山东大学学报 (医学版) ›› 2023, Vol. 61 ›› Issue (7): 34-39.doi: 10.6040/j.issn.1671-7554.0.2023.0272
刘凤祺*,高峰*,薛彩彩,乔秀梅,王金红
LIU Fengqi*, GAO Feng*, XUE Caicai, QIAO Xiumei, WANG Jinhong
摘要: 目的 探讨不同条件下高浓度葡萄糖(高糖)对大鼠肾上腺嗜铬细胞瘤细胞系PC12细胞的损伤作用,分析建立高糖损伤细胞模型的影响因素,并用确定的细胞模型观察梓醇的保护作用。 方法 PC12细胞种植密度为1×103、1×104、1×105个/mL,高糖加入时间点分别为细胞种植后24 h和48 h,葡萄糖终浓度为30、40、50和75 mmol/L,据此分为HG30、HG40、HG50、HG75组,另外对照组细胞加入等容积生理盐水。分别作用24、48、72 h,MTT法检测细胞存活率。用确定条件建立的细胞损伤模型观察梓醇的保护作用,细胞分为对照组、模型组、梓醇低剂量组(1×10-5mol/L)和梓醇高剂量组(1×10-4mol/L),ELISA法和荧光探针检测细胞活性氧(ROS)含量,ELISA测定乳酸脱氢酶(LDH)的释放量。 结果 不同葡萄糖作用条件下,与对照组比较,HG30组细胞存活率不变或降低(P>0.05或P<0.05),HG40、HG50和HG75组细胞存活率降低(P<0.05或P<0.01)。与对照组比较,模型组的细胞ROS含量增加(P<0.01),LDH释放量升高(P<0.01);与模型组比较,梓醇低剂量组和梓醇高剂量组细胞存活率升高(P<0.01),细胞ROS含量和LDH释放量降低(P<0.01)。 结论 高糖诱导的PC12细胞损伤受细胞种植密度、葡萄糖浓度和作用时间等因素影响;以1×104个/mL密度种植细胞、种植后24 h加入终浓度50 mmol/L葡萄糖作用时长24 h,可成功建立PC12细胞高糖损伤模型,梓醇对该细胞模型有保护作用。
中图分类号:
| [1] Kulkarni AA, Conteh AM, Sorrell CA, et al. An in vivo zebrafish model for interrogating ROS-mediated pancreatic β-cell injury, response, and prevention [J]. Oxid Med Cell Longev, 2018, 2018: 1324739. doi: 10.1155/2018/1324739. [2] Madduma Hewage S, Prashar S, Karmin O, et al. Lingonberry improves non-alcoholic fatty liver disease by reducing hepatic lipid accumulation, oxidative stress and inflammatory response [J]. Antioxidants, 2021, 10(4): 565. doi:10.3390/antiox10040565. [3] Zhang YQ, Wen J, Liu DQ, et al. Demethylenetetrahydroberberine alleviates nonalcoholic fatty liver disease by inhibiting the NLRP3 inflammasome and oxidative stress in mice [J]. Life Sci, 2021, 281: 119778. doi:10.1016/j.lfs.2021.119778. [4] Wu DD, Liu ZG, Wang YZ, et al. Epigallocatechin-3-gallate alleviates high-fat diet-induced nonalcoholic fatty liver disease via inhibition of apoptosis and promotion of autophagy through the ROS/MAPK signaling pathway [J]. Oxid Med Cell Longev, 2021, 2021: 5599997. doi: 10.1155/2021/5599997. [5] Zhu CG, Luo Y, Wang H, et al. Liraglutide ameliorates lipotoxicity-induced oxidative stress by activating the NRF2 pathway in HepG2 cells [J]. Horm Metab, 2020, 52(7): 532-539. [6] Namazi Sarvestani N, Saberi Firouzi S, Falak R, et al. Phosphodiesterase 4 and 7 inhibitors produce protective effects against high glucose-induced neurotoxicity in PC12 cells via modulation of the oxidative stress, apoptosis and inflammation pathways [J]. Metab Brain Dis, 2018, 33(4): 1293-1306. [7] Eslami H, Sharifi AM, Rahimi H, et al. Protective effect of telmisartan against oxidative damage induced by high glucose in neuronal PC12 cell [J]. Neurosci Lett, 2014, 558: 31-36. doi:10.1016/j.neulet.2013.10.057. [8] 李宗泽, 杨清俊, 朱艳凌, 等. 肌肽对高糖诱导SH-SY5Y细胞凋亡的保护作用[J]. 