南方医科大学学报 ›› 2026, Vol. 46 ›› Issue (9): 2242-2257.doi: 10.12122/j.issn.1673-4254.2026.09.22
• • 上一篇
刘馨悦1,4(
), 张可妮2, 乔通3, 尹林2, 张龙涛3, 程歆柯1,4, 王奔1,4, 曹锦麟1,4, 耿志军1,4, 赵皓1(
)
收稿日期:2025-12-20
出版日期:2026-09-20
发布日期:2026-09-30
通讯作者:
赵皓
E-mail:lxy13865038871@163.com;13955221252@163.com
作者简介:刘馨悦,在读本科生,E-mail: lxy13865038871@163.com
基金资助:
Xinyue LIU1,4(
), Keni ZHANG2, Tong QIAO3, Lin YIN2, Longtao ZHANG3, Xinke CHENG1,4, Ben WANG1,4, Jinlin CAO1,4, Zhijun GENG1,4, Hao ZHAO1(
)
Received:2025-12-20
Online:2026-09-20
Published:2026-09-30
Contact:
Hao ZHAO
E-mail:lxy13865038871@163.com;13955221252@163.com
摘要:
目的 明确安五脂素(ANW)对胃癌细胞恶性生物学行为的调控作用,并探讨其潜在分子机制。 方法 采用CCK-8法、EdU染色及克隆形成实验评估ANW对人胃癌细胞系HGC-27和SGC-7901活力与增殖能力的影响;构建裸鼠移植瘤模型,结合Ki-67免疫组化染色验证ANW对胃癌细胞体内增殖的作用。通过流式细胞术检测细胞周期分布,Western blotting检测周期相关蛋白(Cyclin D1、CDK2、P53)表达;采用Annexin V-FITC/PI双染流式细胞术检测细胞凋亡率,TUNEL法标记凋亡细胞,Western blotting检测凋亡相关蛋白(Cleaved Caspase-3、Bcl-2、Bax)表达。利用Transwell检测细胞迁移与侵袭能力,Western blotting检测基质金属蛋白酶(MMP-2、MMP-9)表达。通过qPCR和Western blotting检测上皮-间质转化(EMT)标志分子(Vimentin、E-cadherin、Snail、Slug)的mRNA及蛋白表达水平;Western blotting分析JAK1/STAT3信号通路关键蛋白(p-JAK1、JAK1、p-STAT3、STAT3)的磷酸化水平,联合RO8191通路激活及JAK1 siRNA敲低实验,验证JAK1/STAT3通路是ANW抗肿瘤作用的关键介导通路。 结果 ANW以浓度依赖方式显著抑制HGC-27和SGC-7901增殖及克隆形成能力(P<0.05),并诱导细胞周期阻滞于G1期,伴随Cyclin D1、CDK2蛋白表达下调及P53蛋白表达降低(P<0.05)。体内实验进一步证实,ANW可抑制裸鼠移植瘤生长,降低瘤体组织中Ki-67阳性表达率(P<0.05)。ANW可显著促进胃癌细胞凋亡,表现为凋亡率升高,抗凋亡蛋白Bcl-2表达下调,促凋亡蛋白Cleaved Caspase-3及Bax表达上调(P<0.05)。此外,ANW能显著抑制胃癌细胞迁移与侵袭能力,同时下调MMP-2、MMP-9蛋白表达(P<0.05);并可抑制EMT进程,具体表现为间质标志物Vimentin及转录因子Snail、Slug表达降低,上皮标志物E-cadherin表达升高(P<0.05)。分子机制层面,ANW可显著抑制JAK1及STAT3的磷酸化水平(P<0.05);JAK1/STAT激活剂RO8191可逆转ANW对胃癌细胞恶性行为的抑制作用,siRNA沉默JAK1既可模拟ANW的抗肿瘤效应,又能与之协同;ANW在裸鼠移植瘤中抑制EMT,而RO8191则削弱其体内抑瘤作用。 结论 安五脂素可通过抑制JAK1/STAT3信号通路的活化,进而阻滞细胞周期进程、促进细胞凋亡、抑制EMT及MMPs介导的侵袭迁移能力,最终发挥抗胃癌作用。本研究为ANW作为胃癌潜在治疗药物的开发提供了实验依据。
刘馨悦, 张可妮, 乔通, 尹林, 张龙涛, 程歆柯, 王奔, 曹锦麟, 耿志军, 赵皓. 安五脂素通过拮抗JAK1/STAT3通路的激活抑制胃癌细胞恶性生物学行为[J]. 南方医科大学学报, 2026, 46(9): 2242-2257.
