Intake of Protocatechuic Acid Attenuates High-Fat Diet Induced Liver Inflammation via the Toll Like Receptor 4/Nuclear Factor κB Pathway

被引:1
|
作者
Jiao X. [1 ]
Li J. [1 ]
Li Y. [2 ]
Han L. [1 ]
Wang M. [1 ]
机构
[1] College of Food Science and Engineering, Northwest A&F University, Yangling
[2] Institute of Functional Food of Shanxi, Shanxi Agricultural University, Taiyuan
来源
Shipin Kexue/Food Science | 2023年 / 44卷 / 09期
关键词
hepatic inflammation; nuclear factor κB; protocatechuic acid; RNA sequencing; Toll like receptor 4;
D O I
10.7506/spkx1002-6630-20220620-204
中图分类号
学科分类号
摘要
Protocatechuic acid (PCA) is one of the main metabolites of anthocyanins in the body and has good anti-inflammatory activity. In this study, the protective effect of oral administration of PCA at a dose of 100 mg/(kg mb·d) on high-fat diet (HFD)-induced liver inflammation in C57BL/6J mice was investigated, and the underlying mechanism was investigated by in vitro experiments. In vivo studies showed that after 12 weeks of PCA intervention, the body mass and liver fat content of HFD-fed C57BL/6J mice were significantly reduced, and so were the levels of inflammatory factors such as interleukin (IL)-1β, IL-6, tumor necrosis factor α (TNF-α) and lipopolysaccharide (LPS) in serum and liver. In vitro transcriptome sequencing (RNA-Seq) and Western blot analysis of primary hepatocytes and livers demonstrated that PCA could significantly reduce the gene and protein expression of Toll like receptor 4 (TLR4), and then down-regulate the phosphorylation of nuclear transcription factor κB (NF-κB) inhibiting the expression of inflammatory factors such as IL-6. These results suggest that PCA can effectively improve HFD-induced liver inflammation, possibly by down-regulating the TLR4/NF-κB signaling pathway. © 2023 Chinese Chamber of Commerce. All rights reserved.
引用
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页码:72 / 81
页数:9
相关论文
共 28 条
  • [1] LI D T, WANG P P, LUO Y H, Et al., Health benefits of anthocyanins and molecular mechanisms: update from recent decade, Critical Reviews in Food Science and Nutrition, 57, 8, pp. 1729-1741, (2017)
  • [2] KRGA I, MILENKOVIC D., Anthocyanins: from sources and bioavailability to cardiovascular-health benefits and molecular mechanisms of action, Journal of Agricultural and Food Chemistry, 67, 7, pp. 1771-1783, (2019)
  • [3] MIN S W, RYU S N, KIM D H., Anti-inflammatory effects of black rice, cyanidin-3-O-β-D-glycoside, and its metabolites, cyanidin and protocatechuic acid, International Immunopharmacology, 10, 8, pp. 959-966, (2010)
  • [4] ORMAZABAL P, SCAZZOCCHIO B, VARI R, Et al., Effect of protocatechuic acid on insulin responsiveness and inflammation in visceral adipose tissue from obese individuals: possible role for PTP1B, International Journal of Obesity, 42, 12, pp. 2012-2021, (2018)
  • [5] ZHANG Q Z, DE MEJIA E G., Protocatechuic acid attenuates adipogenesis-induced inflammation and mitochondrial dysfunction in 3T3-L1 adipocytes by regulation of AMPK pathway, Journal of Functional Foods, 69, (2020)
  • [6] ADEDARA I A, FASINA O B, AYENI M F, Et al., Protocatechuic acid ameliorates neurobehavioral deficits via suppression of oxidative damage, inflammation, caspase-3 and acetylcholinesterase activities in diabetic rats, Food and Chemical Toxicology, 125, pp. 170-181, (2019)
  • [7] HU R Z, HE Z Y, LIU M, Et al., Dietary protocatechuic acid ameliorates inflammation and up-regulates intestinal tight junction proteins by modulating gut microbiota in LPS-challenged piglets, Journal of Animal Science and Biotechnology, 11, 1, (2020)
  • [8] SEMAMING Y, PANNENGPETCH P, CHATTIPAKORN S C, Et al., Pharmacological properties of protocatechuic acid and its potential roles as complementary medicine, Evidence-Based Complementary and Altrenative, 2015, (2015)
  • [9] HAN L, YANG Q, LI J, Et al., Protocatechuic acid-ameliorated endothelial oxidative stress through regulating acetylation level via CD36/AMPK pathway, Journal of Agricultural and Food Chemistry, 67, 25, pp. 7060-7072, (2019)
  • [10] VERNIA S, CAVANAGH-KYROS J, GARCIA-HARO L, Et al., The PPARα-FGF21 hormone axis contributes to metabolic regulation by the hepatic JNK signaling pathway, Cell Metabolism, 3, 20, pp. 512-515, (2014)