Tianjin Medical Journal ›› 2024, Vol. 52 ›› Issue (10): 1025-1030.doi: 10.11958/20240619
• Experimental Research • Previous Articles Next Articles
LIAO Zhong1(), LIAO Weijian1, LAI Guoli1, WEN Yin2, SU Zhiwei2, ZENG Juhao2, DING Hongguang3
Received:
2024-05-17
Revised:
2024-06-11
Published:
2024-10-15
Online:
2024-10-14
LIAO Zhong, LIAO Weijian, LAI Guoli, WEN Yin, SU Zhiwei, ZENG Juhao, DING Hongguang. Study on the effect of fisetin on alleviating cognitive impairment after sepsis by inhibiting the activation of microglial NLPR3 inflammasome[J]. Tianjin Medical Journal, 2024, 52(10): 1025-1030.
CLC Number:
组别 | 第2天 | 第3天 | 第4天 | 第5天 |
---|---|---|---|---|
假手术组 | 74.6±14.5 | 63.6±13.9 | 39.4±8.3 | 25.6±4.0 |
脓毒症组 | 99.4±22.1a | 93.6±22.9a | 84.6±24.1a | 71.0±20.8a |
脓毒症+漆黄素组 | 77.0±26.2b | 72.8±24.6b | 60.8±22.4b | 41.5±19.3b |
F组间/F时间/F交互 | 48.934**/30.180**/1.166 |
Tab.1 Comparison of escape latency in Morris water maze test between the three groups
组别 | 第2天 | 第3天 | 第4天 | 第5天 |
---|---|---|---|---|
假手术组 | 74.6±14.5 | 63.6±13.9 | 39.4±8.3 | 25.6±4.0 |
脓毒症组 | 99.4±22.1a | 93.6±22.9a | 84.6±24.1a | 71.0±20.8a |
脓毒症+漆黄素组 | 77.0±26.2b | 72.8±24.6b | 60.8±22.4b | 41.5±19.3b |
F组间/F时间/F交互 | 48.934**/30.180**/1.166 |
组别 | caspase-1 | GSDMD-N | IL-1β | IL-18 |
---|---|---|---|---|
假手术组 | 0.16±0.06 | 0.14±0.08 | 0.06±0.02 | 0.09±0.03 |
脓毒症组 | 0.83±0.15a | 0.74±0.11a | 0.40±0.09a | 0.49±0.08a |
脓毒症+Cas-1-/-组 | 0.15±0.08b | 0.17±0.11b | 0.09±0.03b | 0.11±0.04b |
F | 58.805** | 45.953** | 51.213** | 70.471** |
Tab.2 Comparison of caspase-1, GSDMD-N, IL-1β and IL-18 levels between the three groups
组别 | caspase-1 | GSDMD-N | IL-1β | IL-18 |
---|---|---|---|---|
假手术组 | 0.16±0.06 | 0.14±0.08 | 0.06±0.02 | 0.09±0.03 |
脓毒症组 | 0.83±0.15a | 0.74±0.11a | 0.40±0.09a | 0.49±0.08a |
脓毒症+Cas-1-/-组 | 0.15±0.08b | 0.17±0.11b | 0.09±0.03b | 0.11±0.04b |
F | 58.805** | 45.953** | 51.213** | 70.471** |
组别 | 伊文思蓝/ (μg/mg) | Pink1 | Parkin | LC3-Ⅱ |
---|---|---|---|---|
假手术组 | 88.69±26.51 | 0.06±0.01 | 0.05±0.02 | 0.21±0.05 |
脓毒症组 | 385.72±69.32a | 0.44±0.10a | 0.45±0.10a | 0.73±0.12a |
脓毒症+ 漆黄素组 | 142.62±42.69b | 0.79±0.11b | 0.87±0.15b | 1.26±0.17b |
F | 40.985** | 70.086** | 63.330** | 70.757** |
Tab.3 Comparison of Evans blue, Pink1, Parkin and LC3-II levels between three groups
组别 | 伊文思蓝/ (μg/mg) | Pink1 | Parkin | LC3-Ⅱ |
---|---|---|---|---|
假手术组 | 88.69±26.51 | 0.06±0.01 | 0.05±0.02 | 0.21±0.05 |
脓毒症组 | 385.72±69.32a | 0.44±0.10a | 0.45±0.10a | 0.73±0.12a |
脓毒症+ 漆黄素组 | 142.62±42.69b | 0.79±0.11b | 0.87±0.15b | 1.26±0.17b |
F | 40.985** | 70.086** | 63.330** | 70.757** |
组别 | caspase-1 | GSDMD-N | IL-1β | IL-18 |
---|---|---|---|---|
假手术组 | 0.13±0.01 | 0.09±0.03 | 0.08±0.03 | 0.04±0.01 |
脓毒症组 | 1.26±0.15a | 1.14±0.12a | 0.73±0.12a | 0.65±0.15a |
脓毒症+漆黄素组 | 0.24±0.05b | 0.37±0.11b | 0.20±0.09b | 0.18±0.11b |
F | 185.669** | 137.843** | 57.420** | 32.885** |
Tab.4 Comparison of caspase-1, GSDMD-N, IL-1β and IL-18 levels between three groups
组别 | caspase-1 | GSDMD-N | IL-1β | IL-18 |
---|---|---|---|---|
假手术组 | 0.13±0.01 | 0.09±0.03 | 0.08±0.03 | 0.04±0.01 |
脓毒症组 | 1.26±0.15a | 1.14±0.12a | 0.73±0.12a | 0.65±0.15a |
脓毒症+漆黄素组 | 0.24±0.05b | 0.37±0.11b | 0.20±0.09b | 0.18±0.11b |
F | 185.669** | 137.843** | 57.420** | 32.885** |
[1] | HONG Y, CHEN P, GAO J, et al. Sepsis-associated encephalopathy:from pathophysiology to clinical management[J]. Int Immunopharmacol, 2023, 124(Pt A):110800. doi:10.1016/j.intimp.2023.110800. |
[2] | SONNEVILLE R, BENGHANEM S, JEANTIN L, et al. The spectrum of sepsis-associated encephalopathy:a clinical perspective[J]. Crit Care, 2023, 27(1):386. doi:10.1186/s13054-023-04655-8. |
