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Research Article

Metabolomics reveals the renoprotective effect of n-butanol extract and amygdalin extract from Amygdalus mongolica in rats with renal fibrosis

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Pages 555-563 | Received 24 Dec 2020, Accepted 25 Jun 2021, Published online: 19 Jul 2021

References

  • Sonja D, Peter B. Cellular and molecular mechanisms of kidney fibrosis. Mol Aspects Med. 2018;65:16–36.
  • Mingyue G, Jin M. Research progress on anti-renal fibrosis. J Pract Tradit Chinese Intern Med. 2021;35(04):138–141.
  • Congwei L, Xiaoyang H, Fenfen P, et al. Clinical research progress of drugs based on renal fibrosis mechanism. Chinese J Nephropathy Res. 2020;9(02):78–81.
  • Yang G, Xu G. Study on the analysis of Yuliren by TLC and electrophoresis. J China Pharma Univ. 1992;2(2):77–81.
  • Wu T, Chang H, Shi S, et al. Effect of petroleum ether extracts of Amygdalus mongolica on liver fibrosis rat models induced by carbon tetrachloride. Chinese Archiv Tradit Chinese Med. 2017;35:595–598.
  • Junqiu A, Qing'an Z, Kai S, et al. Research Progress on the Bioactive Function Extraction and Determination of Amygdalin. Farm Prod Process. 2021;17(01):64–68.
  • Zhao YS, Pei-Sai WU, Zhang HW, et al. Studies on dose-effect relationship of n-butanol extracts of Amygdalus mongolica on reducing blood lipid and its chemical constituents. Ence Technol Food Ind. 2017;38:348–352.
  • Zheng QN, Wang J, Zhou HB, et al. Effectiveness of Amygdalus mongolica oil in hyperlipidemic rats and underlying antioxidant processes. J Toxicol Environ Health A. 2017;80(22):1193–1198.
  • Wan-Fu B, Song-Li S, Hong-Bing Z, et al. Comparison of contents of amygdalin in Amygdalus mongolica seed from different producing area. Chinese J Health Lab Technol. 2015;25(03):315–317.
  • Zhou HB. Study on the quality and physiological and ecological adaptation mechanism of almond mongolica in different habitats [master]: Inner Mongolia University; 2015.
  • Bo-Wen Q, Tong W, Qing L, et al. Protective effect of different polar parts of Amygdalus mongolica on pulmonary fibrosis rat models induced by bleomycin. Sci Technol Food Ind. 2020;41(22):305–309.
  • Sun L, Yuan XL, Sun LD, et al. The effect and significance of emodin on expression of tissue inhibitor of platelet derived growth factors-B (PDGF-B) in rat with renal tubulointerstitial fibrosis. Chinese J Birth Health Heredity. 2016;24:29–30.
  • Cai HD, Su SL, Qian DW, et al. Renal protective effect and action mechanism of Huangkui capsule and its main five flavonoids. J Ethnopharmacol. 2017;206:152–159.
  • Chen SL, Guang-Li DU, Ding N, et al. Comparative study of Xiayuxue decoction and its ingredients recipe against porcine serum induced liver fibrosis in rats. Chinese J Exp Tradit Med Formulae. 2012;18:154–157.
  • Shao-Li C, Guang-Li D, Yan-Ping L, et al. Effect of “Xiayuxue decoction” and componential prescription on expressions of COL-Iα1 and TIMP-1 mRNA in Rats with immunologic hepatic fibrosis: a comparative study. Acta Univ Tradit Med Sin Pharmacol. 2012;26:82–85.
  • Cai S, Huo T, Xu J, et al. Effect of mitiglinide on Streptozotocin-induced experimental type 2 diabetic rats: a urinary metabonomics study based on ultra-performance liquid chromatography-tandem mass spectrometry. J Chromatogr B Analyt Technol Biomed Life Sci. 2009;877(29):3619–3624.
  • Yang J, Xu G, Zheng Y, et al. Diagnosis of liver cancer using HPLC-based metabonomics avoiding false-positive result from hepatitis and hepatocirrhosis diseases. J Chromatogr B Analyt Technol Biomed Life Sci. 2004;813(1–2):59–65.
  • Zhao X, Zhang Y, Meng X, et al. Effect of a traditional Chinese medicine preparation Xindi soft capsule on rat model of acute blood stasis: a urinary metabonomics study based on liquid chromatography-mass spectrometry. J Chromatogr B Analyt Technol Biomed Life Sci. 2008;873(2):151–158.
