MIR-107/HMGB1/FGF-2 axis responds to excessive mechanical stretch to promote rapid repair of vascular endothelial cells.
暂无分享,去创建一个
Ji-qiang Guo | Yaru Jia | Yang Liu | Mei-wen An | Ziwei Liang | Haiyang Ma | Li Wang | T. Yang | Haoyu Sun | Qing Yu | Yajing Wang | Bin Niu | Ziwei Liang
[1] Jiqiang Guo,et al. HMGB1/RAGE axis accelerates the repair of HUVECs injured by pathological mechanical stretching via promoting bFGF expression. , 2022, Biochemical and biophysical research communications.
[2] Li-Ling Wu,et al. Soluble epoxide hydrolase inhibitors, t-AUCB, improves salivary gland function by ameliorating endothelial injury. , 2022, Life sciences.
[3] A. Jurko,et al. Early Signs of Microvascular Endothelial Dysfunction in Adolescents with Newly Diagnosed Essential Hypertension , 2022, Life.
[4] Suli Huang,et al. Epigenetic regulation in cardiovascular disease: mechanisms and advances in clinical trials , 2022, Signal Transduction and Targeted Therapy.
[5] Junchao Duan,et al. Accumulated oxidative stress risk in HUVECs by chronic exposure to non-observable acute effect levels of PM2.5. , 2022, Toxicology in vitro : an international journal published in association with BIBRA.
[6] Sheng Li,et al. Endothelial Dysfunction and Diabetic Cardiomyopathy , 2022, Frontiers in Endocrinology.
[7] J. Shyy,et al. Endothelial-derived extracellular microRNA-92a promotes arterial stiffness by regulating phenotype changes of vascular smooth muscle cells , 2022, Scientific Reports.
[8] Farzaneh A. Sorond,et al. Hypertension-induced cognitive impairment: from pathophysiology to public health , 2021, Nature Reviews Nephrology.
[9] Wenyan Jiang,et al. Effects of Atrial Fibrillation-Derived Exosome Delivery of miR-107 to Human Umbilical Vein Endothelial Cells. , 2021, DNA and cell biology.
[10] Jie Liu,et al. Circular RNA PPP1CC promotes Porphyromonas gingivalis-lipopolysaccharide-induced pyroptosis of vascular smooth muscle cells by activating the HMGB1/TLR9/AIM2 pathway , 2021, The Journal of international medical research.
[11] M. Iruela-Arispe,et al. Mechanisms of Endothelial Regeneration and Vascular Repair and Their Application to Regenerative Medicine , 2020, The American Journal of Pathology.
[12] H. Yanagisawa,et al. The molecular mechanism of mechanotransduction in vascular homeostasis and disease. , 2020, Clinical science.
[13] M. Wei,et al. The Role of miR-107 as a Potential Biomarker and Cellular Factor for Acute Aortic Dissection. , 2020, DNA and cell biology.
[14] Xiao-bin Xie,et al. CircCFL1/MiR-107 Axis Targeting HMGB1 Promotes the Malignant Progression of Diffuse Large B-Cell Lymphoma Tumors , 2020, Cancer management and research.
[15] Yi Cheng,et al. Circulating miR-3135b and miR-107 are potential biomarkers for severe hypertension , 2020, Journal of Human Hypertension.
[16] Xiaohong Zhu,et al. VX765 Attenuates Pyroptosis and HMGB1/TLR4/NF-κB Pathways to Improve Functional Outcomes in TBI Mice , 2020, Oxidative medicine and cellular longevity.
[17] Jiang He,et al. The global epidemiology of hypertension , 2020, Nature Reviews Nephrology.
[18] A. Tajbakhsh,et al. Efferocytosis and Atherosclerosis: Regulation of Phagocyte Function by MicroRNAs , 2019, Trends in Endocrinology & Metabolism.
[19] Ying Zhang,et al. HMGB1/RAGE pro-inflammatory axis promotes vascular endothelial cell apoptosis in limb ischemia/reperfusion injury. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[20] D. R. Rios,et al. Effect of Different Classes of Antihypertensive Drugs on Endothelial Function and Inflammation , 2019, International journal of molecular sciences.
[21] M. Goumans,et al. The role of hemodynamics in bicuspid aortopathy: a histopathologic study. , 2019, Cardiovascular pathology : the official journal of the Society for Cardiovascular Pathology.
[22] K. Birukov,et al. Mechanosensing and Mechanoregulation of Endothelial Cell Functions. , 2019, Comprehensive Physiology.
[23] Li-ping Zhu,et al. HMGB1 is mechanistically essential in the development of experimental pulmonary hypertension. , 2019, American journal of physiology. Cell physiology.
[24] Jie Gu,et al. microRNA‐107 protects against inflammation and endoplasmic reticulum stress of vascular endothelial cells via KRT1‐dependent Notch signaling pathway in a mouse model of coronary atherosclerosis , 2018, Journal of cellular physiology.
[25] W. Zhou,et al. microRNAs‐107 inhibited autophagy, proliferation, and migration of breast cancer cells by targeting HMGB1 , 2018, Journal of cellular biochemistry.
