Noncoding RNAs in age-related cardiovascular diseases
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Y. Devaux | F. Pinet | C. Gaetano | E. Robinson | A. Jusic | S. Tual-Chalot | K. Stellos | S. Dogan | R. Farrugia | S. B. Wettinger | B. Tuna | P. Thomas
[1] Ziyao Wang,et al. CircRNA 010567 plays a significant role in myocardial infarction via the regulation of the miRNA-141/DAPK1 axis , 2021, Journal of thoracic disease.
[2] G. Shan,et al. Identification and detection of mecciRNAs. , 2021, Methods.
[3] U. Sen,et al. Exogenous hydrogen sulfide and miR-21 antagonism attenuates macrophage-mediated inflammation in ischemia reperfusion injury of the aged kidney , 2021, GeroScience.
[4] Burton B. Yang,et al. YAP Circular RNA, circYap, Attenuates Cardiac Fibrosis via Binding with Tropomyosin-4 and Gamma-Actin Decreasing Actin Polymerization , 2020, Molecular therapy : the journal of the American Society of Gene Therapy.
[5] Sathish Kumar Jayapal,et al. Global Burden of Cardiovascular Diseases and Risk Factors, 1990–2019 , 2020, Journal of the American College of Cardiology.
[6] Z. Zhong,et al. CircRNAs open a new era in the study of cardiovascular disease (Review) , 2020, International journal of molecular medicine.
[7] Weili Zhang,et al. MicroRNA-216a Promotes Endothelial Inflammation by Smad7/IκBα Pathway in Atherosclerosis , 2020, Disease markers.
[8] S. Solomon,et al. Novel antisense therapy targeting microRNA-132 in patients with heart failure: results of a first-in-human Phase 1b randomized, double-blind, placebo-controlled study , 2020, European heart journal.
[9] Y. Devaux,et al. CDR132L: another brick in the wall towards the use of miRNAs to treat cardiovascular disease. , 2020, European heart journal.
[10] J. Brosius,et al. Circular RNA Encoded Amyloid Beta peptides—A Novel Putative Player in Alzheimer’s Disease , 2020, Cells.
[11] Y. Devaux,et al. Transcriptomics Research to Improve Cardiovascular Healthcare. , 2020, European heart journal.
[12] Zhiyong Guo,et al. Targeting Mitochondria-Located circRNA SCAR Alleviates NASH via Reducing mROS Output , 2020, Cell.
[13] R. Jha,et al. A long non‐coding RNA GATA6‐AS1 adjacent to GATA6 is required for cardiomyocyte differentiation from human pluripotent stem cells , 2020, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[14] H. Oshiumi,et al. Aging-Associated Extracellular Vesicles Contain Immune Regulatory microRNAs Alleviating Hyperinflammatory State and Immune Dysfunction in the Elderly , 2020, iScience.
[15] Fen Li,et al. Knockdown of KCNQ1OT1 attenuates cardiac hypertrophy through modulation of the miR-2054/AKT3 axis , 2020, Journal of thoracic disease.
[16] Yi Zeng,et al. MDM2 contributes to oxidized low-density lipoprotein-induced inflammation through modulation of mitochondrial damage in endothelial cells. , 2020, Atherosclerosis.
[17] A. Bonfigli,et al. The microRNA-34a-Induced Senescence-Associated Secretory Phenotype (SASP) Favors Vascular Smooth Muscle Cells Calcification , 2020, International journal of molecular sciences.
[18] Yali Yao,et al. lncRNA Oip5‐as1 attenuates myocardial ischaemia/reperfusion injury by sponging miR‐29a to activate the SIRT1/AMPK/PGC1α pathway , 2020, Cell proliferation.
[19] Jin Liu,et al. A Landscape of Murine Long Non-Coding RNAs Reveals the Leading Transcriptome Alterations in Adipose Tissue during Aging , 2020, Cell reports.
[20] H. Shan,et al. lncRNA MIRF Promotes Cardiac Apoptosis through the miR-26a-Bak1 Axis , 2020, Molecular therapy. Nucleic acids.
