Journal of Traditional Chinese Medicine ›› 2026, Vol. 46 ›› Issue (3): 561-570.DOI: 10.19852/j.cnki.jtcm.2026.03.004
• Original Articles • Previous Articles Next Articles
XU Mengjun1, YAN Zixing1, CHEN Xi1, CAI Juanjuan1, ZHANG Haiou2(
), LIN Zhenwen1(
)
Received:2024-12-12
Accepted:2025-10-10
Online:2026-06-15
Published:2026-06-08
Contact:
Dr. ZHANG Haiou, Department of Spleen and Stomach, Fujian Provincial Second People's Hospital, Fuzhou 350003, China. 18950285266@163.com, Telephone: +86-18950285266;About author:First author contact:XU Mengjun and YAN Zixing are co-first authors and contributed equally to this work
XU Mengjun, YAN Zixing, CHEN Xi, CAI Juanjuan, ZHANG Haiou, LIN Zhenwen. Hepatoprotection of Jianpi Qingre Lishi prescription (健脾清热利湿法) on non-alcoholic steatohepatitis via miRNA-27/peroxisome proliferator-activated receptor gamma axis[J]. Journal of Traditional Chinese Medicine, 2026, 46(3): 561-570.
Figure 1 Effect of JQLP on pathological changes of liver tissues in MCD diet-induced NASH rats A: pathological changes of liver tissues (hematoxylin-eosin staining, × 200); B: adipogenesis in liver tissues (oil red O staining, × 200); A1, B1: BC group; A2, B2: model group; A3, B3: L-JQLP group; A4, B4: M-JQLP group; A5, B5: H-JQLP group; A6, B6: PC group. BC group: feeding using methionine- and choline-sufficient diet combined with the administration of normal saline; model group: feeding using methionine- and choline-deficient diet combined with the administration of normal saline; L-JQLP group: feeding using methionine- and choline-deficient diet combined with the administration of 6.489 g/kg of JQLP once daily for 8 weeks; M-JQLP group: feeding using methionine- and choline-deficient diet combined with the administration of 12.978 g/kg of JQLP once daily for 8 weeks; H-JQLP group: feeding using methionine- and choline-deficient diet combined with the administration of 19.467 g/kg of JQLP once daily for 8 weeks; PC group: feeding using methionine- and choline-deficient diet combined with the administration of 0.18 g/kg dosage of polyene phosphatidylcholine capsule once daily for 8 weeks. BC: blank control; L-JQLP: low-dose of Jianpi Qingre Lishi prescription; M-JQLP: medium-dose of Jianpi Qingre Lishi prescription; H-JQLP: high-dose of Jianpi Qingre Lishi prescription; PC: positive control.
| Group | n | TC (mmol/L) | TG (mmol/L) | LDL-C (mmol/L) | HDL-C (mmol/L) | ALT (U/L) | AST (U/L) |
|---|---|---|---|---|---|---|---|
| BC | 20 | 1.02±0.11 | 0.53±0.05 | 0.32±0.05 | 1.23±0.28 | 15.38±2.70 | 12.29±2.37 |
| Model | 20 | 3.07±0.54a | 1.68±0.23a | 1.61±0.18a | 0.38±0.11a | 45.58±6.01a | 43.78±10.03a |
| L-JQLP | 20 | 1.92±0.30b | 1.18±0.08b | 0.95±0.09b | 0.43±0.09b | 36.98±5.27b | 37.55±13.66b |
| M-JQLP | 20 | 1.64±0.25b | 0.96±0.09b | 0.78±0.08b | 0.49±0.13b | 31.08±4.50b | 37.86±16.31b |
| H-JQLP | 20 | 1.44±0.26b | 0.77±0.09b | 0.72±0.08b | 0.59±0.12b | 28.58±3.98b | 36.42±19.21b |
| PC | 20 | 1.37±0.24b | 0.73±0.05b | 0.63±0.05b | 0.79±0.26b | 23.34±4.70b | 19.34±5.86b |
Table 1 Blood lipid contents and hepatic function of rats in each group ($\bar{x}$ ± s)
| Group | n | TC (mmol/L) | TG (mmol/L) | LDL-C (mmol/L) | HDL-C (mmol/L) | ALT (U/L) | AST (U/L) |
|---|---|---|---|---|---|---|---|
| BC | 20 | 1.02±0.11 | 0.53±0.05 | 0.32±0.05 | 1.23±0.28 | 15.38±2.70 | 12.29±2.37 |
