1 |
Costantino S,,Paneni F.The epigenome in atherosclerosis[EB/OL].(2021-01-21)[2021-11-15].
URL
|
2 |
Shi H,,Ossip DJ,,Mayo NL,et al.Role of DNA methylation on the association between physical activity and cardiovascular diseases:results from the longitudinal multi-ethnic study of atherosclerosis(MESA) cohort[J]. BMC Genomics,2021,22(1):790.
|
3 |
Kim JY,,Choi BG,,Jelinek J,et al.Promoter methylation changes in ALOX12 and AIRE1:novel epigenetic markers for atherosclerosis[J].Clin Epigenetics,2020,12(1):66.
|
4 |
Dor Y,,Cedar H.Principles of DNA methylation and their implications for biology and medicine[J].Lancet,2018,392(10149):777-786.
|
5 |
Mussbacher M,,Salzmann M,,Brostjan C,et al.Cell type-specific roles of NF-κB linking inflammation and thrombosis[J].Front Immunol,2019(10):85.
|
6 |
Abedimanesh N,,Motlagh B,,Abedimanesh S,et al.Effects of crocin and saffron aqueous extract on gene expression of SIRT1,AMPK,LOX1,NF-κB,and MCP-1 in patients with coronary artery disease:a randomized placebo-controlled clinical trial[J].Phytother Res,2020,34(5):1114-1122.
|
7 |
Yang C,,Xiao X,,Huang L,et al.Role of Kruppel-like factor 4 in atherosclerosis[J].Clin Chim Acta,2021(512):135-141.
|
8 |
Chu HR,,Sun YC,,Gao Y,et al.Function of Krüppel-like factor 2 in the shear stress-induced cell differentiation of endothelial progenitor cells to endothelial cells[J]. Mol Med Rep,2019,19(3):1739-1746.
|
9 |
Kumar A,,Kumar S,,Vikram A,et al.Histone and DNA methylation-mediated epigenetic downregulation of endothelial kruppel-like factor 2 by low-density lipoprotein cholesterol[J].Arterioscler Thromb Vasc Biol,2013,33(8):1936-1942.
|
10 |
Shafi O.Switching of vascular cells towards atherogenesis,and other factors contributing to atherosclerosis:a systematic review[J].Thromb J,2020,18(1):28.
|
11 |
Cao W,,Huang H,,Xia T,et al.Homeobox a5 promotes white adipose tissue browning through inhibition of the tenascin c/toll-like receptor 4/nuclear factor kappa b inflammatory signaling in mice[J].Front Immunol, 2018(9):647.
|
12 |
Zhang YP,,Huang YT,,Huang TS,et al.The mammalian target of rapamycin and DNA methyltransferase 1 axis mediates vascular endothelial dysfunction in response to disturbed flow[J].Sci Rep,2017,7(1):14996.
|
13 |
Kattoor AJ,,Pothineni NVK,,Palagiri D,et al.Oxidative stress in atherosclerosis[J].Curr Atheroscler Rep,2017,19(11):42.
|
14 |
Tabaei S,,Tabaee SS.DNA methylation abnormalities in atherosclerosis[J].Artif Cells Nanomed Biotechnol,2019,47(1):2031-2041.
|
15 |
Turk PW,,Laayoun A,,Smith SS,et al.DNA adduct 8-hydroxyl-2’-deoxyguanosine(8-hydroxyguanine)affects function of human DNA methyltransferase[J].Carcinogenesis,1995,16(5):1253-1255.
|
16 |
Griffiths EA,,Gore SD.MicroRNA:mIR-ly regulators of DNMT?[J].Blood,2009,113(25):6269-6270.
|
17 |
Lee DY,,Chiu JJ.Atherosclerosis and flow:roles of epigenetic modulation in vascular endothelium[J].J Biomed Sci,2019,26(1):56.
|
18 |
Souilhol C,,Serbanovic-Canic J,,Fragiadaki M,et al.Endothelial responses to shear stress in atherosclerosis:a novel role for developmental genes[J].Nat Rev Cardiol,2020,17(1):52-63.
|
19 |
Rashad S,,Han X,,Saqr K,et al. Epigenetic response of endothelial cells to different wall shear stress magnitudes:a report of new mechano-miRNAs[J]. J Cell Physiol, 2020,235(11):7827-7839.
|
20 |
Nigro P,,Abe J,,Berk BC.Flow shear stress and atherosclerosis:a matter of site specificity[J].Antioxid Redox Signal,2011,15(5):1405-1414.
|
21 |
Dunn J,,Qiu H,,Kim S,et al.Flow-dependent epigenetic DNA methylation regulates endothelial gene expression and atherosclerosis[J].J Clin Invest,2014,124(7):3187-3199.
|
22 |
Yunna C,,Mengru H,,Lei W,et al.Macrophage M1/M2 polarization[J].Eur J Pharmacol,2020(877):173090.
