeutic implications [J]. J Inn Immu, 2025, 1-22. |
| 35 |
Wan YM, Li Z, Zhou Q, et al. Mesenchymal stem cells alleviate liver injury induced by chronic-binge ethanol feeding in mice via release of TSG6 and suppression of STAT3 activation[J]. Stem Cell Res Ther, 2020, 11, 1- 13.
doi: 10.1186/s13287-019-1471-y |
| 36 |
Fang X, Cao J, Tao Z, et al. Hydroxytyrosol attenuates ethanol-induced liver injury by ameliorating steatosis, oxidative stress and hepatic inflammation by interfering STAT3/iNOS pathway[J]. Redox Report, 2023, 28 (1): 2187564.
doi: 10.1080/13510002.2023.2187564 |
| 37 |
Li RN, Zheng YN, Geng HJ, et al. Role and mechanisms of the mTOR signalling pathway in the synthesis of milk components[J]. Modern Agricul, 2025, 3 (1): e70009.
doi: 10.1002/moda.70009 |
| 38 |
Shi C, Hu S, Liu S, et al. Emerging role of exosomes during the pathogenesis of viral hepatitis, non-alcoholic steatohepatitis and alcoholic hepatitis[J]. Hum Cell, 2024, 38 (1): 26.
doi: 10.1007/s13577-024-01158-8 |
| 39 | 杨佳, 党凯, 薛美兰, 等. 岩藻多糖对酒精暴露小鼠肝损伤的保护作用及机制[J]. 食品科学, 2023, 44 (3): 137- 145. |
| 40 | Sarode G, Hsu MF, Haj FG, et al. Interleukin-6 trans signaling regulates neutrophilic inflammation in alcohol-associated hepatitis [J]. Am J Pathol, 2025, S0002-9440(25)00209-3. |
| 41 |
Efiong EE, Maedler K, Effa E, et al. Decoding diabetic kidney disease: a comprehensive review of interconnected pathways, molecular mediators, and therapeutic insights[J]. Diabetol Metab Syn, 2025, 17 (1): 192.
doi: 10.1186/s13098-025-01726-4 |
| 42 | 卜义凡, 朴圣爱, 李紫薇, 等. 尖叶假龙胆不同组分对酒精性肝损伤模型大鼠的保护作用研究[J]. 环球中医药, 2022, 15 (8): 1329- 1336. |
| 43 | 申苏建, 卢光荣, 吴利敏, 等. 参麦注射液对重症酒精性肝炎患者抗氧化作用及血清IL-6、IL-12、TNF-α水平的影响[J]. 中华中医药学刊, 2019, 37 (10): 2554- 2557. |
| 44 |
Jang D, Lee AH, Shin HY, et al. The role of tumor necrosis factor alpha (TNF-α) in autoimmune disease and current TNF-α inhibitors in therapeutics[J]. Int J Mol Sci, 2021, 22 (5): 2719.
doi: 10.3390/ijms22052719 |
| 45 |
Yang YM, Cho YE, Hwang S. Crosstalk between oxidative stress and inflammatory liver injury in the pathogenesis of alcoholic liver disease[J]. Int J Mol Sci, 2022, 23 (2): 774.
doi: 10.3390/ijms23020774 |
| 46 | 田晓娟, 郭元虎, 李慧妍. 英夫利昔单抗治疗重症酒精性肝炎的系统评价[J]. 中国医师进修杂志, 2014 (12): 3. |
| 47 | Adekunle AD, Adejumo A, Singal AK. Therapeutic targets in alcohol-associated liver disease: progress and challenges [J]. Thera Adv Gastroenterol, 2023, 16: 17562848231170946. |
| 48 |
Menon KVN, Stadheim L, Kamath PS, et al. A pilot study of the safety and tolerability of etanercept in patients with alcoholic hepatitis[J]. Off J Am Coll Gastroenterol, 2004, 99 (2): 255- 260.
doi: 10.1111/j.1572-0241.2004.04034.x |
| 49 |
Boetticher NC, Peine CJ, Kwo P, et al. A randomized, double-blinded, placebo-controlled multicenter trial of etanercept in the treatment of alcoholic hepatitis[J]. Gastroenterol, 2008, 135 (6): 1953- 1960.