| Model | 20 | 3.07±0.54a | 1.68±0.23a | 1.61±0.18a | 0.38±0.11a | 45.58±6.01a | 43.78±10.03a |
| L-JQLP | 20 | 1.92±0.30b | 1.18±0.08b | 0.95±0.09b | 0.43±0.09b | 36.98±5.27b | 37.55±13.66b |
| M-JQLP | 20 | 1.64±0.25b | 0.96±0.09b | 0.78±0.08b | 0.49±0.13b | 31.08±4.50b | 37.86±16.31b |
| H-JQLP | 20 | 1.44±0.26b | 0.77±0.09b | 0.72±0.08b | 0.59±0.12b | 28.58±3.98b | 36.42±19.21b |
| PC | 20 | 1.37±0.24b | 0.73±0.05b | 0.63±0.05b | 0.79±0.26b | 23.34±4.70b | 19.34±5.86b |
| Group | n | TNF-α | IL-6 | IL-4 |
|---|---|---|---|---|
| BC | 20 | 78.5±9.1 | 6.6±1.3 | 15.3±2.4 |
| Model | 20 | 152.4±14.8a | 14.7±2.2a | 15.8±2.6 |
| L-JQLP | 20 | 135.7±16.3b | 9.1±1.6b | 18.0±2.6 |
| M-JQLP | 20 | 129.4±12.3b | 8.0±1.3b | 19.6±2.3 |
| H-JQLP | 20 | 116.3±13.7b | 7.4±1.4b | 23.6±2.8b |
| PC | 20 | 106.4±11.1b | 6.7±1.6b | 25.8±2.8b |
Table 2 Inflammatory mediators of rats in each group (pg/mL, $\bar{x}$ ± s)
| Group | n | TNF-α | IL-6 | IL-4 |
|---|---|---|---|---|
| BC | 20 | 78.5±9.1 | 6.6±1.3 | 15.3±2.4 |
| Model | 20 | 152.4±14.8a | 14.7±2.2a | 15.8±2.6 |
| L-JQLP | 20 | 135.7±16.3b | 9.1±1.6b | 18.0±2.6 |
| M-JQLP | 20 | 129.4±12.3b | 8.0±1.3b | 19.6±2.3 |
| H-JQLP | 20 | 116.3±13.7b | 7.4±1.4b | 23.6±2.8b |
| PC | 20 | 106.4±11.1b | 6.7±1.6b | 25.8±2.8b |
Figure 2 Expression level of PPARγ in liver tissues of rats in each group A: evaluation of PPARγ protein expression by Western blotting; B: quantification of the relative protein expression of PPARγ. BC group: feeding using methionine- and choline-sufficient diet combined with the administration of normal saline; Model group: feeding using methionine- and choline-deficient diet combined with the administration of normal saline; L-JQLP group: feeding using methionine- and choline-deficient diet combined with the administration of 6.489 g/kg of JQLP once daily for 8 weeks; M-JQLP group: feeding using methionine- and choline-deficient diet combined with the administration of 12.978 g/kg of JQLP once daily for 8 weeks; H-JQLP group: feeding using methionine- and choline-deficient diet combined with the administration of 19.467 g/kg of JQLP once daily for 8 weeks; PC group: feeding using methionine- and choline-deficient diet combined with the administration of 0.18 g/kg dosage of polyene phosphatidylcholine capsule once daily for 8 weeks. BC: blank control; L-JQLP: low-dose of Jianpi Qingre Lishi prescription; M-JQLP: medium-dose of Jianpi Qingre Lishi prescription; H-JQLP: high-dose of Jianpi Qingre Lishi prescription; PC: positive control; One-way analysis of variance was performed to determine inter-group differences, and Tukey's post-hoc comparison test to perform multiple comparisons between groups. aP < 0.05 vs the blank control group; bP < 0.05 vs the model group.
| 1. |
Nassir F. NAFLD: Mechanisms, treatments, and biomarkers. Biomolecules 2022; 12: 824.
DOI URL |
| 2. |
Pouwels S, Sakran N, Graham Y, et al. Non-alcoholic fatty liver disease (NAFLD): a review of pathophysiology, clinical management and effects of weight loss. BMC Endocr Disord 2022; 22: 63.
DOI PMID |
| 3. |
Fraile JM, Palliyil S, Barelle C, Porter AJ, Kovaleva M. Non-alcoholic steatohepatitis (NASH) - a review of a crowded clinical landscape, driven by a complex disease. Drug Des Devel Ther 2021; 15: 3997-4009.