[26] Ana Kozomara,et al. miRBase: from microRNA sequences to function , 2018, Nucleic Acids Res..
[27] I. MacRae,et al. Regulation of microRNA function in animals , 2018, Nature Reviews Molecular Cell Biology.
[28] D. Brenner,et al. Sphingosine kinase 1 promotes liver fibrosis by preventing miR‐19b‐3p‐mediated inhibition of CCR2 , 2018, Hepatology.
[29] X. Zou,et al. The differentiation of mesenchymal stem cells to vascular cells regulated by the HMGB1/RAGE axis: its application in cell therapy for transplant arteriosclerosis , 2018, Stem Cell Research & Therapy.
[30] Shenming Wang,et al. Mir-22-3p Inhibits Arterial Smooth Muscle Cell Proliferation and Migration and Neointimal Hyperplasia by Targeting HMGB1 in Arteriosclerosis Obliterans , 2017, Cellular Physiology and Biochemistry.
[31] S. Palaniyandi,et al. Modulation of Macrophage Polarization and HMGB1-TLR2/TLR4 Cascade Plays a Crucial Role for Cardiac Remodeling in Senescence-Accelerated Prone Mice , 2016, PloS one.
[32] Guofeng Li,et al. GW26-e0191 Altitude difference of HMGB1, Fetuin-A in the patients with congestive heart failure and effects on ventricular remodeling , 2015 .
[33] C. Lei,et al. HMGB1 may act via RAGE to promote angiogenesis in the later phase after intracerebral hemorrhage , 2015, Neuroscience.
[34] Lei Wu,et al. Increased serum HMGB1 level may predict the fatal outcomes in patients with chronic heart failure. , 2015, International journal of cardiology.
[35] Haichao Wang,et al. HMGB1 in health and disease. , 2014, Molecular aspects of medicine.
[36] F. Kiessling,et al. MicroRNA-126-5p promotes endothelial proliferation and limits atherosclerosis by suppressing Dlk1 , 2014, Nature Medicine.
[37] Shu Chien,et al. Regulation of Vascular Smooth Muscle Cell Turnover by Endothelial Cell–Secreted MicroRNA-126: Role of Shear Stress , 2013, Circulation research.
[38] A. Lochner,et al. Endothelial dysfunction: the early predictor of atherosclerosis , 2012, Cardiovascular journal of Africa.
[39] G. Lip,et al. The effects of exercise stress testing on soluble E‐selectin, von Willebrand factor, and circulating endothelial cells as indices of endothelial damage/dysfunction , 2008, Annals of medicine.
[40] C. Iadecola,et al. Cerebrovascular Nitrosative Stress Mediates Neurovascular and Endothelial Dysfunction Induced by Angiotensin II , 2006, Arteriosclerosis, thrombosis, and vascular biology.
[41] G. Davı̀,et al. Endothelial dysfunction and oxidative stress in arterial hypertension. , 2006, Nutrition, metabolism, and cardiovascular diseases : NMCD.
[42] M. Presta,et al. Cutting Edge: Extracellular High Mobility Group Box-1 Protein Is a Proangiogenic Cytokine1 , 2006, The Journal of Immunology.
[43] K. Tracey,et al. The cytokine activity of HMGB1 , 2005, Journal of leukocyte biology.
[44] I. Zachary,et al. The vascular endothelial growth factor (VEGF) family: angiogenic factors in health and disease , 2005, Genome Biology.
[45] P. Bacon. Endothelial cell dysfunction in systemic vasculitis: new developments and therapeutic prospects , 2005, Current opinion in rheumatology.
[46] N. Kalinina,et al. Increased Expression of the DNA-Binding Cytokine HMGB1 in Human Atherosclerotic Lesions: Role of Activated Macrophages and Cytokines , 2004 .
[47] V. Ambros. The functions of animal microRNAs , 2004, Nature.
[48] D. Bartel. MicroRNAs Genomics, Biogenesis, Mechanism, and Function , 2004, Cell.
[49] R. Budhiraja,et al. Endothelial Dysfunction in Pulmonary Hypertension , 2004, Circulation.
[50] R. Lederman,et al. Testing clinical therapeutic angiogenesis using basic fibroblast growth factor (FGF‐2) , 2003, British journal of pharmacology.
[51] P. Libby,et al. Inflammation and Atherosclerosis , 2002, Circulation.
[52] T. Ogihara,et al. Impaired endothelial function with essential hypertension assessed by ultrasonography. , 1996, American heart journal.
[53] Xiao-fan Guo,et al. Analysis of alterations of serum inflammatory cytokines and fibrosis makers in patients with essential hypertension and left ventricular hypertrophy and the risk factors. , 2022, American journal of translational research.
[54] J. Lorente,et al. New insights into the mechanisms of pulmonary edema in acute lung injury. , 2018, Annals of translational medicine.
[55] G. Garcı́a-Cardeña,et al. Vascular endothelium, hemodynamics, and the pathobiology of atherosclerosis. , 2013, Cardiovascular pathology : the official journal of the Society for Cardiovascular Pathology.