doi: 10.1053/j.gastro.2008.08.057 |
| [1] | Xiao XU, Shuailin WANG, Xin QIAN, Yi YAO, Zhangyu WANG, Xiaoyi ZHU, Qing MAO, Qi GUO. Research progress on the treatment of diabetic cardiomyopathy with traditional Chinese medicine [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(6): 764-773. |
| [2] | Qun LI, Xinyue ZHANG, Shuo QI, Jin TAN. Research progress on the mechanism of TGF-β1/Smads signaling pathway in oral submucous fibrosis and regulation of traditional Chinese medicine [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(5): 666-674. |
| [3] | Ying ZHOU, Juntong LIU, Qingfeng WANG, Yufeng YANG, Yan SHI. Research progress on pharmacological mechanism of traditional Chinese medicine targeting type 2 diabetes related pathways [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(4): 500-508. |
| [4] | Liya SUN, Jiaxin LI, Guiyan SUN, Zhichao CHEN, Qingfeng WANG, Yufeng YANG, Yan SHI. Research progress of traditional Chinese medicine in the prevention and treatment of diabetic nephropathy based on intestinal flora and branched-chain amino acids [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(4): 527-535. |
| [5] | Yuanyuan HUANG, Lingzhun WANG. Research progress in the intervention of myocardial fibrosis by regulating signal pathways with traditional Chinese medicine [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(3): 372-381. |
| [6] | Zhiwei LIU, Shuqing CHEN, Youjun CHEN, Yiming LI, Fangrong YAN, Yang ZHAO, Hua SUN, Haitang XIE, Ling WANG. Current application of P-value: challenges and optimization strategies [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(2): 240-246. |
| [7] | Zhiwang WANG, Yue ZHANG, Ping QUAN, Yue ZHAO, Bei TIAN, Haijing DUAN, Ruiqiong WANG. Progress in the study of interleukin-17A-mediated signaling network regulating airway remodeling in asthma [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(1): 88-95. |
| [8] | JING Jiawen, MENG Qingbo, BI Zheng, WANG Fanjing, LI Yufan, FANG Zhaohui. Advances in animal models of diabetic erectile dysfunction based on therapeutic approaches [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2025, 30(9): 1224-1232. |
| [9] | ZHANG Yidan, SUN Xinghua, QU Yang, HU Xiaoyang, ZHANG Miao. Research progress on the regulation of PI3K/Akt signaling pathway by active ingredients of traditional Chinese medicine in the treatment of cerebral ischemia-reperfusion injury [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2025, 30(6): 820-827. |
| [10] | DING Ding, WU Shengnan, WANG Ancai, WANG Deguo. Research progress on the inhibition of cardiac remodeling by vericiguat [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2025, 30(6): 858-863. |
| [11] | LIU Yeyuan, QI Yafeng, ZHANG Maofu, LI Xinyu, SHEN Yanyun, LIU Yu, ZHANG Shangzu, LI Yangyang, ZHANG Liying, ZHANG Zhiming. Research progress of traditional Chinese medicine intervention in chemotherapy renal injury [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2025, 30(4): 556-569. |
| [12] | HUANG Shumin, XIE Baocheng, LIU Guohui. Research progress on the mechanism of GLP-1 receptor agonists in the treatment of diabetic nephropathy [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2025, 30(12): 1701-1710. |
| [13] | TIAN Jiexiang, QI Wenxia, WANG Gang, YAN Yanfeng, WANG Zhandong, WEI Yong, LIU Hailong, ZHANG Yuanyuan. Advances in the study of the pathological role of salivary gland epithelial cells in Sj?gren's syndrome [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2025, 30(11): 1550-1558. |
| [14] | LUO Jiawei, CHEN Tianwang, WANG Xinyu, LIU Juan, HUANG Bo, LI Lisheng, XU Shangfu. Research progress on the effect and mechanism of natural products of traditional Chinese medicine in preventing vascular restenosis [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2025, 30(10): 1408-1416. |
| [15] | LIU Xuan, FENG Cuijuan, WANG Yiqiang, LI Fang. Research progress of miRNA in ulcerative colitis [J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2024, 29(8): 917-929. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||