[21] Haroon ur Rashid Kayani,et al. Aging - Oxidative stress, antioxidants and computational modeling , 2020, Heliyon.
[22] Christopher N. Johnson,et al. Aging-regulated anti-apoptotic long non-coding RNA Sarrah augments recovery from acute myocardial infarction , 2020, Nature Communications.
[23] J. Bauersachs,et al. MiRNA‐181a is a novel regulator of aldosterone–mineralocorticoid receptor‐mediated cardiac remodelling , 2020, European journal of heart failure.
[24] H. Huikuri,et al. miR-1468-3p Promotes Aging-Related Cardiac Fibrosis , 2020, Molecular therapy. Nucleic acids.
[25] C. Weber,et al. AntimiR-21 Prevents Myocardial Dysfunction in a Pig Model of Ischemia/Reperfusion Injury. , 2020, Journal of the American College of Cardiology.
[26] K. Goljanek-Whysall,et al. Inflamma-miR-21 Negatively Regulates Myogenesis during Ageing , 2020, Antioxidants.
[27] Y. Devaux,et al. Mitochondrial noncoding RNA-regulatory network in cardiovascular disease , 2020, Basic Research in Cardiology.
[28] D. Stakos,et al. The Alzheimer’s Disease Amyloid-Beta Hypothesis in Cardiovascular Aging and Disease , 2020, Journal of the American College of Cardiology.
[29] T. Thum,et al. Preclinical and Clinical Development of Noncoding RNA Therapeutics for Cardiovascular Disease , 2020, Circulation research.
[30] C. Sena,et al. Perivascular adipose tissue in age-related vascular disease , 2020, Ageing Research Reviews.
[31] Q. Zhang,et al. Identification of mecciRNAs and their roles in the mitochondrial entry of proteins , 2020, Science China Life Sciences.
[32] S. Heymans,et al. The Missing “lnc” between Genetics and Cardiac Disease , 2020, Non-coding RNA.
[33] Rui Chen,et al. Online Databases and Non-coding RNAs in Cardiovascular Diseases , 2019, Advances in experimental medicine and biology.
[34] Jian Sun,et al. Genome-wide profiling reveals atrial fibrillation-related circular RNAs in atrial appendages. , 2019, Gene.
[35] Ryan M. Ames,et al. circRNAs expressed in human peripheral blood are associated with human aging phenotypes, cellular senescence and mouse lifespan , 2019, GeroScience.
[36] Anita Saraf,et al. Mitochondrial dysfunction and oxidative stress in heart disease , 2019, Experimental & Molecular Medicine.
[37] Alejandro Lucia,et al. Chronic inflammation in the etiology of disease across the life span , 2019, Nature Medicine.
[38] U. Bavendiek,et al. Serum circular RNAs act as blood-based biomarkers for hypertrophic obstructive cardiomyopathy , 2019, Scientific Reports.
[39] J. de Magalhães,et al. Ageing-associated changes in the expression of lncRNAs in human tissues reflect a transcriptional modulation in ageing pathways , 2019, Mechanisms of Ageing and Development.
[40] Shuanglin Xiang,et al. Purification and Identification of miRNA Target Sites in Genome Using DNA Affinity Precipitation , 2019, Front. Genet..
[41] Xinhua Ma,et al. lncRNA GAS5/miR‐223/NAMPT axis modulates the cell proliferation and senescence of endothelial progenitor cells through PI3K/AKT signaling , 2019, Journal of cellular biochemistry.
[42] Xiaowei Wang,et al. miRDB: an online database for prediction of functional microRNA targets , 2019, Nucleic Acids Res..
[43] Xiaoli Zheng,et al. Silencing of GAS5 represses the malignant progression of atherosclerosis through upregulation of miR-135a. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[44] P. Libby,et al. Atherosclerosis , 2019, Nature Reviews Disease Primers.
[45] Q. Fu,et al. The Lncrna, H19 Mediates the Protective Effect of Hypoxia Postconditioning Against Hypoxia-Reoxygenation Injury to Senescent Cardiomyocytes by Targeting MicroRNA-29b-3p. , 2019, Shock.
[46] Y. Devaux,et al. Noncoding RNAs in Hypertension , 2019, Hypertension.