DOI URL |
| 4. |
Younossi ZM, Golabi P. The global epidemiology of nonalcoholic fatty liver disease (NAFLD) and nonalcoholic steatohepatitis (NASH): a systematic review. Hepatology 2023; 77: 1335-47.
DOI PMID |
| 5. |
McCullough AJ. The clinical features, diagnosis and natural history of nonalcoholic fatty liver disease. Clin Liver Dis 2004; 8: 521-33, viii.
PMID |
| 6. |
Engin A. Nonalcoholic fatty liver disease and staging of hepatic fibrosis. Adv Exp Med Biol 2024; 1460: 539-74.
DOI PMID |
| 7. |
Duan Y, Pan X, Luo J, et al. Association of inflammatory cytokines with non-alcoholic fatty liver disease. Front Immunol 2022; 13: 880298.
DOI URL |
| 8. |
Wong VW, Chitturi S, Wong GL, et al. Pathogenesis and novel treatment options for non-alcoholic steatohepatitis. Lancet Gastroenterol Hepatol 2016; 1: 56-67.
DOI URL |
| 9. |
Qiu YY, Zhang J, Zeng FY, Zhu YZ. Roles of the peroxisome proliferator-activated receptors (PPARs) in the pathogenesis of nonalcoholic fatty liver disease (NAFLD). Pharmacol Res 2023; 192: 106786.
DOI URL |
| 10. |
Qiu Y, Gan M, Wang X, et al. The global perspective on peroxisome proliferator-activated receptor γ (PPARγ) in ectopic fat deposition: a review. Int J Biol Macromol 2023; 253: 127042.
DOI URL |
| 11. | AlNafea HM, Korish AA. Activation of the peroxisome proliferator-activated receptors (PPAR-α/γ) and the fatty acid metabolizing enzyme protein CPT1A by camel milk treatment counteracts the high-fat diet-induced nonalcoholic fatty liver disease. PPAR Res 2021; 2021: 5558731. |
| 12. |
Boliaki N, Henin G, Bale G, Lanthier N. Impact of peroxisome proliferator-activated receptor agonists on myosteatosis in the context of metabolic dysfunction-associated steatotic liver disease. Discov Med 2024; 36: 1139-53.
DOI |
| 13. |
Lakshman MR, Reyes-Gordillo K, Varatharajalu R, et al. Novel modulators of hepatosteatosis, inflammation and fibrogenesis. Hepatol Int 2014; 8 Suppl 2: 413-20.
DOI URL |
| 14. |
Hochreuter MY, Dall M, Treebak JT, Barrès R. MicroRNAs in non-alcoholic fatty liver disease: progress and perspectives. Mol Metab 2022; 65: 101581.
DOI URL |
| 15. |
Morishita A, Oura K. MicroRNAs and nonalcoholic steatohepatitis: a review. Int J Mol Sci 2023; 24: 14482.
DOI URL |
| 16. |
Zhang J, Powell CA, Kay MK, et al. Effect of chronic western diets on non-alcoholic fatty liver of male mice modifying the PPAR-γ pathway via miR-27b-5p regulation. Int J Mol Sci 2021; 22: 1822.
DOI URL |
| 17. |
Lin Q, Gao Z, Alarcon RM, Ye J, Yun Z. A role of miR-27 in the regulation of adipogenesis. FEBS J 2009; 276: 2348-58.
DOI PMID |
| 18. |
Wu H, Pula T, Tews D. microRNA-27a-3p but not -5p is a crucial mediator of human adipogenesis. Cells 2021; 10: 3205.
DOI URL |
| 19. |
Zhou Z, Zhang J, You L, et al. Application of herbs and active ingredients ameliorate non-alcoholic fatty liver disease under the guidance of Traditional Chinese Medicine. Front Endocrinol (Lausanne) 2022; 13: 1000727.
DOI URL |
| 20. |
Chen M, Xie Y, Gong S, et al. Traditional Chinese Medicine in the treatment of nonalcoholic steatohepatitis. Pharmacol Res 2021; 172: 105849.
DOI URL |
| 21. |
Hui D, Liu L, Azami NLB, et al. The spleen-strengthening and liver-draining herbal formula treatment of non-alcoholic fatty liver disease by regulation of intestinal flora in clinical trial. Front Endocrinol (Lausanne) 2022; 13: 1107071.
DOI URL |
| 22. |
Liang M, Huo M, Guo Y, et al. Aqueous extract of Artemisia capillaris improves non-alcoholic fatty liver and obesity in mice induced by high-fat diet. Front Pharmacol 2022; 13: 1084435.
