Sirt4 deficiency promotes the development of atherosclerosis by activating the NF-κB/IκB/CXCL2/3 pathway

被引:15
|
作者
Chang, Shuting [1 ,2 ]
Zhang, Guanzhao [1 ]
Li, Lanlan [3 ]
Li, Haiying [4 ]
Jin, Xiaodong [5 ]
Wang, Yunshan [6 ]
Li, Bo [1 ]
机构
[1] Binzhou Med Coll, Dept Cardiol, Zibo Cent Hosp, 10 South Shanghai Rd, Zibo, Peoples R China
[2] Weifang Med Univ, 7166 Baotong West St, Weifang, Peoples R China
[3] Zibo Cent Hosp, Ctr Translat Med, 10 South Shanghai Rd, Zibo, Peoples R China
[4] Zibo Cent Hosp, Med Dept, 10 South Shanghai Rd, Zibo, Peoples R China
[5] Zibo Cent Hosp, Dept Geriatr, 10 South Shanghai Rd, Zibo, Peoples R China
[6] Shandong First Med Univ, Dept Clin Lab, Shandong Prov Hosp, Jinan, Peoples R China
关键词
Sirt4; Atherosclerosis; NF-kappa B; CXCL2; CXCL3; Macrophages; NF-KAPPA-B; CHEMOKINES; EXPRESSION; TARGET; INFLAMMATION; MECHANISMS; MICE;
D O I
10.1016/j.atherosclerosis.2023.04.006
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background and aims: As a member of mitochondrial sirtuins, Sirt4 plays a vital role in cellular metabolism and intracellular signal transduction; however, its effect on atherosclerosis is unclear. This study aimed to explore the effect of Sirt4 on atherosclerosis and its underlying mechanism. Methods: In vivo, Apoe(- /-) and Apoe(- /-)/Sirt4(-/-) micewere fed a high-fat diet to induce atherosclerosis. In vitro, peritoneal macrophages from two mouse types were extracted and treated with oxidized low-density lipoprotein to establish a cell model, THP-1 cells were used to observe the effect of Sirt4 on the adhesion ability of monocytes. The growth and composition of aortic plaques in two mouse types were analyzed by H&E staining, Oil Red O staining, Dil oxidized low-density lipoprotein, immunohistochemistry, real-time quantitative polymerase chain reaction and enzyme-linked immunosorbent assay. Transcriptome analysis and Western blotting were performed to explore the specific mechanism. Results: Sirt4 deficiency aggravated atherosclerosis in mice. In vivo, aortic plaque size, lipid content, and expression of related inflammatory factors in Apoe(-/-)/Sirt4(-/-)mice were higher than those in the control group, whereas the content of collagen I and smooth muscle actin-a was significantly lower. Sirt4-deficient macrophages exhibited stronger lipid phagocytosis in vitro, and the adhesion ability of monocytes increased when Sirt4 expression decreased. Transcriptome analysis showed that the expression of CXCL2 and CXCL3 in Sirt4-deficient peritoneal macrophages increased significantly, which may play a role by activating the NF-kappa B pathway. In further analysis, the results in vitro and in vivo showed that the expression of VCAM-1 and pro-inflammatory factors, such as IL-6, TNF-alpha and IL-1 beta, increased, whereas the expression of anti-inflammatory factor IL-37 decreased in Sirt4-deficient peritoneal macrophages and tissues. After blocking the effect with NK-kappa B inhibitor BAY11-7082, the inflammatory reaction in sirt4 deficient macrophages was also significantly decreased. Conclusions: This study demonstrates that Sirt4 deficiency promotes the development of atherosclerosis by activating the NF-kappa B/I kappa B/CXCL2/3 pathway, suggesting that Sirt4 may exhibit a protective effect in atherosclerosis, which provides a new strategy for clinical prevention and treatment of atherosclerosis.
引用
收藏
页码:29 / 37
页数:9
相关论文
共 50 条
  • [1] CIP2A promotes bronchiolitis obliterans by activating the NF-κB pathway
    Zhou, Xu
    Zhao, Xingyou
    Li, Yanning
    Zhang, Baoqing
    MOLECULAR MEDICINE REPORTS, 2025, 31 (04)
  • [2] Fbxw11 promotes leukemia development by activating the NF-κB signaling pathway
    Wang, Lina
    Liao, Jinfeng
    Yang, Xiao
    Feng, Wenli
    Chen, Shayan
    Zheng, Guoguang
    CANCER RESEARCH, 2014, 74 (19)
  • [3] Minichromosome maintenance 3 promotes hepatocellular carcinoma radioresistance by activating the NF-κB pathway
    Qing Yang
    Binhui Xie
    Hui Tang
    Wei Meng
    Changchang Jia
    Xiaomei Zhang
    Yi Zhang
    Jianwen Zhang
    Heping Li
    Binsheng Fu
    Journal of Experimental & Clinical Cancer Research, 38
  • [4] NF-κB and STAT1 control CXCL1 and CXCL2 gene transcription
    Burke, Susan J.
    Lu, Danhong
    Sparer, Tim E.
    Masi, Thomas
    Goff, Matthew R.
    Karlstad, Michael D.
    Collier, J. Jason
    AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2014, 306 (02): : E131 - E149
  • [5] AHNAK2 promotes thyroid carcinoma progression by activating the NF-κB pathway
    Ye, Runyi
    Liu, Dongwei
    Guan, Hongyu
    AiErken, NiJiati
    Fang, Zeng
    Shi, Yawei
    Zhang, Yunjian
    Wang, Shenming
    LIFE SCIENCES, 2021, 286
  • [6] Colonic Epithelial PHLPP2 Deficiency Promotes Colonic Epithelial Pyroptosis by Activating the NF-κB Signaling Pathway
    Li, De-feng
    Chang, Xin
    Zhao, Jiu-long
    Chen, Xuan-min
    Xu, Zheng-lei
    Zhang, Ding-guo
    Wu, Ben-hua
    Wang, Li-sheng
    Bai, Yu
    Yao, Jun
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2021, 2021
  • [7] SIRT4 suppresses the PI3K/Akt/NF-κB signaling pathway and attenuates HUVEC injury induced by oxLDL
    Tao, Yu
    Yu, Songping
    Chao, Min
    Wang, Yang
    Xiong, Jianhua
    Lai, Hengli
    MOLECULAR MEDICINE REPORTS, 2019, 19 (06) : 4973 - 4979
  • [8] Correction to: Minichromosome maintenance 3 promotes hepatocellular carcinoma radioresistance by activating the NF-κB pathway
    Qing Yang
    Binhui Xie
    Hui Tang
    Wei Meng
    Changchang Jia
    Xiaomei Zhang
    Yi Zhang
    Jianwen Zhang
    Heping Li
    Binsheng Fu
    Journal of Experimental & Clinical Cancer Research, 38
  • [9] The protective effects of activating Sirt1/NF-κB pathway for neurological disorders
    Song, Yanhong
    Wu, Ziyi
    Zhao, Ping
    REVIEWS IN THE NEUROSCIENCES, 2022, 33 (04) : 427 - 438
  • [10] hCLOCK induction by hypoxia promotes inflammatory responses by activating the NF-κB pathway
    Tang, Xiao
    Guo, Daqiao
    Lin, Changpo
    Shi, Zhenyu
    Qian, Ruizhe
    Fu, Weiguo
    Liu, Jianjun
    Li, Xu
    Fan, Longhua
    MOLECULAR MEDICINE REPORTS, 2017, 15 (03) : 1401 - 1406