Journal of Southern Medical University ›› 2024, Vol. 44 ›› Issue (12): 2335-2346.doi: 10.12122/j.issn.1673-4254.2024.12.09
Minzhu NIU1(), Lixia YIN2, Ting DUAN3, Ju HUANG4, Jing LI2, Zhijun GENG4, Jianguo HU2, Chuanwang SONG1(
)
Received:
2024-09-27
Online:
2024-12-20
Published:
2024-12-26
Contact:
Chuanwang SONG
E-mail:nmz8033@163.com;bbmcscw@foxmail.com
Supported by:
Minzhu NIU, Lixia YIN, Ting DUAN, Ju HUANG, Jing LI, Zhijun GENG, Jianguo HU, Chuanwang SONG. Asperosaponin VI alleviates TNBS-induced Crohn's disease-like colitis in mice by reducing intestinal epithelial cell apoptosis via inhibiting the PI3K/AKT/NF-κB signaling pathway[J]. Journal of Southern Medical University, 2024, 44(12): 2335-2346.
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URL: https://www.j-smu.com/EN/10.12122/j.issn.1673-4254.2024.12.09
Fig.1 Effect of AVI intervention on body weight and disease activity in mice with TNBS-induced CD-like colitis. A: Changes of body weight. B: Changes of DAI scores. WT: Wild type group; TNBS: TNBS-induced model group; AVI: AVI treatment group. *P<0.05 vs WT group. #P<0.05 vs TNBS group.
Fig.2 Effect of AVI on intestinal inflammation in the mouse models. A, B: Comparison of colon lengths among the groups. C: Histopathological score of the colon. D: HE staining of colon tissue in different groups. E: AB-PAS staining of colon tissue in different groups. *P<0.05 vs WT group. #P<0.05 vs TNBS group. Scale bar=50 μm.
Fig.3 Effect of AVI on intestinal inflammatory factors in the mouse models. A, B: ELISA results of TNF‑α and IL-1β in the intestinal mucosa of the mice. C, D: TNF-α and IL-1β mRNA expression in the intestinal mucosa of the mice detected by RT-qPCR. *P<0.05 vs WT group. #P<0.05 vs TNBS group.
Fig.5 Effect of AVI on intestinal barrier function in mice with TNBS-induced colitis. A: Immunofluorescence staining for detecting ZO-1, claudin-1 and MUC2 in the mouse colon (Scale bar=50 μm). B, C: Relative expression levels of ZO-1, Claudin-1 and MUC2 proteins in intestinal mucosa detected by Western blotting. *P<0.05 vs WT group. #P<0.05 vs TNBS group.
Fig.6 Effect of AVI on the barrier damage of Caco-2 cells induced by TNF-α. A: Immunofluorescence staining for detecting expressions of ZO-1 and claudin-1 in Caco-2 cells (Scale bar=50 μm). B, C: Relative expression levels of ZO-1 and claudin-1 proteins in Caco-2 cells detected by Western blotting. *P<0.05 vs Control group. #P<0.05 vs TNF-α group.
Fig.7 Effect of AVI on intestinal epithelial cell apoptosis in mice with TNBS-induced colitis. A: TUNEL staining of the colon tissue. B: Apoptosis rate of the intestinal epithelial cells (Scale bar=50 μm). C, D: Western blotting for detecting relative expression levels of Bcl-2, Bax and C-caspase3 in colonic mucosa. *P<0.05 vs WT group. #P<0.05 vs TNBS group.
Fig.8 Effect of AVI on apoptosis in TNF-α-induced Caco-2 cells. A: TUNEL staining of Caco-2 cells (Scale bar=50 μm). B: Apoptosis rate of Caco-2 cells. C, D: Relative expression levels of Bcl-2, Bax and C-caspase-3 in Caco-2 cells detected by Western blotting.*P<0.05 vs Control group. #P<0.05 vs TNF-α group.
Fig.9 Network pharmacology analysis results. A: Venn diagram of the intersection between CD genes and AVI genes. B, C: PPI network diagram. D: Results of KEGG pathway enrichment analysis for the intersection genes between AVI and CD.
Fig.10 Effect of AVI on the PI3K/AKT/NF-κB pathway in the mouse models and in Caco-2 cells. A, B: Relative expression levels of PI3K, p-PI3K, AKT, p-AKT, p65 and p-p65 proteins in mouse colon tissue detected by Western blotting (*P<0.05 vs WT group; #P<0.05 vs TNBS group). C, D: Relative expression levels of PI3K, p-PI3K, AKT, p-AKT, p65 and p-p65 proteins in Caco-2 cells detected by Western blotting (*P<0.05 vs Control group. #P<0.05 vs TNF-α group).