[47] Yuguo Chen,et al. LncRNA H19/miR-let-7 axis participates in the regulation of ox-LDL-induced endothelial cell injury via targeting periostin. , 2019, International immunopharmacology.
[48] M. Bennett,et al. Vascular smooth muscle cells in atherosclerosis , 2019, Nature Reviews Cardiology.
[49] T. Thum,et al. RNA-based diagnostic and therapeutic strategies for cardiovascular disease , 2019, Nature Reviews Cardiology.
[50] Z. Yao,et al. miR-21 promotes NLRP3 inflammasome activation to mediate pyroptosis and endotoxic shock , 2019, Cell Death & Disease.
[51] C. Giannarelli,et al. MicroRNA-126 regulates Hypoxia-Inducible Factor-1α which inhibited migration, proliferation, and angiogenesis in replicative endothelial senescence , 2019, Scientific Reports.
[52] Donghui Tang,et al. Improvement of microvascular endothelial dysfunction induced by exercise and diet is associated with microRNA-126 in obese adolescents. , 2019, Microvascular research.
[53] Xiangmei Chen,et al. Deletion of miR-126a Promotes Hepatic Aging and Inflammation in a Mouse Model of Cholestasis , 2019, Molecular therapy. Nucleic acids.
[54] Xiaolu Yang,et al. The lncRNA Neat1 promotes activation of inflammasomes in macrophages , 2019, Nature Communications.
[55] Hongcai Cai,et al. Circular RNA involvement in aging: An emerging player with great potential , 2019, Mechanisms of Ageing and Development.
[56] Wei Li,et al. Long Non-coding RNA MEG3 Attenuates the Angiotensin II-Induced Injury of Human Umbilical Vein Endothelial Cells by Interacting With p53 , 2019, Front. Genet..
[57] Jingcheng Dong,et al. Long Noncoding RNAs in the Regulation of Oxidative Stress , 2019, Oxidative medicine and cellular longevity.
[58] R. Guo,et al. Long noncoding RNA MALAT1 promotes high glucose-induced human endothelial cells pyroptosis by affecting NLRP3 expression through competitively binding miR-22. , 2019, Biochemical and biophysical research communications.
[59] P. Mulder,et al. Integrative System Biology Analyses Identify Seven MicroRNAs to Predict Heart Failure , 2019, Non-coding RNA.
[60] X. Tu,et al. Overexpression of miR-142-3p improves mitochondrial function in cardiac hypertrophy. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[61] M. Naldrett,et al. LncRNA Meg3 protects endothelial function by regulating the DNA damage response , 2018, Nucleic acids research.
[62] Wenguang Chang,et al. A circular transcript of ncx1 gene mediates ischemic myocardial injury by targeting miR-133a-3p , 2018, Theranostics.
[63] R. Ahmed,et al. Activation of miR-21-Regulated Pathways in Immune Aging Selects against Signatures Characteristic of Memory T Cells , 2018, Cell reports.
[64] U. Sen,et al. Hypertension exaggerates renovascular resistance via miR-122-associated stress response in aging , 2018, Journal of hypertension.
[65] N. Wu,et al. Downregulation of growth arrest‑specific transcript 5 alleviates palmitic acid‑induced myocardial inflammatory injury through the miR‑26a/HMGB1/NF‑κB axis. , 2018, Molecular medicine reports.
[66] M. Ponnusamy,et al. The circular RNA ACR attenuates myocardial ischemia/reperfusion injury by suppressing autophagy via modulation of the Pink1/ FAM65B pathway , 2018, Cell Death & Differentiation.
[67] Ilenia Cirilli,et al. The mitomiR/Bcl-2 axis affects mitochondrial function and autophagic vacuole formation in senescent endothelial cells , 2018, Aging.
[68] Fabio Marcheggiani,et al. Modulation of Oxidative Status by Normoxia and Hypoxia on Cultures of Human Dermal Fibroblasts: How Does It Affect Cell Aging? , 2018, Oxidative medicine and cellular longevity.
[69] S. Tarantini,et al. Mechanisms of Vascular Aging. , 2018, Circulation research.