DOI URL |
| 23. | Bai QY, Tao SM, Tian JH, Cao CR. Progress of research on effect and mechanism of Scutellariae Radix on preventing liver diseases. Zhong Guo Zhong Yao Za Zhi 2020; 45: 2808-16. |
| 24. | Wang SJ, Wei AL. Exploring the pathogenesis and therapy of liver cancer from "damp-heat insidious pathogen" to "cancer toxin". Zhong Guo Zhong Xi Yi Jie He Za Zhi 2013; 33: 266-9. |
| 25. | Xu Y, Wang Y, Gou XJ. Comparative efficacy of Chinese patent medicines for clearing heat and dampness in the treatment of NAFLD: a network Meta-analysis of real-world evidence. Evid Based Complement Alternat Med 2022; 2022: 4138555. |
| 26. |
Ru L, Wang XM, Niu JQ. The miR-23-27-24 cluster: an emerging target in NAFLD pathogenesis. Acta Pharmacol Sin 2022; 43: 1167-79.
DOI |
| 27. |
Chen H, Tan H, Wan J, et al. PPAR-γ signaling in nonalcoholic fatty liver disease: Pathogenesis and therapeutic targets. Pharmacol Ther 2023; 245: 108391.
DOI URL |
| 28. |
Alexander M, Loomis AK, van der Lei J, et al. Risks and clinical predictors of cirrhosis and hepatocellular carcinoma diagnoses in adults with diagnosed NAFLD: real-world study of 18 million patients in four European cohorts. BMC Med 2019; 17: 95.
DOI PMID |
| 29. |
Wei S, Wang L, Evans PC, Xu S. NAFLD and NASH: etiology, targets and emerging therapies. Drug Discov Today 2024; 29: 103910.
DOI URL |
| 30. |
Zhou H, Ma C, Wang C, et al. Research progress in use of Traditional Chinese Medicine monomer for treatment of non-alcoholic fatty liver disease. Eur J Pharmacol 2021; 898: 173976.
DOI URL |
| 31. |
Xi Z, Ningning X. Effects of long-term use of the heat-clearing, diuresis-promoting and collateral-mediating chinese drugs on changes of proteinuria in patients with chronic nephritis. J Tradit Chin Med 2006; 26: 213-7.
PMID |
| 32. |
Zhu X, Xu Q, Liu Z, et al. Qingre Lishi decoction ameliorates imiquimod-induced psoriasis-like skin lesions in SKH-1 mice by regulating the Treg-DC-Th17 axis and inhibiting MAPK-mediated DC maturation. J Ethnopharmacol 2024; 318: 116931.
DOI URL |
| 33. | Wang T, Liu X, Zhang W, et al. Traditional Chinese Medicine treats ulcerative colitis by regulating gut microbiota, signaling pathway and cytokine: future novel method option for pharmacotherapy. Heliyon 2024; 10: e27530. |
| 34. |
Palladini G, Di Pasqua LG. MCD diet rat model induces alterations in zinc and iron during NAFLD progression from steatosis to steatohepatitis. Int J Mol Sci 2022; 23: 6817.
DOI URL |
| 35. |
Santhekadur PK, Kumar DP, Sanyal AJ. Preclinical models of non-alcoholic fatty liver disease. J Hepatol 2018; 68: 230-7.
DOI PMID |
| 36. |
Nielsen MJ, Leeming DJ, Goodman Z, et al. Comparison of ADAPT, FIB-4 and APRI as non-invasive predictors of liver fibrosis and NASH within the CENTAUR screening population. J Hepatol 2021; 75: 1292-300.
DOI PMID |
| 37. |
Jimenez-Rivera C, Hadjiyannakis S, Davila J, et al. Prevalence and risk factors for non-alcoholic fatty liver in children and youth with obesity. BMC Pediatr 2017; 17: 113.
DOI PMID |
| 38. |
Yue SR, Tan YY, Zhang L, et al. Gynostemma pentaphyllum polysaccharides ameliorate non-alcoholic steatohepatitis in mice associated with gut microbiota and the TLR2/NLRP 3 pathway. Front Endocrinol (Lausanne) 2022; 13: 885039.
DOI URL |
| 39. |
Aghaei SM, Hosseini SM. Inflammation-related miRNAs in obesity, CVD, and NAFLD. Cytokine 2024; 182: 156724.
DOI URL |
| 40. |
Lu S, Wang Y, Liu J. Tumor necrosis factor-α signaling in nonalcoholic steatohepatitis and targeted therapies. J Genet Genomics 2022; 49: 269-78.