Fig.11 Effect of Recilisib and AKT1 siRNA on apoptosis of AVI-treated Caco-2 cells. A, B: Relative expression levels of PI3K, p-PI3K, AKT, p-AKT, p65 and p-p65 proteins detected by Western blotting. C: TUNEL staining of Caco-2 cells (Scale bar=50 μm). D: Apoptosis rate of Caco-2 cells. E, F: Relative expression levels of Bcl-2, Bax, and C-caspase3 proteins detected by Western blotting. *P<0.05 vs AVI group, #P<0.05 vs Recilisib group.
1 | Feuerstein JD, Cheifetz AS. Crohn disease: epidemiology, diagnosis, and management[J]. Mayo Clin Proc, 2017, 92(7): 1088-103. |
2 | Torres J, Mehandru S, Colombel JF, et al. Crohn's disease[J]. Lancet, 2017, 389(10080): 1741-55. |
3 | Keyashian K, Dehghan M, Sceats L, et al. Comparative incidence of inflammatory bowel disease in different age groups in the United States[J]. Inflamm Bowel Dis, 2019, 25(12): 1983-9. |
4 | Hutfless S, Jasper RA, Chen PH, et al. Burden of Crohn's disease in the United States Medicaid population, 2010-2019[J]. Clin Gastroenterol Hepatol, 2024, 22(5): 1087-97.e6. |
5 | Gomollón F, Dignass A, Annese V, et al. 3rd European evidence-based consensus on the diagnosis and management of Crohn's disease 2016: part 1: diagnosis and medical management[J]. J Crohns Colitis, 2017, 11(1): 3-25. |
6 | Lin K, Zheng WY, Guo MY, et al. The intestinal microbial metabolite acetyl l-carnitine improves gut inflammation and immune homeostasis via CADM2[J]. Biochim Biophys Acta Mol Basis Dis, 2024, 1870(4): 167089. |
7 | Vesci L, Tundo G, Soldi S, et al. A novel Lactobacillus brevis fermented with a vegetable substrate (AL0035) counteracts TNBS-induced colitis by modulating the gut microbiota composition and intestinal barrier[J]. Nutrients, 2024, 16(7): 937. |
8 | Kuo WT, Shen L, Zuo L, et al. Inflammation-induced occludin downregulation limits epithelial apoptosis by suppressing caspase-3 expression[J]. Gastroenterology, 2019, 157(5): 1323-37. |
9 | Petagna L, Antonelli A, Ganini C, et al. Pathophysiology of Crohn's disease inflammation and recurrence[J]. Biol Direct, 2020, 15(1): 23. |
10 | Zhang J, Cen L, Zhang XF, et al. MPST deficiency promotes intestinal epithelial cell apoptosis and aggravates inflammatory bowel disease via AKT[J]. Redox Biol, 2022, 56: 102469. |
11 | Torres J, Bonovas S, Doherty G, et al. ECCO guidelines on therapeutics in Crohn's disease: medical treatment[J]. J Crohns Colitis, 2020, 14(1): 4-22. |
12 | Yuan S, Wang Q, Li J, et al. Inflammatory bowel disease: an overview of Chinese herbal medicine formula-based treatment[J]. Chin Med, 2022, 17(1): 74. |
13 | Li CM, Tian JW, Li GS, et al. Asperosaponin VI protects cardiac myocytes from hypoxia-induced apoptosis via activation of the PI3K/Akt and CREB pathways[J]. Eur J Pharmacol, 2010, 649(1/2/3): 100-7. |
14 | Jiang X, Yi SN, Liu Q, et al. Asperosaponin VI ameliorates the CMS-induced depressive-like behaviors by inducing a neuroprotective microglial phenotype in hippocampus via PPAR‑γ pathway[J]. J Neuroinflammation, 2022, 19(1): 115. |
15 | Wei LL, Luo H, Jin Y, et al. Asperosaponin VI protects alcohol-induced hepatic steatosis and injury via regulating lipid metabolism and ER stress[J]. Phytomedicine, 2023, 121: 155080. |
