Tianjin Medical Journal ›› 2025, Vol. 53 ›› Issue (3): 225-229.doi: 10.11958/20240816
• Cell and Molecular Biology • Next Articles
LI Bingxin1(), XU Junying1, ZHANG Yaru1, ZHOU Xiaobing2,△(
)
Received:
2024-06-24
Revised:
2024-08-22
Published:
2025-03-15
Online:
2025-03-31
Contact:
E-mail:LI Bingxin, XU Junying, ZHANG Yaru, ZHOU Xiaobing. Effect of Cordyceps sinensis on podocyte damage induced by high glucose by regulating the AMPK/mTOR pathway[J]. Tianjin Medical Journal, 2025, 53(3): 225-229.
CLC Number:
组别 | podocin | nephrin | Beclin-1 | P62 |
---|---|---|---|---|
NG组 | 1.00±0.00 | 1.00±0.01 | 1.00±0.00 | 1.00±0.00 |
HG组 | 0.27±0.03a | 0.32±0.05a | 0.33±0.04a | 4.62±0.57a |
HG+CS组 | 0.63±0.07b | 0.81±0.08b | 0.61±0.06b | 1.87±0.23b |
HG+CS+3MA组 | 0.20±0.02c | 0.20±0.05c | 0.25±0.05c | 3.61±0.23c |
F | 454.211* | 425.352* | 322.695* | 124.156* |
Tab.1 Comparison of protein expression levels of podocin, nephrin, Beclin-1 and P62 under autophagy inhibitor intervention between the four groups of cells
组别 | podocin | nephrin | Beclin-1 | P62 |
---|---|---|---|---|
NG组 | 1.00±0.00 | 1.00±0.01 | 1.00±0.00 | 1.00±0.00 |
HG组 | 0.27±0.03a | 0.32±0.05a | 0.33±0.04a | 4.62±0.57a |
HG+CS组 | 0.63±0.07b | 0.81±0.08b | 0.61±0.06b | 1.87±0.23b |
HG+CS+3MA组 | 0.20±0.02c | 0.20±0.05c | 0.25±0.05c | 3.61±0.23c |
F | 454.211* | 425.352* | 322.695* | 124.156* |
组别 | p-AMPK/AMPK | p-mTOR/mTOR |
---|---|---|
NG组 | 1.00±0.00 | 1.00±0.01 |
HG组 | 0.35±0.03a | 1.40±0.05a |
HG+CS组 | 0.96±0.02b | 1.02±0.05b |
HG+CS+Compound C组 | 0.27±0.02c | 1.66±0.03c |
F | 496.373* | 305.433* |
Tab.2 Comparison of protein expression levels of p-AMPK and p-mTOR under AMPK inhibitor intervention between the four groups of cells
组别 | p-AMPK/AMPK | p-mTOR/mTOR |
---|---|---|
NG组 | 1.00±0.00 | 1.00±0.01 |
HG组 | 0.35±0.03a | 1.40±0.05a |
HG+CS组 | 0.96±0.02b | 1.02±0.05b |
HG+CS+Compound C组 | 0.27±0.02c | 1.66±0.03c |
F | 496.373* | 305.433* |
组别 | podocin | nephrin | Beclin-1 | P62 |
---|---|---|---|---|
NG组 | 1.00±0.00 | 1.00±0.00 | 1.00±0.00 | 1.00±0.00 |
HG组 | 0.20±0.03a | 0.43±0.05a | 0.23±0.04a | 4.40±0.67a |
HG+CS组 | 0.88±0.13b | 0.74±0.05b | 0.86±0.10b | 2.53±0.36b |
HG+CS+ Compound C组 | 0.30±0.05c | 0.31±0.04c | 0.40±0.07c | 4.26±0.47c |
F | 151.175* | 309.741* | 160.780* | 64.570* |
Tab.3 Comparison of protein expression levels of podocin, nephrin, Beclin-1 and P62 under AMPK inhibitor intervention between the four groups of cells
组别 | podocin | nephrin | Beclin-1 | P62 |
---|---|---|---|---|
NG组 | 1.00±0.00 | 1.00±0.00 | 1.00±0.00 | 1.00±0.00 |
HG组 | 0.20±0.03a | 0.43±0.05a | 0.23±0.04a | 4.40±0.67a |
HG+CS组 | 0.88±0.13b | 0.74±0.05b | 0.86±0.10b | 2.53±0.36b |
HG+CS+ Compound C组 | 0.30±0.05c | 0.31±0.04c | 0.40±0.07c | 4.26±0.47c |
F | 151.175* | 309.741* | 160.780* | 64.570* |
[1] | TAGAWA A, YASUDA M, KUME S, et al. Impaired podocyte autophagy exacerbates proteinuria in diabetic nephropathy[J]. Diabetes, 2016, 65(3):755-767. doi:10.2337/db15-0473. |
[2] | SINGH G C, AHMED M, ZAID M, et al. Biochemical,serological,and genetic aspects related to gene HLA-DQB1 and its association with type 1 diabetes mellitus (T1DM)[J]. Mol Genet Genomic Med, 2020, 8(5):e1147. doi:10.1002/mgg3.1147. |
[3] | LIU W, GAO Y, ZHOU Y, et al. Mechanism of cordyceps sinensis and its extracts in the treatment of diabetic kidney disease:a review[J]. Frontiers in Pharmacology, 2022, 13:881835. doi:10.3389/fphar.2022.881835. |