  • Ma C, Bi K, Zhang M, et al. Toxicology effects of morning glory seed in rat: a metabonomic method for profiling of urine metabolic changes. J Ethnopharmacol. 2010;130(1):134–142.
  • Chang H, Meng HY, Liu SM, et al. Identification of key metabolic changes during liver fibrosis progression in rats using a urine and serum metabolomics approach. Sci Rep. 2017;7(1):11433.
  • Zhao L, Dong M, Liao S, et al. Identification of key metabolic changes in renal interstitial fibrosis rats using metabonomics and pharmacology. Sci Rep. 2016;6:27194.
  • Ya BL, Li HF, Wang HY, et al. 5-HMF attenuates striatum oxidative damage via Nrf2/ARE signaling pathway following transient global cerebral ischemia. Cell Stress Chaperones. 2016;22(1):1–11.
  • Zhang ZH, Li MH, Liu D, et al. Rhubarb protect against tubulointerstitial fibrosis by inhibiting TGF-β/Smad pathway and improving abnormal metabolome in chronic kidney disease. Front Pharmacol. 2018;9:1029.
  • Zhang ZH, Vaziri ND, Wei F, et al. An integrated lipidomics and metabolomics reveal nephroprotective effect and biochemical mechanism of Rheum officinale in chronic renal failure. Sci Rep. 2016;6:22151.
  • Fang J, Wang W, Sun S, et al. Metabolomics study of renal fibrosis and intervention effects of total aglycone extracts of Scutellaria baicalensis in unilateral ureteral obstruction rats. J Ethnopharmacol. 2016;192:20–29.
  • Morizono H, Woolston JE, Colombini M, et al. The use of yeast mitochondria to study the properties of wild-type and mutant human mitochondrial ornithine transporter. Mol Genet Metab. 2005;86(4):431–440.
  • Linster CL, Van Schaftingen E. Vitamin C. Biosynthesis, recycling and degradation in mammals. FEBS J. 2007;274(1):1–22.
  • Camacho JA, Mardach R, Rioseco-Camacho N, et al. Clinical and functional characterization of a human ORNT1 mutation (T32R) in the hyperornithinemia-hyperammonemia-homocitrullinuria (HHH) syndrome. Pediatr Res. 2006;60(4):423–429.
  • Yang J, Ju W, Zeng F, et al. Experimental study of the effect of L-arginine to prevent the progression of tubulointerstitial fibrosis in obstructive uropathy. J Clin Urol. 2008;23(04):314–316.
  • Huang C, Wang W, Zhu H, et al. Effect of andrographolide on expression of hydroxyproline and PDGF in lung tissue of bleomycin-induced rat pulmonary fibrosis. Lishizhen Med Mater Med Res. 2012;23(04):904–907.
  • Fontecave M, Atta M, Mulliez E. S-adenosylmethionine: nothing goes to waste. Trends Biochem Sci. 2004;29(5):243–249.
  • Cao L, Lou X, Zhang Q, et al. Inhibitor of folic acid against hyperhomocysteine-induced glomerular fibrosis. Chinese J Pathophysiol. 2012;28(11):2111.
  • Li A, Shi Y, Xu L, et al. A possible synergistic effect of MTHFR C677T polymorphism on homocysteine level variations increased risk for ischemic stroke. Medicine. 2017;96(51):e9300.
  • Yi F, Li PL. Mechanisms of homocysteine-induced glomerular injury and sclerosis. Am J Nephrol. 2008;28(2):254–264.
  • Meyrier A, Hill GS, Simon P. Ischemic renal diseases: new insights into old entities. Kidney Int. 1998;54(1):2–13.
  • Kumagai H, Katoh S, Hirosawa K, et al. Renal tubulointerstitial injury in weanling rats with hyperhomocysteinemia. Kidney Int. 2002;62(4):1219–1228.
  • Li N, Chen YF, Zou AP. Implications of hyperhomocysteinemia in glomerular sclerosis in hypertension. Hypertension. 2002;39(2 Pt 2):443–448.
  • Vital-Lopez FG, Jaques R, Anders W, et al. Biofilm formation mechanisms of Pseudomonas aeruginosa predicted via genome-scale kinetic models of bacterial metabolism. PLOS Comput Biol. 2015;11(10):e1004452.
  • Hong C, Qing L, Bai WF, et al. Protective effects of Amygdalus mongolica on rats with renal fibrosis based on serum metabolomics. J Ethnopharmacol. 2020;257:11258.