16 | Xuan LL, Yang S, Ren LL, et al. Akebia saponin D attenuates allergic airway inflammation through AMPK activation[J]. J Nat Med, 2024, 78(2): 393-402. |
17 | Couto M, Andrade N, Magro F, et al. Taurocholate uptake by Caco-2 cells is inhibited by pro-inflammatory cytokines and butyrate[J]. Cytokine, 2023, 169: 156307. |
18 | Lu JJ, Shi XJ, Fu Q, et al. New mechanistic understanding of osteoclast differentiation and bone resorption mediated by P2X7 receptors and PI3K-Akt-GSK3β signaling[J]. Cell Mol Biol Lett, 2024, 29(1): 100. |
19 | Wang ZY, Chen JY, Babicheva A, et al. Endothelial upregulation of mechanosensitive channel Piezo1 in pulmonary hypertension[J]. Am J Physiol Cell Physiol, 2021, 321(6): C1010-C1027. |
20 | George B, Gui B, Raguraman R, et al. AKT1 transcriptomic landscape in breast cancer cells[J]. Cells, 2022, 11(15): 2290. |
21 | Dai YX, Lu QL, Li PY, et al. Xianglian Pill attenuates ulcerative colitis through TLR4/MyD88/NF‑κB signaling pathway[J]. J Ethnopharmacol, 2023, 300: 115690. |
22 | Li CL, Liu MG, Deng L, et al. Oxyberberine ameliorates TNBS-induced colitis in rats through suppressing inflammation and oxidative stress via Keap1/Nrf2/NF‑κB signaling pathways[J]. Phytomedicine, 2023, 116: 154899. |
23 | Dolinger M, Torres J, Vermeire S. Crohn's disease[J]. Lancet, 2024, 403(10432): 1177-91. |
24 | Zhang ZN, Zuo LG, Song X, et al. Arjunolic acid protects the intestinal epithelial barrier, ameliorating Crohn's disease-like colitis by restoring gut microbiota composition and inactivating TLR4 signalling[J]. Phytomedicine, 2024, 123: 155223. |
25 | 苏 超, 包 阔, 李佳威, 等. 人参皂苷衍生物AD-1通过抑制NLRP3炎症小体活化改善TNBS诱导的小鼠急性IBD[J]. 中国免疫学杂志, 2023, 39(11): 2305-10, 2317. |
26 | Yang XR, Liang J, Shu Y, et al. Asperosaponin VI facilitates the regeneration of skeletal muscle injury by suppressing GSK-3β-mediated cell apoptosis[J]. J Cell Biochem, 2024, 125(1): 115-26. |
27 | Jang DI, 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. |
28 | Lenti MV, Santacroce G, Broglio G, et al. Recent advances in intestinal fibrosis[J]. Mol Aspects Med, 2024, 96: 101251. |
29 | Kim JT, Napier DL, Kim J, et al. Ketogenesis alleviates TNF‑α-induced apoptosis and inflammatory responses in intestinal cells[J]. Free Radic Biol Med, 2021, 172: 90-100. |
30 | Liu LQ, Yan MJ, Yang R, et al. Adiponectin attenuates lipopolysaccharide-induced apoptosis by regulating the Cx43/PI3K/AKT pathway[J]. Front Pharmacol, 2021, 12: 644225. |
31 | Lin CY, Tsai PH, Kandaswami CC, et al. Role of tissue transglutaminase 2 in the acquisition of a mesenchymal-like phenotype in highly invasive A431 tumor cells[J]. Mol Cancer, 2011, 10: 87. |
32 | Chalabi-Dchar M, Cassant-Sourdy S, Duluc C, et al. Loss of somatostatin receptor subtype 2 promotes growth of KRAS-induced pancreatic tumors in mice by activating PI3K signaling and overexpression of CXCL16[J]. Gastroenterology, 2015, 148(7): 1452-65. |
33 | Guo Q, Jin YZ, Chen XY, et al. NF‑κB in biology and targeted therapy: new insights and translational implications[J]. Signal Transduct Target Ther, 2024, 9(1): 53. |
34 | 刘兴隆, 张培旭, 熊珮宇, 等. 基于PI3K/Akt/NF-κB通路探讨人参败毒散、榆瑞灌肠液内外合治干预溃疡性结肠炎大鼠肠黏膜损伤的作用机制[J]. 中国实验方剂学杂志, 2023, 29(19): 42-51. |
35 | 李 多, 彭 昭, 张泽天, 等. 复方黄柏液通过PI3K/Akt/NF-κB信号通路逆转大鼠溃疡性结肠炎[J]. 中国老年学杂志, 2023, 43(9): 2241-4. |
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