中国临床药理学与治疗学 ›› 2026, Vol. 31 ›› Issue (8): 1034-1052.doi: 10.12092/j.issn.1009-2501.2026.08.004
• 基础研究 • 上一篇
周如凤1,2(
), 张颖1,2, 孟子元2, 刘杰2, 石孟琼1,*(
), 廖勇3, 许杰4, 李浩然4, 谈燕清4, 覃慧林4, 贾亮亮5, 游艳3,*(
)
收稿日期:2025-09-23
修回日期:2025-11-09
出版日期:2026-08-26
发布日期:2026-09-09
通讯作者:
石孟琼,游艳
E-mail:2826720856@qq.com;shmq0212@126.com;497091164@qq.com
作者简介:周如凤,女,硕士研究生,主要从事中药防治消化系统疾病、皮肤疾病基础研究。E-mail:基金资助:
Rufeng ZHOU1,2(
), Ying ZHANG1,2, Ziyuan MENG2, Jie LIU2, Mengqiong SHI1,*(
), Yong LIAO3, Jie XU4, Haoran LI4, Yanqing TAN4, Huilin QIN4, Liangliang JIA5, Yan YOU3,*(
)
Received:2025-09-23
Revised:2025-11-09
Online:2026-08-26
Published:2026-09-09
Contact:
Mengqiong SHI,Yan YOU
E-mail:2826720856@qq.com;shmq0212@126.com;497091164@qq.com
摘要:
目的: 研究委陵菜酸(TA)对乙醇诱导GES-1细胞损伤的保护作用及其机制。方法: 建立乙醇诱导GES-1细胞损伤模型,实验设置对照组、模型组、TA(12.5 μg/mL)组、Nrf2抑制剂(ML385,10 μmol/L)组和NLRP3抑制剂(MCC950,8 μmol/L)组。药物干预组细胞加入相应药物培养22 h后,除对照组外,加入7%乙醇处理后继续培养细胞2 h,然后收集上清液和细胞。采用MTT检测细胞活力;采用细胞划痕和Transwell检测细胞迁移;AnnexinV-FITC/PI双染检测细胞凋亡,免疫荧光检测细胞MMP和细胞中ROS水平;比色法和ELISA检测细胞上清液中LDH、IL-4、IL-1β、IL-6、IL-10、IL-18、NO、TNF-α含量;比色法检测细胞中CAT、GSH、MDA、MPO、SOD、T-AOC及胞浆和线粒体中cytochrome C含量;采用免疫荧光检测NLRP3、ASC、caspase-1共定位;电子显微镜观察细胞内超微结构;实时荧光定量PCR测定GES-1细胞中Apaf-1、ASC、Bcl-2、Bcl-xl、Bad、Bax、caspase-1、COX-1、COX-2、GCLC、HO-1、iNOS、Keap-1、NEK7、NLRP3、NQO1、Nrf2、PGE2、TXNIP mRNA表达;Western blot测定GES-1细胞中Apaf-1、ASC、Bcl-2、Bcl-xl、Bad、Bax、caspase-1、cleaved-caspase-3、cleaved-caspase-9、PARP-1、cleaved-PARP-1、GCLC、HO-1、Keap-1、NEK7、NLRP3、NQO1、pro-caspase-1、pro-caspase-3、pro-caspase-9、pro-IL-18、pro-IL-1β、总Nrf2、TXNIP蛋白表达。结果: 与模型组比较,TA可显著促进乙醇诱导的GES-1细胞迁移;显著抑制细胞凋亡和LDH释放;降低细胞内ROS水平,上清液中IL-1β、IL-6、IL-18、NO、TNF-α水平,细胞中MDA、MPO水平和胞浆中cytochrome C含量(P<0.01);升高MMP,上清液中IL-4、IL-10水平,细胞中CAT、GSH、SOD、T-AOC水平和线粒体中cytochrome C含量(P<0.01);下调乙醇诱导的GES-1细胞中ASC、Apaf-1、Bad、Bax、caspase-1、COX-2、iNOS、Keap-1、NEK7、NLRP3、TXNIP mRNA和ASC、Apaf-1、Bad、Bax、caspase-1、cleaved-caspase-3、cleaved-caspase-9、cleaved-PARP-1、Keap-1、NEK7、NLRP3、pro-caspase-1、pro-IL-1β、pro-IL-18、TXNIP蛋白表达,抑制GES-1细胞内NLRP3、ASC和caspase-1共定位;改善细胞核及核仁结构、减轻线粒体肿胀;上调乙醇诱导的GES-1细胞中COX-1、Bcl-2、Bcl-xl、GCLC、HO-1、NQO1、Nrf2、PGE2 mRNA和Bcl-2、Bcl-xl、GCLC、HO-1、NQO1、总Nrf2、胞核Nrf2、pro-caspase-3、pro-caspase-9蛋白表达及Bcl-2/Bax、Bcl-xl/Bad比率(P<0.01)。结论: TA对乙醇所致GES-1细胞损伤具有显著的保护作用,其作用机制与激活Keap-1/Nrf2通路、减轻氧化应激,抑制NLRP3炎症小体通路激活、减轻炎症反应,进而抑制线粒体凋亡通路激活密切相关。
中图分类号:
周如凤, 张颖, 孟子元, 刘杰, 石孟琼, 廖勇, 许杰, 李浩然, 谈燕清, 覃慧林, 贾亮亮, 游艳. 委陵菜酸调节Keap-1/Nrf2和NLRP3炎症小体信号通路对乙醇诱导GES-1细胞损伤的保护作用及机制研究[J]. 中国临床药理学与治疗学, 2026, 31(8): 1034-1052.