[70] F. Zhang,et al. Comprehensive analysis of circRNA expression pattern and circRNA-miRNA-mRNA network in the pathogenesis of atherosclerosis in rabbits , 2018, Aging.
[71] Cory B. Giles,et al. Endothelial dysfunction and angiogenesis impairment in the ageing vasculature , 2018, Nature Reviews Cardiology.
[72] Yuhuang Li,et al. Long non-coding RNA H19 regulates endothelial cell aging via inhibition of STAT3 signalling , 2018, Cardiovascular research.
[73] S. Blankenberg,et al. Immune system-mediated atherosclerosis caused by deficiency of long non-coding RNA MALAT1 in ApoE−/−mice , 2018, Cardiovascular research.
[74] Ling Lin,et al. Silencing of miR‑155 suppresses inflammatory responses in psoriasis through inflammasome NLRP3 regulation. , 2018, International journal of molecular medicine.
[75] Chongbao Wang,et al. LncRBA GSA5, up‐regulated by ox‐LDL, aggravates inflammatory response and MMP expression in THP‐1 macrophages by acting like a sponge for miR‐221 , 2018, Experimental cell research.
[76] L. Ferrucci,et al. Inflammageing: chronic inflammation in ageing, cardiovascular disease, and frailty , 2018, Nature Reviews Cardiology.
[77] Huijun Sun,et al. MicroRNA‐351‐5p aggravates intestinal ischaemia/reperfusion injury through the targeting of MAPK13 and Sirtuin‐6 , 2018, British journal of pharmacology.
[78] S. Hannenhalli,et al. Comprehensive map of age-associated splicing changes across human tissues and their contributions to age-associated diseases , 2018, Scientific Reports.
[79] Jianghong Chen,et al. MicroRNA-29b Regulates the Mitochondria-Dependent Apoptotic Pathway by Targeting Bax in Doxorubicin Cardiotoxicity , 2018, Cellular Physiology and Biochemistry.
[80] R. Koup,et al. Elderly human hematopoietic progenitor cells express cellular senescence markers and are more susceptible to pyroptosis. , 2018, JCI insight.
[81] Cong-Cong Guo,et al. Silencing of LncRNA BDNF-AS attenuates Aβ25-35-induced neurotoxicity in PC12 cells by suppressing cell apoptosis and oxidative stress , 2018, Neurological research.
[82] D. Ory,et al. Macrophage microRNA-150 promotes pathological angiogenesis as seen in age-related macular degeneration. , 2018, JCI insight.
[83] Mitsuo Kato,et al. A Novel Angiotensin II–Induced Long Noncoding RNA Giver Regulates Oxidative Stress, Inflammation, and Proliferation in Vascular Smooth Muscle Cells , 2018, Circulation research.
[84] Weili Zhang,et al. MicroRNA‐216a induces endothelial senescence and inflammation via Smad3/IκBα pathway , 2018, Journal of cellular and molecular medicine.
[85] L. Tavazzi,et al. Circulating microRNA‐132 levels improve risk prediction for heart failure hospitalization in patients with chronic heart failure , 2018, European journal of heart failure.
[86] Lu Zhang,et al. The circular RNA MICRA for risk stratification after myocardial infarction☆ , 2017, International journal of cardiology. Heart & vasculature.
[87] P. Amouyel,et al. MicroRNAs regulating superoxide dismutase 2 are new circulating biomarkers of heart failure , 2017, Scientific Reports.
[88] Karim Mekhail,et al. Non-Coding RNA Molecules Connect Calorie Restriction and Lifespan. , 2017, Journal of molecular biology.
[89] J. Murabito,et al. Age‐associated microRNA expression in human peripheral blood is associated with all‐cause mortality and age‐related traits , 2017, Aging cell.
[90] Kanji Fukuda,et al. miR‐155 induces ROS generation through downregulation of antioxidation‐related genes in mesenchymal stem cells , 2017, Aging cell.
[91] Xing Pei,et al. Low-dose Sinapic Acid Abates the Pyroptosis of Macrophages by Downregulation of lncRNA-MALAT1 in Rats With Diabetic Atherosclerosis , 2017, Journal of cardiovascular pharmacology.