DOI URL |
| 41. |
Vachliotis ID, Polyzos SA. The role of tumor necrosis factor-alpha in the pathogenesis and treatment of nonalcoholic fatty liver disease. Curr Obes Rep 2023; 12: 191-206.
DOI PMID |
| 42. |
Li Z, Yang S, Lin H, et al. Probiotics and antibodies to TNF inhibit inflammatory activity and improve nonalcoholic fatty liver disease. Hepatology 2003; 37: 343-50.
DOI PMID |
| 43. |
Bocsan IC, Milaciu MV, Pop RM. Cytokines genotype-phenotype correlation in nonalcoholic steatohepatitis. Oxid Med Cell Longev 2017; 2017: 4297206.
DOI URL |
| 44. | Mas E, Danjoux M, Garcia V, et al. IL-6 deficiency attenuates murine diet-induced non-alcoholic steatohepatitis. PLoS One 2009; 4: e7929. |
| 45. |
Stiglund N, Hagström H, Stål P, Cornillet M, Björkström NK. Dysregulated peripheral proteome reveals NASH-specific signatures identifying patient subgroups with distinct liver biology. Front Immunol 2023; 14: 1186097.
DOI URL |
| 46. |
Chen YJ, Chueh LY, Lee SY, et al. Coordinated regulation of miR-27 by insulin/CREB/Hippo contributes to insulin resistance. Cell Signal 2021; 81: 109930.
DOI URL |
| 47. |
Chen WJ, Yin K, Zhao GJ, Fu YC, Tang CK. The magic and mystery of microRNA-27 in atherosclerosis. Atherosclerosis 2012; 222: 314-23.
DOI URL |
| 48. |
Deng K, Ren C, Fan Y, et al. miR-27a is an important adipogenesis regulator associated with differential lipid accumulation between intramuscular and subcutaneous adipose tissues of sheep. Domest Anim Endocrinol 2020; 71: 106393.
DOI URL |
| 49. |
Hsu CC, Lai CY, Lin CY, Yeh KY, Her GM. MicroRNA-27b depletion enhances endotrophic and intravascular lipid accumulation and induces adipocyte hyperplasia in zebrafish. Int J Mol Sci 2017; 19: 93.
DOI URL |
| 50. |
Kim SY, Kim AY, Lee HW, et al. miR-27a is a negative regulator of adipocyte differentiation via suppressing PPAR gamma expression. Biochem Biophys Res Commun 2010; 392: 323-8.
DOI URL |
| 51. |
Zhu Y, Zhang X, Ding X, et al. miR-27 inhibits adipocyte differentiation via suppressing CREB expression. Acta Biochim Biophys Sin (Shanghai) 2014; 46: 590-6.
DOI URL |
| 52. |
Kang T, Lu W, Xu W, et al. MicroRNA-27 (miR-27) targets prohibitin and impairs adipocyte differentiation and mitochondrial function in human adipose-derived stem cells. J Biol Chem 2013; 288: 34394-402.
DOI PMID |
| 53. |
Teimouri M, Hosseini H, Shabani M, et al. Inhibiting miR-27a and miR-142-5p attenuate nonalcoholic fatty liver disease by regulating Nrf2 signaling pathway. IUBMB Life 2020; 72: 361-72.
DOI PMID |
| 54. | Lee SM, Muratalla J, Sierra-Cruz M, Cordoba-Chacon J. Role of hepatic peroxisome proliferator-activated receptor γ in non-alcoholic fatty liver disease. J Endocrinol 2023; 257: e220155. |
| 55. |
Singh S, Kumar A, Gupta S, Agrawal R. Curative role of natural PPARγ agonist in non-alcoholic fatty liver disease (NAFLD). Tissue Barriers 2024; 12: 2289830.
DOI URL |
| 56. |
Tang J, Wang L, Shi M, et al. Study on the mechanism of Shuganzhi Tablet against nonalcoholic fatty liver disease and lipid regulation effects of its main substances in vitro. J Ethnopharmacol 2023; 316: 116780.
DOI URL |
| 57. |
Suolang PC, Liu BQ, Chen J, et al. Protective effect and mechanism of Qiwei Tiexie capsule on 3T3-L1 adipocytes cells and rats with nonalcoholic fatty liver disease by regulating LXRα, PPARγ, and NF-κB-iNOS-NO signaling pathways. J Ethnopharmacol 2019; 236: 316-25.
DOI URL |
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