Xinyue LIU, Keni ZHANG, Tong QIAO, Lin YIN, Longtao ZHANG, Xinke CHENG, Ben WANG, Jinlin CAO, Zhijun GENG, Hao ZHAO. Anwulignan inhibits malignant phenotypes of gastric cancer cells by antagonizing activation of the JAK1/STAT3 signaling pathway[J]. Journal of Southern Medical University, 2026, 46(9): 2242-2257.
| Gene | Forward (5'-3') | Reverse (5'-3') |
|---|---|---|
| Vimentin | TCTATACCACTTCACAAGTCGGA | GAATTGCCATTGCACAACTCTTT |
| CDH1 | GATAGAGAACGCATTGCCACATA | ACCTTCCATGACAGACCCCTTAA |
| GAPDH | TGAAGGTCGGAGTCAACGGAT | CTGGAAGATGGTGATGGGATT |
表1 RT-qPCR的引物序列
Tab.1 Primer sequences for RT-qPCR
| Gene | Forward (5'-3') | Reverse (5'-3') |
|---|---|---|
| Vimentin | TCTATACCACTTCACAAGTCGGA | GAATTGCCATTGCACAACTCTTT |
| CDH1 | GATAGAGAACGCATTGCCACATA | ACCTTCCATGACAGACCCCTTAA |
| GAPDH | TGAAGGTCGGAGTCAACGGAT | CTGGAAGATGGTGATGGGATT |
图1 ANW对胃癌细胞增殖的影响
Fig.1 Effect of ANW on proliferation of gastric cancer cells in vitro. A, B: Cell viability detected by CCK-8 assay. C-E, H: Colony formation assay. F, G, I, J: EdU assay for evaluating cell proliferation. *P<0.05 vs Control (0 μmol/L). ANW: Anwulignan; Con: Control; EdU: 5-ethynyl-2'-deoxyuridine.
图2 ANW对裸鼠移植瘤生长的抑制作用
Fig.2 Inhibitory effect of ANW on xenograft tumor growth in nude mice. A-C: Tumor volume and weight. D: Representative images and quantitative analysis of Ki-67 staining. *P<0.05 vs Control (0 μmol/L).
图3 ANW对胃癌细胞周期的影响
Fig.3 Effect of ANW on cell cycle in gastric cancer cells'. A-D: Flow cytometric analysis of cell cycle distribution. E-H: Western blotting analysis of cyclin D1, CDK2, and P53 protein expression in gastric cancer cell lines HGC 27 and SGC 7901. I, J: Western blotting analysis of cyclin D1, CDK2, and P53 protein expression in mouse xenografts. *P<0.05 vs Control (0 μmol/L). Cyclin-D1: G1/S-specific cyclin-D1; CDK2: Cyclin-dependent kinase 2; P53: Tumor protein p53; β-actin: Beta actin.
图4 流式细胞术分析ANW对胃癌细胞凋亡的影响
Fig.4 Flow cytometric analysis of the effects of ANW on apoptosis in gastric cancer cells. A-D: Cell aspoptosis rates detected by flow cytometry. *P<0.05 vs Control (0 μmol/L).
图5 Western blotting和Tunel分析ANW对胃癌细胞凋亡的影响
Fig.5 Western blotting and TUNEL analysis of the effects of ANW on apoptosis in gastric cancer cells. A-D: Western blotting analysis of apoptosis-related proteins gastric cancer cells in vitro. E, F: Western blotting analysis of apoptosis-related proteins in mouse xenografts. G, H: TUNEL staining of xenograft tissues. *P<0.05 vs Control (0 μmol/L).
图6 Transwell和划痕实验分析ANW对胃癌细胞迁移和侵袭的影响
Fig.6 Transwell and wound healing assays of migration and invasion in ANW-treated gastric cancer cells. A-C, E: Transwell migration and invasion assay. D, F, G, H: Wound healing assay. *P<0.05 vs Control (0 μmol/L).