[4] | WANG R L, LIU S H, SHEN S H, et al. Protective mechanism of cordyceps sinensis treatment on acute kidney injury-induced acute lung injury through AMPK/mTOR signaling pathway[J]. Chin J Integr Med, 2023, 29(10):875-884. doi:10.1007/s11655-023-3593-4. |
[5] | ASHRAF A, AKHTAR T, SHABBIR A, et al. Sitagliptin ameliorates diabetic nephropathy by upregulating renal nephrin and podocin expression through modulation of adipokines levels[J]. Fundam Clin Pharmacol, 2023, 37(3):549-555. doi:10.1111/fcp.12864. |
[6] | XU L, FAN Q, WANG X, et al. Ursolic acid improves podocyte injury caused by high glucose[J]. Nephrol Dial Transplant, 2017, 32(8):1285-1293. doi:10.1093/ndt/gfv382. |
[7] | YAMAMOTO H, MATSUI T. Molecular mechanisms of macroautophagy,microautophagy,and chaperone-mediated autophagy[J]. J Nippon Med Sch, 2024, 91(1):2-9. doi:10.1272/jnms.JNMS.2024_91-102. |
[8] | ZHAO X C, LIVINGSTON M J, LIANG X L, et al. Cell apoptosis and autophagy in renal fibrosis[J]. Adv Exp Med Biol, 2019,1165:557-584. doi:10.1007/978-981-13-8871-2_28. |
[9] | YAMAHARA K, KUME S, KOYA D, et al. Obesity-mediated autophagy insufficiency exacerbates proteinuria-induced tubulointerstitial lesions[J]. J Am Soc Nephrol, 2013, 24(11):1769-1781. doi:10.1681/ASN.2012111080. |
[10] | 钟娟, 陈静, 青姚, 等. 川芎嗪通过抑制PI3K/Akt/mTOR通路诱导自噬改善糖尿病肾病大鼠肾损害[J]. 天津医药, 2019, 47(4):395-400. |
ZHONG J, CHEN J, QING Y, et al. Experimental study of ligustrazine on improving renal damage in diabetic nephropathy rats by inhibiting the PI3K/Akt/mTOR pathway and inducing autophagy[J]. Tianjin Med J, 2019, 47(4):395-400. doi:10.11958/20181506. | |
[11] | MO Y, SUN Y Y, LIU K Y. Autophagy and inflammation in ischemic stroke[J]. Neural Regen Res, 2020, 15(8):1388-1396. doi:10.4103/1673-5374.274331. |
[12] | JAHANIAN S, PAREJA-CAJIAO M, GRANSEE H M, et al. Autophagy markers LC3 and p62 in aging lumbar motor neurons[J]. Exp Gerontol, 2024, 194:112483. doi:10.1016/j.exger.2024.112483. |
[13] | CHEN H, JI Y, YAN X, et al. Berberine attenuates apoptosis in rat retinal Müller cells stimulated with high glucose via enhancing autophagy and the AMPK/mTOR signaling[J]. Biomed Pharmacother, 2018, 108:1201-1207. doi:10.1016/j.biopha.2018.09.140. |
[14] | ARAB H H, ASHOUR A M, GAD A M, et al. Activation of AMPK/mTOR-driven autophagy and inhibition of NLRP3 inflammasome by saxagliptin ameliorate ethanol-induced gastric mucosal damage[J]. Life Sci, 2021, 280:119743. doi:10.1016/j.lfs.2021.119743. |
[15] | YURUBE T, ITO M, KAKIUCHI Y, et al. Autophagy and mTOR signaling during intervertebral disc aging and degeneration[J]. JOR Spine, 2020, 18 (1):e1082. doi:10.1002/jsp2.1082. |
[16] | KIM Y C, GUAN K L. mTOR:a pharmacologic target for autophagy regulation[J]. J Clin Invest, 2015, 125(1):25-32. doi:10.1172/JCI73939. |
[17] | LIU L, YANG L, CHANG B, et al. The protective effects of rapamycin on cell autophagy in the renal tissues of rats with diabetic nephropathy via mTOR-S6K1-LC3II signaling pathway[J]. Ren Fail, 2018, 40(1):492-497. doi:10.1080/0886022X.2018.1489287. |
[18] | 李燕, 李安琪, 余晓洋, 等. 环磷酰胺激活过氧化物酶体增殖物激活受体-γ介导细胞自噬减轻糖尿病肾病小鼠肾损伤的机制[J]. 山西医科大学学报, 2021, 52(8):1021-1028. |
LI Y, LI A Q, YU X Y, et al. Cyclophosphamide-activated peroxisome proliferator-activated receptor-γ-mediated autophagy reduces kidney damage in mice with diabetic nephropathy[J]. J Shanxi Med Univ, 2021, 52(8):1021-1028. doi:10.13753/j.issn.1007-6611.2021.08.014. |