[92] Maria-Teresa Piccoli,et al. Inhibition of the Cardiac Fibroblast–Enriched lncRNA Meg3 Prevents Cardiac Fibrosis and Diastolic Dysfunction , 2017, Circulation research.
[93] M. Capogrossi,et al. Doxorubicin upregulates CXCR4 via miR-200c/ZEB1-dependent mechanism in human cardiac mesenchymal progenitor cells , 2017, Cell Death & Disease.
[94] E. K. Lee,et al. Long Noncoding RNAs and RNA-Binding Proteins in Oxidative Stress, Cellular Senescence, and Age-Related Diseases , 2017, Oxidative medicine and cellular longevity.
[95] Przemysław Ślusarczyk,et al. miR-34a and miR-9 are overexpressed and SIRT genes are downregulated in peripheral blood mononuclear cells of aging humans , 2017, Experimental biology and medicine.
[96] Richard A Young,et al. The long noncoding RNA Wisper controls cardiac fibrosis and remodeling , 2017, Science Translational Medicine.
[97] H-Y Wu,et al. Regulation of miR-92a on vascular endothelial aging via mediating Nrf2-KEAP1-ARE signal pathway. , 2017, European review for medical and pharmacological sciences.
[98] L. Chao,et al. Kallistatin reduces vascular senescence and aging by regulating microRNA‐34a‐SIRT1 pathway , 2017, Aging cell.
[99] Jianyun Lu,et al. MALAT1 participates in ultraviolet B-induced photo-aging via regulation of the ERK/MAPK signaling pathway , 2017, Molecular medicine reports.
[100] P. Rabinovitch,et al. Treatment with the mitochondrial‐targeted antioxidant peptide SS‐31 rescues neurovascular coupling responses and cerebrovascular endothelial function and improves cognition in aged mice , 2018, Aging cell.
[101] C. Bearzi,et al. Increased BACE1-AS long noncoding RNA and &bgr;-amyloid levels in heart failure , 2017, Cardiovascular research.
[102] Francesco Paneni,et al. The Aging Cardiovascular System: Understanding It at the Cellular and Clinical Levels. , 2017, Journal of the American College of Cardiology.
[103] A. Jackson,et al. The Efficacy of Cardiac Anti-miR-208a Therapy Is Stress Dependent , 2017, Molecular therapy : the journal of the American Society of Gene Therapy.
[104] Xi-Long Zheng,et al. CircRNA_000203 enhances the expression of fibrosis-associated genes by derepressing targets of miR-26b-5p, Col1a2 and CTGF, in cardiac fibroblasts , 2017, Scientific Reports.
[105] Daphne A. Cooper,et al. CircRNA accumulation in the aging mouse brain , 2016, Scientific Reports.
[106] Andrea Knau,et al. Long Noncoding RNA Meg3 Controls Endothelial Cell Aging and Function: Implications for Regenerative Angiogenesis. , 2016, Journal of the American College of Cardiology.
[107] Kotb Abdelmohsen,et al. Identification of senescence-associated circular RNAs (SAC-RNAs) reveals senescence suppressor CircPVT1 , 2016, Nucleic acids research.
[108] Yin Liu,et al. Downregulated expression of miR-142-3p in macrophages contributes to increased IL-6 levels in aged mice. , 2016, Molecular immunology.
[109] Luigi Ferrucci,et al. A serum miRNA profile of human longevity: findings from the Baltimore Longitudinal Study of Aging (BLSA) , 2016, Aging.
[110] P. De Groote,et al. Preclinical Development of a MicroRNA-Based Therapy for Elderly Patients With Myocardial Infarction. , 2016, Journal of the American College of Cardiology.
[111] M. Aronovitz,et al. Vascular mineralocorticoid receptor regulates microRNA-155 to promote vasoconstriction and rising blood pressure with aging. , 2016, JCI insight.
[112] M. Mann,et al. Circular non-coding RNA ANRIL modulates ribosomal RNA maturation and atherosclerosis in humans , 2016, Nature Communications.