[3] | XIN Y, TIAN M, DENG S, et al. The key drivers of brain injury by systemic inflammatory responses after sepsis:microglia and neuroinflammation[J]. Mol Neurobiol, 2023, 60(3):1369-1390. doi:10.1007/s12035-022-03148-z. |
[4] | 庄欣琪, 谢克亮, 于泳浩, 等. 小胶质细胞与脓毒症脑病的研究进展[J]. 天津医药, 2020, 48(4):338-342. |
ZHUANG X Q, XIE K L, YU Y H, et al. Advances in research on microglia and sepsis associated encephalopathy[J]. Tianjin Med J, 2020, 48(4):338-342. doi:10.11958/20193358. | |
[5] | GAO S, JIANG Y, CHEN Z, et al. Metabolic reprogramming of microglia in sepsis-associated encephalopathy:insights from neuroinflammation[J]. Curr Neuropharmacol, 2023, 21(9):1992-2005. doi:10.2174/1570159X21666221216162606. |
[6] | RAUF A, ABU-IZNEID T, IMRAN M, et al. Therapeutic potential and molecular mechanisms of the multitargeted flavonoid fisetin[J]. Curr Top Med Chem, 2023, 23(21):2075-2096. doi:10.2174/1568026623666230710162217. |
[7] | WANG G, WANG J J, DU L, et al. Inhibitory kinetics and mechanism of flavonoids extracted from cotinus coggygria scop. Against glioblastoma cancer[J]. Nutr Cancer, 2016, 68(8):1357-1368. doi:10.1080/01635581.2016.1225105. |
[8] | KIM N, KWON J, SHIN U S, et al. Fisetin induces the upregulation of AKAP12 mRNA and anti-angiogenesis in a patient-derived organoid xenograft model[J]. Biomed Pharmacother, 2023, 167:115613. doi:10.1016/j.biopha.2023.115613. |
[9] | BELTZIG L, CHRISTMANN M, DOBREANU M, et al. Genotoxic and cytotoxic activity of fisetin on glioblastoma cells[J]. Anticancer Res, 2024, 44(3):901-910. doi:10.21873/anticanres.16884. |
[10] | WANG X, LI X, ZHOU J, et al. Fisetin suppresses chondrocyte senescence and attenuates osteoarthritis progression by targeting sirtuin 6[J]. Chem Biol Interact, 2024, 390:110890. doi:10.1016/j.cbi.2024.110890. |
[11] | LIOU C J, WEI C H, CHEN Y L, et al. Fisetin protects against hepatic steatosis through regulation of the Sirt1/AMPK and fatty acid β-oxidation signaling pathway in high-fat diet-induced obese mice[J]. Cell Physiol Biochem, 2018, 49(5):1870-1884. doi:10.1159/000493650. |
[12] | VANDE WALLE L, LAMKANFI M. Drugging the NLRP3 inflammasome:from signalling mechanisms to therapeutic targets[J]. Nat Rev Drug Discov, 2024, 23(1):43-66. doi:10.1038/s41573-023-00822-2. |
[13] | FU J, WU H. Structural mechanisms of NLRP3 inflammasome assembly and activation[J]. Annu Rev Immunol, 2023, 41:301-316. doi:10.1146/annurev-immunol-081022-021207. |
[14] | WU F, TYML K, WILSON J X. iNOS expression requires NADPH oxidase-dependent redox signaling in microvascular endothelial cells[J]. J Cell Physiol, 2008, 217(1):207-214. doi:10.1002/jcp.21495. |
[15] | QUOILIN C, MOUITHYS-MICKALAD A, LÉCART S, et al. Evidence of oxidative stress and mitochondrial respiratory chain dysfunction in an in vitro model of sepsis-induced kidney injury[J]. Biochim Biophys Acta, 2014, 1837(10):1790-1800. doi:10.1016/j.bbabio.2014.07.005. |
[16] | YAZAL T, LEE P Y, CHEN P R, et al. Kurarinone exerts anti-inflammatory effect via reducing ROS production,suppressing NLRP3 inflammasome,and protecting against LPS-induced sepsis[J]. Biomed Pharmacother, 2023, 167:115619. doi:10.1016/j.biopha.2023.115619. |
[17] | LI J, YANG D, LI Z, et al. PINK1/Parkin-mediated mitophagy in neurodegenerative diseases[J]. Ageing Res Rev, 2023, 84:101817. doi:10.1016/j.arr.2022.101817. |
[18] | JIA S, XU X, ZHOU S, et al. Fisetin induces autophagy in pancreatic cancer cells via endoplasmic reticulum stress- and mitochondrial stress-dependent pathways[J]. Cell Death Dis, 2019, 10(2):142. doi:10.1038/s41419-019-1366-y. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||