图7 Western blotting分析ANW对胃癌细胞迁移和侵袭的影响
Fig.7 Western blotting for evaluating the effects of ANW on migration and invasion in gastric cancer cells. A, B: Western blotting and quantification of MMP2 and MMP9 expressions in gastric cancer cells in vitro. C: Western blotting and quantification of MMP2 and MMP9 expressions in mouse xenografts. *P<0.05 vs Control (0 μmol/L). MMP2: Matrix Metalloproteinase 2; MMP9: Matrix Metalloproteinase 9.
图8 Transwell分析RO8191对ANW抑制胃癌细胞恶性表型及EMT的影响
Fig.8 Transwell analysis of the effects of RO8191 on the inhibitory action of ANW on malignant phenotype and EMT in gastric cancer cells. A-C: Transwell migration and invasion assay. *P<0.05 vs Control; #P<0.05 vs ANW.
图9 Western blotting分析RO8191对ANW抑制胃癌细胞恶性表型及EMT的影响
Fig.9 Western blotting analysis of the effects of RO8191 on the inhibitory action of ANW on malignant phenotype and EMT in gastric cancer cells. A-H: The expression of proteins related to migration, invasion, apoptosis, and EMT. *P<0.05 vs Control; #P<0.05 vs ANW.
图10 ANW对胃癌细胞上皮间质转化的影响
Fig.10 Effect of ANW on epithelial-mesenchymal transition in gastric cancer cells. A-C: Western blotting of EMT-related proteins in vitro and in vivo. D: RT-qPCR analysis of EMT-related gene expression. *P<0.05 vs Control (0 μmol/L). Snail+slug: Snail family zinc finger transcription factors; E-cad: Epithelial cadherin; VIM: Vimentin; CDH1: Cadherin 1.
图11 ANW对JAK1/STAT3信号通路的影响
Fig.11 Effect of ANW on the JAK1/STAT3 signaling pathway. A, B: Western blotting of p-JAK1, JAK1, p-STAT3, and STAT3 in vitro. C: Western blotting analysis of pathway proteins in vivo. *P<0.05vs Control (0 μmol/L). p-STAT3: Phosphorylated signal transducer and activator of transcription 3; STAT3: Signal transducer and activator of transcription 3; p-JAK1: Phosphorylated Janus kinase 1; JAK1: Janus kinase 1.
图12 Transwell分析沉默JAK1/STAT3通路对ANW抑制胃癌细胞恶性表型及EMT的影响
Fig.12 Transwell analysis of the effects of JAK1/STAT3 pathway silencing on the inhibitory action of ANW on malignant phenotype and EMT in gastric cancer cells. A-C: Transwell migration and invasion assay. *P<0.05 vs Control; #P<0.05 vs ANW.
图13 WB分析沉默JAK1/STAT3通路对ANW抑制胃癌细胞恶性表型及EMT的影响
Fig.13 Western blotting of the effects of JAK1/STAT3 pathway silencing on the inhibitory action of ANW on malignant phenotype and EMT in gastric cancer cells. A-H: Expression of proteins related to migration, invasion, apoptosis, and EMT. *P<0.05 vs Control; #P<0.05 vs ANW.
图14 裸鼠体内通路机制验证
Fig.14 Validation of pathway mechanism in nude mice. A-C: Tumor volume and weight. D: Expression of proteins related to EMT. *P<0.05 vs Control; #P<0.05 vs ANW.