[113] Mingyao Li,et al. Transcriptome-Wide Analysis Reveals Modulation of Human Macrophage Inflammatory Phenotype Through Alternative Splicing , 2016, Arteriosclerosis, thrombosis, and vascular biology.
[114] A. Caporali,et al. ROS, Cell Senescence, and Novel Molecular Mechanisms in Aging and Age-Related Diseases , 2016, Oxidative medicine and cellular longevity.
[115] A. Schambach,et al. Long noncoding RNA Chast promotes cardiac remodeling , 2016, Science Translational Medicine.
[116] F. S. Foster,et al. Foxo3 circular RNA promotes cardiac senescence by modulating multiple factors associated with stress and senescence responses , 2016, European heart journal.
[117] D. Zheng,et al. Comprehensive transcriptional landscape of aging mouse liver , 2015, BMC Genomics.
[118] S. Tarantini,et al. Aging Exacerbates Pressure-Induced Mitochondrial Oxidative Stress in Mouse Cerebral Arteries. , 2015, The journals of gerontology. Series A, Biological sciences and medical sciences.
[119] M. Sweet,et al. Innate immune perturbations, accumulating DAMPs and inflammasome dysregulation: A ticking time bomb in ageing , 2015, Ageing Research Reviews.
[120] A. Raucci,et al. MicroRNA-34a Induces Vascular Smooth Muscle Cells Senescence by SIRT1 Downregulation and Promotes the Expression of Age-Associated Pro-inflammatory Secretory Factors. , 2015, The journals of gerontology. Series A, Biological sciences and medical sciences.
[121] E. González-López,et al. Wild-type transthyretin amyloidosis as a cause of heart failure with preserved ejection fraction. , 2015, European heart journal.
[122] M. García-Bermejo,et al. miR‐9‐5p suppresses pro‐fibrogenic transformation of fibroblasts and prevents organ fibrosis by targeting NOX4 and TGFBR2 , 2015, EMBO reports.
[123] A. Díaz,et al. MicroRNAs miR-155 and miR-16 Decrease AID and E47 in B Cells from Elderly Individuals , 2015, The Journal of Immunology.
[124] B. Schroen,et al. Long noncoding RNAs in cardiac development and ageing , 2015, Nature Reviews Cardiology.
[125] Dean Y. Li,et al. Greater impairments in cerebral artery compared with skeletal muscle feed artery endothelial function in a mouse model of increased large artery stiffness , 2015, The Journal of physiology.
[126] Junjiu Huang,et al. Mir-23a induces telomere dysfunction and cellular senescence by inhibiting TRF2 expression , 2015, Aging cell.
[127] Aristidis G. Vrahatis,et al. Integromics network meta-analysis on cardiac aging offers robust multi-layer modular signatures and reveals micronome synergism , 2015, BMC Genomics.
[128] Hsien-Da Huang,et al. Oxidative Stress Activates Endothelial Innate Immunity via Sterol Regulatory Element Binding Protein 2 (SREBP2) Transactivation of MicroRNA-92a , 2015, Circulation.
[129] R. Wersto,et al. MicroRNA-125b modulates inflammatory chemokine CCL4 expression in immune cells and its reduction causes CCL4 increase with age , 2015, Aging cell.
[130] R. Giffard,et al. The use of microRNAs to modulate redox and immune response to stroke. , 2015, Antioxidants & redox signaling.
[131] Sol Shenker,et al. Genome-wide analysis of drosophila circular RNAs reveals their structural and sequence properties and age-dependent neural accumulation. , 2014, Cell reports.
[132] J. Rougemont,et al. Functional characterization of the TERRA transcriptome at damaged telomeres , 2014, Nature Communications.
[133] Y. Devaux,et al. Long Noncoding RNAs in Patients With Acute Myocardial Infarction , 2014, Circulation research.
[134] J. Dhahbi. Circulating small noncoding RNAs as biomarkers of aging , 2014, Ageing Research Reviews.
[135] Catherine M. Otto,et al. Aortic-valve stenosis--from patients at risk to severe valve obstruction. , 2014, The New England journal of medicine.