|
23 |
Tang RZ,,Zhu JJ,,Yang FF,et al.DNA methyltransferase 1 and krüppel-like factor 4 axis regulates macrophage inflammation and atherosclerosis[J].J Mol Cell Cardiol,2019(128):11-24.
|
24 |
Chen SY,,Chen YZ,,Lee YJ,et al.Maternal hypercholesterolemia exacerbates atherosclerosis lesions in female offspring through potentiating macrophage polarization toward an inflammatory M1 phenotype[J].J Nutr Biochem,2021(90):108575.
|
25 |
Zhao JF,,Shyue SK,,Lin SJ,et al.Excess nitric oxide impairs LXR(α)-ABCA1-dependent cholesterol efflux in macrophage foam cells[J].J Cell Physiol,2014,229(1):117-125.
|
26 |
Li X,,Zhang Q,,Ding Y,et al.Methyltransferase dnmt3a upregulates HDAC9 to deacetylate the kinase TBK1 for activation of antiviral innate immunity[J].Nat Immunol,2016,17(7):806-815.
|
27 |
Frismantiene A,,Philippova M,,Erne P,et al.Smooth muscle cell-driven vascular diseases and molecular mechanisms of VSMC plasticity[J].Cell Signal,2018,52:48-64.
|
28 |
Basatemur GL,,J?rgensen HF,,Clarke MCH,et al.Vascular smooth muscle cells in atherosclerosis[J].Nat Rev Cardiol,2019,16(12):727-744.
|
29 |
Durham AL,,Speer MY,,Scatena M,et al.Role of smooth muscle cells in vascular calcification:implications in atherosclerosis and arterial stiffness[J].Cardiovasc Res,2018,114(4):590-600.
|
30 |
Ma Z,,Mao C,,Jia Y,et al.Extracellular matrix dynamics in vascular remodeling[J].Am J Physiol Cell Physiol,2020,319(3):C481-C499.
|
31 |
Montes de Oca A,,Madueño JA,,Martinez-Moreno JM,et al.High-phosphate-induced calcification is related to SM22α promoter methylation in vascular smooth muscle cells[J].J Bone Miner Res,2010,25(9):1996-2005.
|
32 |
Brown BA,,Williams H,,George SJ.Evidence for the Involvement of matrix-degrading metalloproteinases(MMPs) in atherosclerosis[J].Prog Mol Biol Transl Sci,2017(147):197-237.
|
33 |
Johnson JL.Metalloproteinases in atherosclerosis[J].Eur J Pharmacol,2017(816):93-106.
|
34 |
Azechi T,,Sato F,,Sudo R,et al.5-aza-2’-deoxycytidine,a DNA methyltransferase inhibitor, facilitates the inorganic phosphorus-induced mineralization of vascular smooth muscle cells[J].J Atheroscler Thromb,2014,21(5):463-476.
|
35 |
Zhuang J,,Luan P,,Li H,et al.The yin-yang dynamics of DNA methylation is the key regulator for smooth muscle cell phenotype switch and vascular remodeling[J].Arterioscler Thromb Vasc Biol,2017,37(1):84-97.
|
36 |
Kaplan P,,Tatarkova Z,,Sivonova MK,et al.Homocysteine and mitochondria in cardiovascular and cerebrovascular dystems[J].Int J Mol Sci,2020,21(20):7698.
|
37 |
Ma SC,,Hao YJ,,Jiao Y,et al.Homocysteine-induced oxidative stress through TLR4/NF-κB/DNMT1-mediated LOX-1 DNA methylation in endothelial cells[J].Mol Med Rep,2017,16(6):9181-9188.
|
38 |
Jiang Y,,Sun T,,Xiong J,et al.Hyperhomocysteinemia-mediated DNA hypomethylation and its potential epigenetic role in rats[J].Acta Biochim Biophys Sin (Shanghai),2007,39(9):657-667.
|
39 |
Han XB,,Zhang HP,,Cao CJ,et al.Aberrant DNA methylation of the PDGF gene in homocysteine?mediated VSMC proliferation and its underlying mechanism[J].Mol Med Rep,2014,10(2):947-954.
|
40 |
Perła-Kaján J,,Jakubowski H.Dysregulation of epigenetic mechanisms of gene expression in the pathologies of hyperhomocysteinemia[J].Int J Mol Sci,2019,20(13):3140.
|
41 |
Xie SA,,Zhang T,,Wang J,et al.Matrix stiffness determines the phenotype of vascular smooth muscle cell in vitro and in vivo:role of DNA methyltransferase 1[J].Biomaterials,2018(155):203-216.
|
42 |
Wei L,,Zhao S,,Wang G,et al.SMAD7 methylation as a novel marker in atherosclerosis[J].Biochem Biophys Res Commun,2018,496(2):700-705.
|