Rufeng ZHOU, Ying ZHANG, Ziyuan MENG, Jie LIU, Mengqiong SHI, Yong LIAO, Jie XU, Haoran LI, Yanqing TAN, Huilin QIN, Liangliang JIA, Yan YOU. Tormentic acid protects alcohol induced GES-1 cells via regulating Keap-1/Nrf2 and NLRP3 inflammasome signaling pathways[J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2026, 31(8): 1034-1052.
图 1
Fig.1 TA?s chemical structure and effects of different concentrations of TA and alcohol on the viabilities of GES-1 cells ($ \overline{x} $±s, n=5) A: TAʼs chemical structure; B: effect of TA on the viability of GES-1 cells; C: effect of ethanol on the cell viability of GES-1 cells; D: effect of ethanol on the cell viability of GES-1 cells induced by alcohol; bP<0.05, cP<0.01, compared with control group; eP<0.05, fP<0.01, compared with model group.
| Gene | F:(5′-3′) | R:(5′-3′) |
| Keap-1 | AGCGTGGAGAGAGATATGAGCC | ATCATCCGCCACTCATTCCT |
| Nrf2 | GGCTACGTTTCAGTCACTT | AGCTCCTCCCAAACTTGCTC |
| GCLC | TGGCAATGCAGTGGTGGAT | AACACACCTTCCTTCCCATTGA |
| HO-1 | TGGCAGCTGTCTCAAACCTC | TGCCGTTAAACACCTCCCTC |
| NQO1 | CAGTGGTTTGGAGTCCCTGC | CAGTGGTTTGGAGTCCCTGCA |
| TXNIP | CAGCAGTGCAAACAGACTTCGG | CTGAGGAAGCTCAAAGCCGAAC |
| NEK7 | ATGGAGGAGCCCGAGAAGAG | CTCCTGCTCCAGCTTCTTCC |
| NLRP3 | GCACTGTGTTTGGAGTGGGTTTCA | CCCGACAGTGGATATAGAACAGA |
| ASC | TGGATGCTCTGTACGGGAAG | CCAGGCTGGTGTGAAACTGAA |
| Caspase-1 | TTTCCGCAAGGTTCGATTTTCA | GGCATCTGCGCTCTACCATC |
| COX-1 | CTATCACTGGATCCGTTCAT | AAAGTTCCTACCCCCACCAAT |
| COX-2 | CAAATCCTTGCTGTTCCCACCCAT | GCACTGTGTTTGGAGTGGGTTTCA |
| iNOS | GCAATGGGCAGACTCTGAAG | CGATGTCATGAGCAAAGGCA |
| PGE2 | CTCCTTGCCTTTCACGATTT | ACAACAGAGGACTGAACGCAT |
| Bcl-2 | CATGTGTGTGGAGAGCGTCAA | GCCGGTTCAGGTACTCAGTCA |
| Bcl-xl | TCCTTGTCTACGCTTTCCACG | GGTCGCATTGTGGCCTTT |
| Bax | ATGGGCTGGACATTGGAC | GGGACATCAGTCGCTTCAG |
| Bad | CCAGAGTTTGAGCCGAGTGAG | GATGATGCTTGCCGGAGCC |
| Apaf-1 | AGGACACAGACGGTGGAAAC | ATCGCACTGACCAGCTTCTT |
| GAPDH | AACGGCACAGTCAAGGCTGA | ACG CCAGTAGACTCCACGACAT |
表 1
Table 1 Primer sequences
| Gene | F:(5′-3′) | R:(5′-3′) |
| Keap-1 | AGCGTGGAGAGAGATATGAGCC | ATCATCCGCCACTCATTCCT |
| Nrf2 | GGCTACGTTTCAGTCACTT | AGCTCCTCCCAAACTTGCTC |
| GCLC | TGGCAATGCAGTGGTGGAT | AACACACCTTCCTTCCCATTGA |
| HO-1 | TGGCAGCTGTCTCAAACCTC | TGCCGTTAAACACCTCCCTC |
| NQO1 | CAGTGGTTTGGAGTCCCTGC | CAGTGGTTTGGAGTCCCTGCA |
| TXNIP | CAGCAGTGCAAACAGACTTCGG | CTGAGGAAGCTCAAAGCCGAAC |
| NEK7 | ATGGAGGAGCCCGAGAAGAG | CTCCTGCTCCAGCTTCTTCC |
| NLRP3 | GCACTGTGTTTGGAGTGGGTTTCA | CCCGACAGTGGATATAGAACAGA |
| ASC | TGGATGCTCTGTACGGGAAG | CCAGGCTGGTGTGAAACTGAA |
| Caspase-1 | TTTCCGCAAGGTTCGATTTTCA | GGCATCTGCGCTCTACCATC |
| COX-1 | CTATCACTGGATCCGTTCAT | AAAGTTCCTACCCCCACCAAT |
| COX-2 | CAAATCCTTGCTGTTCCCACCCAT | GCACTGTGTTTGGAGTGGGTTTCA |
| iNOS | GCAATGGGCAGACTCTGAAG | CGATGTCATGAGCAAAGGCA |
| PGE2 | CTCCTTGCCTTTCACGATTT | ACAACAGAGGACTGAACGCAT |
| Bcl-2 | CATGTGTGTGGAGAGCGTCAA | GCCGGTTCAGGTACTCAGTCA |
| Bcl-xl | TCCTTGTCTACGCTTTCCACG | GGTCGCATTGTGGCCTTT |
| Bax | ATGGGCTGGACATTGGAC | GGGACATCAGTCGCTTCAG |
| Bad | CCAGAGTTTGAGCCGAGTGAG | GATGATGCTTGCCGGAGCC |
| Apaf-1 | AGGACACAGACGGTGGAAAC | ATCGCACTGACCAGCTTCTT |
| GAPDH | AACGGCACAGTCAAGGCTGA | ACG CCAGTAGACTCCACGACAT |
图 2
