Salvianolic acid A attenuates inflammation-mediated atherosclerosis by suppressing GRP78 secretion of endothelial cells

被引:3
|
作者
Fan, Xiaxia
Zhang, Lichao [1 ]
La, Xiaoqin [1 ]
Tian, Jinmiao
Israr, Ghani
Li, Aiping [2 ]
Wu, Changxin [1 ]
An, Yuxuan
Li, Songtao
Dong, Xiushan [3 ,4 ]
Li, Zhuoyu [1 ,5 ]
机构
[1] Shanxi Univ, Inst Biotechnol, Taiyuan 030006, Peoples R China
[2] Shanxi Univ, Inst Biomed Sci, Taiyuan 030006, Peoples R China
[3] Shanxi Univ, Modern Res Ctr Tradit Chinese Med, Taiyuan 030006, Peoples R China
[4] Shanxi Acad Med Sci, Shanxi Bethune Hosp, Dept Gen Surg, Taiyuan 030006, Peoples R China
[5] Shanxi Univ, Inst Biotechnol, Key Lab Chem Biol & Mol Engn, Natl Minist Educ, Taiyuan, Peoples R China
基金
中国国家自然科学基金; 山西省青年科学基金;
关键词
Inflammation; Macrophage; Secretory GRP78; Salvianolic acid A; Atherosclerosis; PROLIFERATION; MILTIORRHIZA; PATHOGENESIS; MACROPHAGES; DYSFUNCTION; PREVENTION; DANSHEN;
D O I
10.1016/j.jep.2023.116219
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Ethnopharmacological relevance: Salvianolic acid A (SAA) is the main active component of the classic anti -atherosclerotic drug Salvia miltiorrhiza Bunge. Inflammation-induced infiltration of monocyte/macrophages into the vascular wall is the initiating step in atherogenesis, and targeted blocking of this step may provide a promising avenue for the precise treatment of atherosclerosis. However, the effect of salvianolic acid A on macrophages is still unknown. Aim of the study: To evaluate the effect of SAA on macrophage infiltration and the underlying mechanism of SAA against atherosclerosis. Materials and methods: Vascular endothelial cells were stimulated with lipopolysaccharide (LPS) to simulate the inflammatory environment, and its effect on monocyte/macrophages was evaluated. Mass spectrometry was used to identify the proteins that play a key role and further validated them. LncRNA sequencing, western blot analysis, RNA immunoprecipitation, and RNA pulldown were used to elucidate the mechanism of SAA against atherosclerosis. Finally, ApoE-/-mice were fed a high-fat diet to creat an in vivo atherosclerosis model. Secretory GRP78 content, lipid levels, plaque area, macrophage infiltration, and degree of inflammation were assessed by standard assays after 16 weeks of intragastric administration of SAA or biweekly tail vein injections of GRP78 antibody. Results: After LPS stimulation, the increased secretion of GRP78 recruits circulating monocyte/macrophages and drives monocyte/macrophage adhesion and invasion into the vascular intima to promote atherosclerosis pro-gression. Interestingly, SAA exerts anti-atherosclerosis effects by inhibiting the secretion of GRP78. Further mechanistic studies indicated that SAA upregulates the expression of lncRNA NR2F2-AS1, which reverses the abnormal localization of the KDEL receptor (KDELR) caused by inflammation. It promotes the homing of GRP78 from the Golgi apparatus to the endoplasmic reticulum rather than secreting outside the cell. Conclusion: SAA alleviates atherosclerosis by inhibiting GRP78 secretion via the lncRNA NR2F2-AS1-KDELR axis. The findings not only provide a new direction for the precise therapy of atherosclerosis based on secretory GRP78 but also elucidate the pharmacological mechanism of SAA against atherosclerosis, putting the foundation for further development and clinical application of SAA drugs.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Effects of Salvianolic acid on proliferation, adhesion and NO secretion activity of human peripheral endothelial progenitor cells
    Yan Feng-Di
    He Shenghu
    JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2014, 64 (16) : C35 - C35
  • [32] Salvianolic acid B protects endothelial cells from oxidant-mediated damage
    LI Xue-jun(Department of Pharmacology
    沈阳药科大学学报, 2008, 25(S1) (S1) : 8 - 8
  • [33] Salvianolic acid B protects endothelial cells from oxidant-mediated damage
    Wu Hong-li
    Li Xue-Jun
    JOURNAL OF PHARMACOLOGICAL SCIENCES, 2009, 109 : 230P - 230P
  • [34] Transient Knock Down of Grp78 Reveals Roles in Serum Ferritin Mediated Pro-inflammatory Cytokine Secretion in Rat Primary Activated Hepatic Stellate Cells
    Wang, Chi-Mei
    Li, Shan-Jen
    Wu, Chi-Hao
    Hu, Chien-Ming
    Cheng, Hui-Wen
    Chang, Jung-Su
    ASIAN PACIFIC JOURNAL OF CANCER PREVENTION, 2014, 15 (02) : 605 - 610
  • [35] Homocysteine-respondent genes in vascular endothelial cells identified by differential display analysis - GRP78/BiP and novel genes
    Kokame, K
    Kato, H
    Miyata, T
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (47) : 29659 - 29665
  • [36] Betulinic acid and its ionic derivatives impaired growth of prostate cancer cells without induction of GRP78 and CHOP
    Williams, Alexus
    Smith, Keshawna
    Bhuiyan, Zarin
    Phillips, Jasmine
    Zhao, Hua
    Nitta, Takayuki
    CURRENT ISSUES IN PHARMACY AND MEDICAL SCIENCES, 2022, 35 (04) : 163 - 168
  • [37] GRP78 positively regulates estrogen-stimulated cell growth mediated by ER-α36 in gastric cancer cells
    Fu, Zhengqi
    Wang, Xuming
    Zhou, Hongyan
    Li, Yan
    Chen, Ying
    Wang, Zhaoyi
    Liu, Lijiang
    MOLECULAR MEDICINE REPORTS, 2017, 16 (06) : 8329 - 8334
  • [38] Licochalcone A induces endoplasmic reticulum stress-mediated apoptosis of endometrial cancer cells via upregulation of GRP78 expression
    Wu, Min-Hua
    Hsieh, Yi-Hsien
    Lin, Chia-Liang
    Ying, Tsung-Ho
    Hsia, Shih-Min
    Hsieh, Shu-Ching
    Lee, Chien-Hsing
    Lin, Chu-Liang
    ENVIRONMENTAL TOXICOLOGY, 2024, 39 (05) : 2961 - 2969
  • [39] The ER Chaperone GRP78 is Associated with the Severity of Cerulein-Induced Pancreatic Inflammation via Regulating Apoptosis of Pancreatic Acinar Cells
    Liu, Yong
    Zhou, Zong-Guang
    Chen, Ke-Ling
    Zhou, Bing
    Yang, Lie
    Yan, Hui
    Li, Yuan
    HEPATO-GASTROENTEROLOGY, 2012, 59 (118) : 1670 - 1676
  • [40] GRP78, but Not Protein-disulfide Isomerase, Partially Reverses Hyperglycemia-induced Inhibition of Insulin Synthesis and Secretion in Pancreatic β-Cells
    Zhang, Liling
    Lai, Elida
    Teodoro, Tracy
    Volchuk, Allen
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (08) : 5289 - 5298