Acta Laser Biology Sinica, Volume. 33, Issue 3, 243(2024)
A Study on Mechanism of ASM in the Treatment of ALI Based onNetwork Pharmacology and Molecular Docking
[1] [1] CHAYANUPATKUL M, SCHIANO T D. Acute liver failure secondary to drug-induced liver injury[J]. Clinics in Liver Disease,2020, 24(1): 75-87.
[2] [2] ISAACSON M, BABICH M. Drug-induced liver injury resourcesand reporting for the clinician[J]. Clinics in Liver Disease, 2020,24(1): 131-139.
[3] [3] LU Wei, PAN Meng, FANG Yike, et al. Research progress on themechanism of action of traditional Chinese medicine in the treatment of acute liver injury[J]. Central South Pharmacy, 2019,17(9): 1504-1507.
[4] [4] GUO Shuangyan, LIANG Qi, LYU Jieli, et al. Research progresson pharmacological action and mechanism of Angelica sinensis[J]. Journal of Xinxiang Medical College, 2023, 40(7): 678-685.
[6] [6] YIN Aiwu, GAO Pengfei. Application and mechanism of Salvia miltiorrhiza in prevention and treatment of liver diseases[J]. Natural Products Research and Development, 2019, 33(6): 1057-1062.
[7] [7] NOOR F, QAMAR M, ASHFAQ U A, et al. Network pharmacology approach for medicinal plants: review and assessment[J].Pharmaceuticals, 2022, 15(5): 572-582.
[8] [8] CRAMPON K, GIORKALLOS A, DELDOSSI M, et al. Machinelearning methods for ligand-protein molecular docking[J]. DrugDiscovery Today, 2021, 27(1): 151-164.
[9] [9] RU J, LI P, WANG J, et al. TCMSP: a database of systems pharmacology for drug discovery from herbal medicines[J]. Journalof Cheminformatics, 2014, 16(6): 13-18.
[10] [10] SZKLARCZYK D, GABLE A L, LYON D, et al. STRING v11:protein-protein association networks with increased coverage, supporting functional discovery in genome-wide experimental datasets[J]. Nucleic Acids Research, 2019, 47(D1): D607-D613.
[11] [11] TSAI J C, CHIU C S, CHEN Y C, et al. Hepatoprotective effectof coreopsis tinctoria flowers against carbon tetrachloride-inducedliver damage in mice[J]. BMC Complementary and AlternativeMedicine, 2017, 17(1): 139-145.
[12] [12] WANG K, TANG Z, ZHENG Z, et al. Protective effects of angelica sinensis polysaccharide against hyperglycemia and liverinjury in multiple low-dose streptozotocin-induced type 2 diabeticBALB/c mice[J]. Food Function, 2016, 7(12): 4889-4897.
[13] [13] NING Kangjian, ZHANG Ziming, SI Yangyang, et al. Observationof the protective effect of Angelica sinensis on carbon tetrachloride liver injury by electron microscope[J]. Chinese Journal ofExperimental Formulae, 2009, 15(12): 68-70.
[14] [14] XU Zhongping. Protective effect of angelica decoction on liverinjury induced by carbon tetrachloride in mice[J]. Journal of Chinese Veterinary Medicine, 2009, 28(4): 15-17.
[15] [15] KIM S H, KO I G, JIN J J, et al. Treadmill exercise amelioratesethanol with lipopoly-saccharide and carbon tetrachloride-mediated liver injury in mice[J]. Journal of Exercise Rehabilitation,2022, 18(1): 28-33.
[16] [16] CHENG Shunzhi, FENG Ling, YANG Qi, et al. Effects of extractof yacon on Nrf2/HO-1/NLRP3 pathway on acute liver injury inrats[J]. Acta Laser Biology Sinica, 2023, 32(3): 272-281.
[17] [17] CHEN S N, TAN Y, XIAO X C, et al. Deletion of TLR4 attenuateslipopolysaccharide induced acute liver injury by inhibiting inflammation and apoptosis[J]. Acta Pharmacologica Sinica, 2021,42(10): 1610-1619.
[18] [18] LI M, LU Y, HU Y, et al. Salvianolic acid B protects against acuteethanol-induced liver injury through SIRT1-mediated deacetylation of p53 in rats[J]. Toxicology Letters, 2014, 228(2): 67-74.
[19] [19] PISTRITTO G, TRISCIUOGLIO D, CECI C, et al. Apoptosis asanticancer mechanism: function and dysfunction of its modulatorsand targeted therapeutic strategies[J]. Aging, 2016, 8(4): 603-619.
[20] [20] WANG K, WANG J, SONG M, et al. Angelica sinensis polysaccharide attenuates CCl4 induced liver fibrosis via the IL-22/STAT3pathway[J]. International Journal of Biological Macromolecules,2020, 162(1): 273-283.
[21] [21] LI C X, GAO J G, WAN X Y, et al. Allyl isothiocyanate ameliorates lipid accumulation and inflammation in nonalcoholicfatty liver disease via the Sirt1/AMPK and NF-κB signalingpathways[J]. World Journal of Gastroenterology, 2019, 25(34):5120-5133.
[22] [22] LI S, WANG R, SONG F, et al. Salvianolic acid A suppressesCCl4-induced liver fibrosis through regulating the Nrf2/HO-1, NFκB/IκBα, p38 MAPK, and JAK1/STAT3 signaling pathways[J].Drug Chemical Toxicol, 2022, 46(2): 1-10.
[23] [23] TANG F, WANG Z, ZHOU J, et al. Salvianolic acid A protects againstacetaminophen induced hepatotoxicity via regulation of the miR485-3p/SIRT1 pathway[J]. Antioxidants, 2023, 12(4): 870-883.
[24] [24] NAGAPPAN A, KIM J H, JUNG D Y, et al. Cryptotanshinone fromthe salvia miltiorrhiza bunge attenuates ethanol-induced liver injuryby activation of AMPK/SIRT1 and Nrf2 signaling pathways[J].International Journal of Molecular Sciences, 2019, 21(1): 265-271.
[25] [25] HOU X X, LI Y W, SONG J L, et al. Cryptotanshinone inducesapoptosis of activated hepatic stellate cells via modulating endoplasmic reticulum stress[J]. World Journal of Gastroenterology,2023, 29 (17): 2616-2627.
[26] [26] CHEN Z, WU A, JIN H, et al. β-sitosterol attenuates liver injuryin a rat model of chronic alcohol intake[J]. Archives of Pharmacal Research, 2020, 43(11): 1197-1206.
[27] [27] SHI L, ZHANG S, HUANG Z, et al. Baicalin promotes liver regeneration after acetaminophen induced liver injury by inducingNLRP3 inflammasome activation[J]. Free Radical Biology &Medicine, 2020, 160: 163-177.
[28] [28] SHI H, QIAO F, LU W, et al. Baicalin improved hepatic injury ofNASH by regulating NRF2/HO-1/NRLP3 pathway[J]. European Journal of Pharmacology, 2022, 934: 175270.
Get Citation
Copy Citation Text
FENG Ling, HUANG Zhaoxia, LI Junlan, DONG Zhengping, ZHANG Yongqin. A Study on Mechanism of ASM in the Treatment of ALI Based onNetwork Pharmacology and Molecular Docking[J]. Acta Laser Biology Sinica, 2024, 33(3): 243
Category:
Received: Nov. 8, 2023
Accepted: --
Published Online: Aug. 14, 2024
The Author Email: Yongqin ZHANG (zhangyongqin044@gzy.edu.cn)