[136] Cory B. Giles,et al. Caloric Restriction Confers Anti‐Oxidative, Pro‐Angiogenic, and Anti‐Inflammatory Effects and Promotes Anti‐Aging miRNA Expression Profile in Cerebromicrovascular Endothelial Cells of Aged Rats , 2014, American journal of physiology. Heart and circulatory physiology.
[137] D. Seals,et al. Mitochondria‐targeted antioxidant (MitoQ) ameliorates age‐related arterial endothelial dysfunction in mice , 2014, The Journal of physiology.
[138] F. Liu,et al. The Long Noncoding RNA CHRF Regulates Cardiac Hypertrophy by Targeting miR-489 , 2014, Circulation research.
[139] A. Schetter,et al. Effects of Calorie Restriction and Diet-Induced Obesity on Murine Colon Carcinogenesis, Growth and Inflammatory Factors, and MicroRNA Expression , 2014, PloS one.
[140] A. Donato,et al. Beneficial effects of lifelong caloric restriction on endothelial function are greater in conduit arteries compared to cerebral resistance arteries , 2014, AGE.
[141] G. Lemesle,et al. The Circulating Long Non-Coding RNA LIPCAR Predicts Survival in Heart Failure Patients , 2014 .
[142] Wang Xia,et al. A modeled dynamic regulatory network of NF-κB and IL-6 mediated by miRNA , 2013, Biosyst..
[143] S. Anker,et al. Circulating miR-133a and miR-423-5p fail as biomarkers for left ventricular remodeling after myocardial infarction. , 2013, International journal of cardiology.
[144] S. Dikalov,et al. Angiotensin II-induced production of mitochondrial reactive oxygen species: potential mechanisms and relevance for cardiovascular disease. , 2013, Antioxidants & redox signaling.
[145] D. Seals,et al. Life‐long caloric restriction reduces oxidative stress and preserves nitric oxide bioavailability and function in arteries of old mice , 2013, Aging cell.
[146] M. Gorospe,et al. Senescence‐associated lncRNAs: senescence‐associated long noncoding RNAs , 2013, Aging cell.
[147] E. Mercken,et al. Age-associated miRNA Alterations in Skeletal Muscle from Rhesus Monkeys reversed by caloric restriction , 2013, Aging.
[148] C. Franceschi,et al. MiR-146a as marker of senescence-associated pro-inflammatory status in cells involved in vascular remodelling , 2013, AGE.
[149] Manuel Serrano,et al. The Hallmarks of Aging , 2013, Cell.
[150] Alberto Dávalos,et al. One-year supplementation with a grape extract containing resveratrol modulates inflammatory-related microRNAs and cytokines expression in peripheral blood mononuclear cells of type 2 diabetes and hypertensive patients with coronary artery disease. , 2013, Pharmacological research.
[151] R. Leboeuf,et al. Atherosclerosis and cardiac function assessment in low-density lipoprotein receptor-deficient mice undergoing body weight cycling , 2013, Nutrition & Diabetes.
[152] F. Gruber,et al. High levels of oncomiR-21 contribute to the senescence-induced growth arrest in normal human cells and its knock-down increases the replicative lifespan , 2013, Aging cell.
[153] M. Gorospe,et al. Long Noncoding RNA MALAT1 Controls Cell Cycle Progression by Regulating the Expression of Oncogenic Transcription Factor B-MYB , 2013, PLoS genetics.
[154] H. Hermeking,et al. MicroRNA-34a regulates cardiac ageing and function , 2013, Nature.
[155] David I. K. Martin,et al. Deep sequencing identifies circulating mouse miRNAs that are functionally implicated in manifestations of aging and responsive to calorie restriction , 2013, Aging.
[156] Vincent L. Butty,et al. Braveheart, a Long Noncoding RNA Required for Cardiovascular Lineage Commitment , 2013, Cell.
[157] Manolis Kellis,et al. The tissue-specific lncRNA Fendrr is an essential regulator of heart and body wall development in the mouse. , 2013, Developmental cell.
[158] Claudio Franceschi,et al. Age-related differences in the expression of circulating microRNAs: miR-21 as a new circulating marker of inflammaging , 2012, Mechanisms of Ageing and Development.