中国药理学与毒理学杂志, 2013, 27(5): 795-800. LI Zongze, YANG Qingjun, ZHU Yanling, et al. Protective effect of carnosine on high glucose-induced apoptosis in SH-SY5Y cells [J]. Chinese Journal of Pharmacology and Toxicology, 2013, 27(5): 795-800. [9] Song YF, Du Y, Zou WY, et al. Involvement of impaired autophagy and mitophagy in Neuro-2a cell damage under hypoxic and/or high-glucose conditions [J]. Sci Rep, 2018, 8(1): 3301. doi:10.1038/s41598-018-20162-1. [10] Bucolo C, Drago F, Maisto R, et al. Curcumin prevents high glucose damage in retinal pigment epithelial cells through ERK1/2-mediated activation of the Nrf2/HO-1 pathway [J]. J Cell Physiol, 2019, 234(10): 17295-17304. [11] Liu WY, Liou SS, Hong TY, et al. The benefits of the citrus flavonoid diosmin on human retinal pigment epithelial cells under high-glucose conditions [J]. Molecules, 2017, 22(12): 2251. doi:10.3390/molecules22122251. [12] Chen P, Miao Y, Yan PJ, et al. miR-455-5p ameliorates HG-induced apoptosis, oxidative stress and inflammatory via targeting SOCS3 in retinal pigment epithelial cells [J]. J Cell Physiol, 2019, 234(12): 21915-21924. [13] Li GL, Xu YR, Sheng X, et al. Naringin protects against high glucose-induced human endothelial cell injury via antioxidation and CX3CL1 downregulation [J]. Cell Physiol Biochem, 2017, 42(6): 2540-2551. [14] Davargaon RS, Sambe AD, Muthangi VVS. Toxic effect of high glucose on cardiomyocytes, H9c2 cells: induction of oxidative stress and ameliorative effect of Trolox [J]. J Biochem Mol Toxicol, 2019, 33(4): e22272. doi:10.1002/jbt.22272. [15] Liu WY, Liou SS, Hong TY, et al. Hesperidin prevents high glucose-induced damage of retinal pigment epithelial cells [J]. Planta Med, 2018, 84(14): 1030-1037. [16] Liu MH, Yuan C, He J, et al. Resveratrol protects PC12 cells from high glucose-induced neurotoxicity via PI3K/Akt/FoxO3a pathway [J]. Cell Mol Neurobiol, 2015, 35(4): 513-522. [17] Jiang B, Shen RF, Bi J, et al. Catalpol: a potential therapeutic for neurodegenerative diseases [J]. Curr Med Chem, 2015, 22(10): 1278-1291. [18] Huang WJ, Niu HS, Lin MH, et al. Antihyperglycemic effect of catalpol in streptozotocin-induced diabetic rats [J]. J Nat Prod, 2010, 73(6): 1170-1172. [19] Zhao J, Tan Y, Feng Z, et al. Catalpol attenuates polycystic ovarian syndrome by regulating sirtuin 1 mediated NF-κB signaling pathway [J]. Reprod Biol, 2022, 22(3): 100671. doi:10.1016/j.repbio.2022.100671. [20] 刘倩倩, 刘倩, 李文涛, 等. 梓醇对阿尔茨海默病大鼠模型大脑皮质保护作用[J]. 安徽医药, 2019, 23(10): 1934-1938, 2122. LIU Qianqian, LIU Qian, LI Wentao, et al. The protective effect of catalpol on cerebral cortex in an Alzheimers disease rat model [J]. Anhui Medical and Pharmaceutical Journal, 2019, 23(10): 1934-1938, 2122. [21] 张骐, 高峰, 刘倩, 等. 梓醇对高血糖阿尔茨海默病模型大鼠糖代谢的调节作用[J]. 