Fig.2 Effect of TA on migration ability of GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) A: cell scratch assay for detecting cell migration (scale bar=50 µm); B: transwell assay for detecting cell migration (scale bar=100 µm); cP<0.01, compared with control group; eP<0.05, fP<0.01, compared with model group.
图 3
Fig.3 Effect of TA on apoptosis of GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) cP<0.01, compared with control group; fP<0.01, compared with model group.
图 4
Fig.4 Effects of TA on ROS level and MMP of GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) A: ROS levels (scale bar=100 µm); B:MMP (scale bar=100 µm); cP<0.01, compared with the control group; fP<0.01, compared with the model group.
图 5
Fig.5 Effect of TA on cytokine levels of the supernatant of GES-1 cells and GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) A: cytokine levels in cell supernatant; B: mRNA expressions of cytokines in cells; cP<0.01, compared with control group; fP<0.01, compared with model group.
图 6
Fig.6 Effects of TA on LDH level and oxidative stress index of GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) A: LDH release; B: MDA levels; C-G: endogenous antioxidant enzyme activity; cP<0.01, compared with control group; fP<0.01, compared with model group.
图 8
Fig.8 Effect of TA on the ultrastructure in GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) A: mitochondrial ultrastructure of GES-1 cells under electron microscopy; B: quantitative comparison of mitochondrial area; C: comparison of mitochondrial count, with each count defined within the size range of 4 μm × 4 μm; D: comparison of mitochondrial aspect ratio, i.e. the ratio of mitochondrial long axis to short axis; The red arrow points to the mitochondria, and the yellow arrow points to the nucleus, scale bar=2 μm; cP<0.01, compared with control group; fP<0.01, compared with model group.
图 9
Fig.9 Effects of TA on the relative gene mRNA and protein expressions Keap1/Nrf2 pathway in GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) A: relative gene mRNA expressions of Keap-1/Nrf2 pathway; B: relative gene protein expressions of Keap-1/Nrf2 pathway; cP<0.01, compared with control group; eP<0.05, fP<0.01, compared with model group.
图 10
Fig.10 Effects of TA on the relative gene mRNA and protein expressions NLRP3 inflammasome pathway in GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) A: relative gene mRNA expressions of NLRP3 inflammasome pathway; B: relative gene protein expressions of NLRP3 inflammasome pathway; cP<0.01, compared with the control group; fP<0.01, compared with the model group.
图 11
Fig.11 Effects of TA on the relative gene mRNA and protein expressions of mitochondria-dependent apoptotic pathway in GES-1 cells induced by alcohol ($ \overline{x} $±s, n=5) A: cytochrome C content in cytosol and mitochondria; B: relative gene mRNA expressions of mitochondria-dependent apoptotic pathway; C: relative gene protein expressions of mitochondria-dependent apoptotic pathway; cP<0.01, compared with control group; fP<0.01, compared with model group.
图 12
Fig.12 The mechanism of TA regulating Keap-1/Nrf2 and NLRP3 inflammasome signaling pathways in protecting against ethanol induced GES-1 cell damage
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