[1] | FANG Jie, HUANG Rui, ZHENG Honghui, JIA Qianqian, BAO Jing. miR-9-5p-induced autophagy and apoptosis in multiple myeloma cells by targeting TIMP2 [J]. Tianjin Medical Journal, 2024, 52(8): 785-790. |
[2] | LI Daqiang, LI Jian, LU Zheming, CAO Yang. Effects of calycosin on neuronal autophagy and apoptosis in rats with spinal cord injury [J]. Tianjin Medical Journal, 2024, 52(8): 798-803. |
[3] | HOU Weiling, QIAO Yunyang, WU Xiaoyun, SHI Huimin, QU Gaoting, ZHANG Aiqing. Zinc finger protein 281 inhibits high glucose-induced epithelial-mesenchymal transition and extracellular matrix synthesis in renal tubular epithelial cells [J]. Tianjin Medical Journal, 2024, 52(7): 720-726. |
[4] | XIA Yuwei, QIAO Yunyang, LIU Xuewei, SHI Huimin, QU Gaoting, ZHANG Aiqing, GAN Weihua. Effect of tRF-1:30 on the expression of inflammatory factors in renal tubular epithelial cells induced by high glucose [J]. Tianjin Medical Journal, 2024, 52(6): 561-566. |
[5] | WANG Ke, YE Hanlu. Impacts of cryptotanshinone on autophagy and apoptosis of chondrocytes in rabbit model of knee osteoarthritis by regulating HIF-1α/BNIP3 signaling pathway [J]. Tianjin Medical Journal, 2024, 52(4): 372-378. |
[6] | HE Ying, ZHANG Guanghua, TIAN Lidong, YU Yonghao. Hydrogen-rich saline treated neuropathic pain in rats by increasing autophagy [J]. Tianjin Medical Journal, 2024, 52(3): 261-265. |
[7] | WANG Aihua, ZHANG Feizhong, WANG Hongying. Impacts of muscone on malignant progression of ovarian cancer cells by regulating SHH mediated autophagy [J]. Tianjin Medical Journal, 2024, 52(2): 142-147. |
[8] | ZHAO Yuanyuan, WU Xiaohua. The effect of LINC00173 regulating autophagy of PCOS granulosa cells based on PI3K/Akt/mTOR signaling pathway [J]. Tianjin Medical Journal, 2024, 52(11): 1121-1126. |
[9] | ZHANG Rui, CHEN Sisi, WANG Tongdan, YU Pei. Krüppel-like factor 4 alleviated cholesterol deposition in macrophages by promoting autophagy at high glucose concentration [J]. Tianjin Medical Journal, 2024, 52(10): 1014-1019. |
[10] | QIAO Na, TIAN Ying, CHEN Yang, HAO Jing. Impacts of lncRNA MALAT1 on apoptosis, autophagy of granulosa cells and PI3K/Akt/mTOR pathway in polycystic ovary syndrome [J]. Tianjin Medical Journal, 2024, 52(10): 1020-1024. |
[11] | YANG Yuan, SONG Shuang, CHEN Rong, LIU Yonglian, LIU Chunyan. Study of ginsenoside Rg1 antagonizes sodium arsenite-induced nephrotoxicity in C57BL/6 mice [J]. Tianjin Medical Journal, 2023, 51(8): 820-824. |
[12] | HUANG Chengjun, XU Yu, MI Le, WANG Xiujun, LIU Zhenfeng, WANG Hongman. Research progress of autophagy in acute respiratory distress syndrome [J]. Tianjin Medical Journal, 2023, 51(6): 668-672. |
[13] | WANG Fei, ZHANG Xiaolei, LI Hanzhang, LI Yanan, HU Mengni, MA Jun. Effects of inhibiting PI3K/Akt/mTOR signaling pathway on autophagy, apoptosis and PD characteristic expression proteins in MPP+-treated SH-SY5Y cells [J]. Tianjin Medical Journal, 2023, 51(5): 449-453. |
[14] | GENG Yongzhi, YANG Li, LI Guowei, ZHANG Jintao, CHENG Xiaolei, TAN Liduan. Study on the improvement effect and mechanism of nobiletin on rats with acute kidney injury [J]. Tianjin Medical Journal, 2023, 51(5): 498-503. |
[15] | TAN Chunlian, LI Xiaohong, XIA Guodong, ZHANG Zhihong, LI Xiaoming. Inhibitory effect and mechanism of metformin on diffuse large B-cell lymphoma cells [J]. Tianjin Medical Journal, 2023, 51(4): 355-359. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||