| [1] | Liu JH, Yuan QH, Guo H, et al. Deciphering drug resistance in gastric cancer: Potential mechanisms and future perspectives[J]. Biomed Pharmacother, 2024, 173: 116310. doi:10.1016/j.biopha.2024.116310 |
| [2] | Yang WJ, Zhao HP, Yu Y, et al. Updates on global epidemiology, risk and prognostic factors of gastric cancer[J]. World J Gastroenterol, 2023, 29(16): 2452-68. doi:10.3748/wjg.v29.i16.2452 |
| [3] | Marin JJG, Al-Abdulla R, Lozano E, et al. Mechanisms of resistance to chemotherapy in gastric cancer[J]. Anti Cancer Agents Med Chem, 2016, 16(3): 318-34. doi:10.2174/1871520615666150803125121 |
| [4] | Niu HK, Wang DX, Wen TT, et al. Anwuligan inhibits the progression of non-small cell lung cancer via let-7c-3p/PI3K/AKT/mTOR axis[J]. Cancer Med, 2023, 12(5): 5908-25. doi:10.1002/cam4.5382 |
| [5] | Zhou Y, Men LH, Sun YX, et al. Pharmacodynamic effects and molecular mechanisms of lignans from Schisandra chinensis Turcz. (Baill.), a current review[J]. Eur J Pharmacol, 2021, 892: 173796. doi:10.1016/j.ejphar.2020.173796 |
| [6] | Li ZM, Zhao LJ, Xia YS, et al. Schisandrin B attenuates hepatic stellate cell activation and promotes apoptosis to protect against liver fibrosis[J]. Molecules, 2021, 26(22): 6882. doi:10.3390/molecules26226882 |
| [7] | Peng Z. Role of epithelial-mesenchymal transition in gastric cancer initiation and progression[J]. World J Gastroenterol, 2014, 20(18): 5403. doi:10.3748/wjg.v20.i18.5403 |
| [8] | Wu XY, Tao P, Zhou Q, et al. IL-6 secreted by cancer-associated fibroblasts promotes epithelial-mesenchymal transition and metastasis of gastric cancer via JAK2/STAT3 signaling pathway[J]. Oncotarget, 2017, 8(13): 20741-50. doi:10.18632/oncotarget.15119 |
| [9] | Wang S, Sun ZM, Wang C, et al. The JAK1/STAT3 pathway mediates the effects of SERPINH1 on glioma EMT[J]. Int Immunopharmacol, 2025, 157: 114731. doi:10.1016/j.intimp.2025.114731 |
| [10] | Fu L, Wei LW, Zhao MD, et al. Investigation of JAKs/STAT-3 in lipopolysaccharide-induced intestinal epithelial cells[J]. Clin Exp Immunol, 2016, 186(1): 75-85. doi:10.1111/cei.12835 |
| [11] | Chen ZD, Zhang PF, Xi HQ, et al. Recent advances in the diagnosis, staging, treatment, and prognosis of advanced gastric cancer: a literature review[J]. Front Med, 2021, 8: 744839. doi:10.3389/fmed.2021.744839 |
| [12] | 郭元吉, 周建霞, 林 燕. 晚期胃癌化疗及免疫治疗药物的研究进展[J]. 新疆中医药, 2025, 43(2): 174-7. |
| [13] | 乔永志,刘江. 中草药对胃癌防御与治疗的研究概述[C]// 中国药学会医院药学专业委员会. 第七届中国药学会医院肿瘤药学大会论文集, 2018: 262-3. |
| [14] | Song Y, Zhao H, Yu RZ, et al. Wogonin suppresses proliferation, invasion and migration in gastric cancer cells via targeting the JAK-STAT3 pathway[J]. Sci Rep, 2024, 14: 30803. doi:10.1038/s41598-024-81196-2 |
| [15] | Cui MH, Yao GY, Zhang YY, et al. The molecular mechanisms of C Aulophyllum robustum Maxim extract inhibition by regulating FAK/PI3K signaling pathway in gastric cancer HGC-27 cells[J]. J Ethnopharmacol, 2025, 337: 118867. doi:10.1016/j.jep.2024.118867 |
| [16] | Yang ZZ, Liu HT, Song YS, et al. Luteolin enhances drug chemosensitivity by downregulating the FAK/PI3K/AKT pathway in paclitaxel-resistant esophageal squamous cell carcinoma[J]. Int J Mol Med, 2024, 54(3). DOI:10.3892/ijmm.2024.5401 . |
| [17] | Pisano M, Pagnan G, Loi M, et al. Antiproliferative and pro-apoptotic activity of eugenol-related biphenyls on malignant melanoma cells[J]. Mol Cancer, 2007, 6(1): 8. doi:10.1186/1476-4598-6-8 |
| [18] | Li GZ, Doherty GM, Wang JP. Surgical management of gastric cancer: a review[J]. JAMA Surg, 2022, 157(5): 446. doi:10.1001/jamasurg.2022.0182 |