中国医药, 2018, 13(6): 861-865. ZHANG Qi, GAO Feng, LIU Qian, et al. Effect of catalpol on glycemic metabolism in hyperglycemic Alzheimer disease rat model [J]. China Medicine, 2018, 13(6): 861-865. [22] Wang JH, Xie H, Zhao TK, et al. Catalpol regulates cholinergic nerve system function through effect on choline acetyl-transferase not M receptor affinity [J]. Biomed Pharmacother, 2015, 69: 291-296. doi:10.1016/j.biopha.2014.12.014. [23] Ucar F, Sezer S, Erdogan S, et al. The relationship between oxidative stress and nonalcoholic fatty liver disease: its effects on the development of nonalcoholic steatohepatitis [J]. Redox Rep, 2013, 18(4): 127-133. [24] Vanani AR, Kalantari H, Mahdavinia M, et al. Dimethyl fumarate reduces oxidative stress, inflammation and fat deposition by modulation of Nrf2, SREBP-1c and NF-κB signaling in HFD fed mice [J]. Life Sci, 2021, 283: 119852. doi:10.1016/j.lfs.2021.119852. [25] Ambudkar IS, Muallem S. ROS and Ca(2+)-partners in sickness and in health [J]. Cell Calcium, 2016, 60(2): 51-54. [26] Zhang JX, Wang XL, Vikash V, et al. ROS and ROS-mediated cellular signaling [J]. Oxid Med Cell Longev, 2016, 2016: 4350965. doi:10.1155/2016/4350965. [27] Wang H, Wang MS, Zhou YH, et al. Prognostic values of LDH and CRP in cervical cancer [J]. Onco Targets Ther, 2020, 13: 1255-1263. doi:10.2147/OTT.S235027. [28] Byun JK. Tumor lactic acid: a potential target for cancer therapy [J]. Arch Pharm Res, 2023, 46(2): 90-110. |
| [1] | 陈杨,冯莹,卢晓,郑蓉. 半乳糖凝集素-3通过PI3K/Akt/mTOR通路促进巨噬细胞自噬分化[J]. 山东大学学报 (医学版), 2026, 64(4): 14-22. |
| [2] | 孙佳丽,王亮,王长凤,张杰,郭磊. Klippel-Trenaunay综合征儿童情绪与行为特征及其影响因素[J]. 山东大学学报 (医学版), 2026, 64(3): 78-82. |
| [3] | 宋一鸣,王佳丰,韩晓娟,杜怡峰. 脑维持与认知功能:测量、影响因素和机制[J]. 山东大学学报 (医学版), 2026, 64(1): 1-7. |
| [4] | 徐欣颖,颜伟,石兴龙,岳芳,吕婧,乔颖异,张宇琦,程传龙,左慧,李秀君. 山东省滨州市手足口病的流行特征及影响因素[J]. 山东大学学报 (医学版), 2026, 64(1): 118-125. |
| [5] | 孙爽爽,仉率杰,张伯韬,袁莹,于媛媛,薛付忠. 基于真实世界研究的18~50岁人群急性缺血性卒中影响因素[J]. 山东大学学报 (医学版), 2025, 63(9): 40-46. |
| [6] | 王宁,郝秀梅,牛翔,黄金明,徐静雅. 中国中老年高血糖、血脂异常、高血压人群健康体检服务利用现状及影响因素[J]. 山东大学学报 (医学版), 2025, 63(7): 82-91. |
| [7] | 张永媛,王清亮,连雪洪. 山东省某三级综合医院罕见病患者住院费用结构变动情况及影响因素[J]. 山东大学学报 (医学版), 2025, 63(5): 111-119. |
| [8] | 陈瑛翼,游倩,王意,张帆,李凤,季舒铭,徐浩源,饶志勇. 办公室职员肌肉质量减少预测模型的开发与验证[J]. 山东大学学报 (医学版), 2025, 63(4): 26-35. |
| [9] | 刘国伟,翟艳,王薇,吕军城. 潍坊市某城区65岁及以上老年人社会适应能力现状及其影响因素[J]. 山东大学学报 (医学版), 2025, 63(2): 104-110. |
| [10] | 穆弘杰,卢伟,吕军城. 居民抑郁、焦虑症状和心理健康素养现况及影响因素分析[J]. 山东大学学报 (医学版), 2025, 63(12): 105-111. |
| [11] | 刘峰,马彩霞,李春燕,程海英,靳乐雨,刘仲,李学文. 2023年11月流感高峰期济南市大学生流感样病例发生情况及影响因素[J]. 山东大学学报 (医学版), 2024, 62(7): 91-97. |
| [12] | 景睿,张文茜,董卉,董怡然,于胜男,段勇,闫芹,赵传禄,李秀君,汪卫兵. 济南市大一新生结核病防治知信行现状及行为影响因素[J]. 山东大学学报 (医学版), 2024, 62(2): 101-107. |
| [13] | 冯绪强,高萍,孙超,陶琳,闫根全,冷冰. 替加环素治疗感染性疾病临床疗效及影响因素[J]. 山东大学学报 (医学版), 2024, 62(12): 11-20. |
| [14] | 于菲萍,李鑫,司明舒,张丹,苏永刚. 医学生医养结合认知程度与养老就业意愿[J]. 山东大学学报 (医学版), 2024, 62(11): 105-114. |
| [15] | 程传龙,韩闯,房启迪,刘盈,杨淑霞,崔峰,刘靖靖,李秀君. 基于时空地理加权回归模型探索肺癌发病的环境影响因素[J]. 山东大学学报 (医学版), 2023, 61(4): 95-102. |
|
||