| [19] | Yi FY, Chen NZ, Zhao MY, et al. Dehydrodiisoeugenol targets NOD2 exerting dual effects against colitis and colorectal cancer: a double-edged sword[J]. Mol Med, 2025, 31(1): 221. doi:10.1186/s10020-025-01193-7 |
| [20] | Sokolova O, Naumann M. Matrix metalloproteinases in Helicobacter pylori–associated gastritis and gastric cancer[J]. Int J Mol Sci, 2022, 23(3): 1883. doi:10.3390/ijms23031883 |
| [21] | Kee JY, Han YH, Mun JG, et al. Gomisin a suppresses colorectal lung metastasis by inducing AMPK/p38-mediated apoptosis and decreasing metastatic abilities of colorectal cancer cells[J]. Front Pharmacol, 2018, 9: 986. doi:10.3389/fphar.2018.00986 |
| [22] | Kölbl A, Jeschke U, Andergassen U. The significance of epithelial-to-mesenchymal transition for circulating tumor cells[J]. Int J Mol Sci, 2016, 17(8): 1308. doi:10.3390/ijms17081308 |
| [23] | Siegel R, Naishadham D, Jemal A. Cancer statistics, 2013[J]. CA A Cancer J Clin, 2013, 63(1): 11-30. doi:10.3322/caac.21166 |
| [24] | Kozak J, Forma A, Czeczelewski M, et al. Inhibition or reversal of the epithelial-mesenchymal transition in gastric cancer: pharmacological approaches[J]. Int J Mol Sci, 2021, 22(1): 277. doi:10.3390/ijms22010277 |
| [25] | Zhang J, Wang P, Ouyang HQ, et al. Targeting cancer-related inflammation: Chinese herbal medicine inhibits epithelial-to-mesenchymal transition in pancreatic cancer[J]. PLoS One, 2013, 8(7): e70334. doi:10.1371/journal.pone.0070334 |
| [26] | Shan FY, Sun LT, Zhang LY, et al. Inhibition to epithelial-mesenchymal transition and metastatic potential in colorectal cancer cell by combination of traditional Chinese medicine formulation Jiedu sangen decoction and PD-L1 inhibitor[J]. Integr Cancer Ther, 2020, 19: 1534735420972486. doi:10.1177/1534735420972486 |
| [27] | Cheng H, Shao YJ, Zhang A, et al. Interleukin-7 enhances recruitment of MDSCs by regulating MCP-1 via JAK1/STAT3 signaling pathway in non-small cell lung cancer[J]. Sci Rep, 2025, 15: 16869. doi:10.1038/s41598-025-01868-5 |
| [28] | Tan X, Ma XF, Dai YF, et al. A large-scale transcriptional analysis reveals herb-derived ginsenoside F2 suppressing hepatocellular carcinoma via inhibiting STAT3[J]. Phytomedicine, 2023, 120: 155031. doi:10.1016/j.phymed.2023.155031 |
| [29] | Jin W. Role of JAK/STAT3 signaling in the regulation of metastasis, the transition of cancer stem cells, and chemoresistance of cancer by epithelial–mesenchymal transition[J]. Cells, 2020, 9(1): 217. doi:10.3390/cells9010217 |
| [30] | Xie XM, Wang XY, Shi XD, et al. Anwulignan is a novel JAK1 inhibitor that suppresses non-small cell lung cancer growth[J]. J Cell Mol Med, 2021, 25(5): 2645-54. doi:10.1111/jcmm.16289 |
| [31] | Wang CY, Qin F, Wang CG, et al. Novel lignans from Zanthoxylum nitidum and antiproliferation activity of sesaminone in osimertinib-resistant non-small cell lung cancer cells[J]. Bioorg Chem, 2023, 134: 106445. doi:10.1016/j.bioorg.2023.106445 |
| [32] | Wu LR, Qian CC, Zhang WQ, et al. Ginkgetin suppresses ovarian cancer growth through inhibition of JAK2/STAT3 and MAPKs signaling pathways[J]. Phytomedicine, 2023, 116: 154846. doi:10.1016/j.phymed.2023.154846 |
| [33] | Ahmed EA. The potential therapeutic role of beta-caryophyllene as a chemosensitizer and an inhibitor of angiogenesis in cancer[J]. Molecules, 2025, 30(8): 1751. doi:10.3390/molecules30081751 |
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