[159] Anna K Rieger,et al. NLRP3 Inflammasome Activity Is Negatively Controlled by miR-223 , 2012, The Journal of Immunology.
[160] S. Kauppinen,et al. Therapeutic inhibition of the miR-34 family attenuates pathological cardiac remodeling and improves heart function , 2012, Proceedings of the National Academy of Sciences.
[161] Nora Engel,et al. The Kcnq1ot1 Long Non-Coding RNA Affects Chromatin Conformation and Expression of Kcnq1, but Does Not Regulate Its Imprinting in the Developing Heart , 2012, PLoS genetics.
[162] M. Ratajczak. Igf2-H19, an imprinted tandem gene, is an important regulator of embryonic development, a guardian of proliferation of adult pluripotent stem cells, a regulator of longevity, and a 'passkey' to cancerogenesis. , 2012, Folia histochemica et cytobiologica.
[163] P. Rabinovitch,et al. Cardiac aging: from molecular mechanisms to significance in human health and disease. , 2012, Antioxidants & redox signaling.
[164] C. Vayssettes-Courchay,et al. Chronic Reduction of Nitric Oxide Level in Adult Spontaneously Hypertensive Rats Induces Aortic Stiffness Similar to Old Spontaneously Hypertensive Rats , 2012, Journal of Vascular Research.
[165] Chad E. Grueter,et al. A Cardiac MicroRNA Governs Systemic Energy Homeostasis by Regulation of MED13 , 2012, Cell.
[166] B. Prabhakar,et al. Control of mitochondrial activity by miRNAs , 2012, Journal of cellular biochemistry.
[167] N. Simone,et al. MicroRNA-203 regulates caveolin-1 in breast tissue during caloric restriction , 2012, Cell cycle.
[168] Ryan M. O’Connell,et al. microRNA regulation of inflammatory responses. , 2012, Annual review of immunology.
[169] M. Jiang,et al. Dysregulated expression of miR‐146a contributes to age‐related dysfunction of macrophages , 2012, Aging cell.
[170] B. Strooper,et al. Non-coding RNAs with essential roles in neurodegenerative disorders , 2012, The Lancet Neurology.
[171] K. Chowdhury,et al. The miRNA-212/132 family regulates both cardiac hypertrophy and cardiomyocyte autophagy , 2012, Nature Communications.
[172] M. Yamakuchi. MicroRNA Regulation of SIRT1 , 2011, Front. Physio..
[173] R. Cousins,et al. Genomic analysis, cytokine expression, and microRNA profiling reveal biomarkers of human dietary zinc depletion and homeostasis , 2011, Proceedings of the National Academy of Sciences.
[174] R. Bloomer,et al. Impact of caloric and dietary restriction regimens on markers of health and longevity in humans and animals: a summary of available findings , 2011, Nutrition journal.
[175] E. Olson,et al. Therapeutic Inhibition of miR-208a Improves Cardiac Function and Survival During Heart Failure , 2011, Circulation.
[176] R. A. Razzak,et al. Assessment of enhanced endothelium-dependent vasodilation by intermittent fasting in Wistar albino rats. , 2011, Indian journal of physiology and pharmacology.
[177] E. Weiss,et al. Caloric restriction: powerful protection for the aging heart and vasculature. , 2011, American journal of physiology. Heart and circulatory physiology.
[178] T. Kooistra,et al. Beneficial Effects of Alternate Dietary Regimen on Liver Inflammation, Atherosclerosis and Renal Activation , 2011, PloS one.
[179] Harshini Sarojini,et al. Gain of survival signaling by down-regulation of three key miRNAs in brain of calorie-restricted mice , 2011, Aging.
[180] V. Dolinsky,et al. Calorie Restriction Prevents Hypertension and Cardiac Hypertrophy in the Spontaneously Hypertensive Rat , 2010, Hypertension.
[181] M. Yamakuchi,et al. MicroRNA-34a regulation of endothelial senescence. , 2010, Biochemical and biophysical research communications.
[182] D. Seals,et al. Short‐term calorie restriction reverses vascular endothelial dysfunction in old mice by increasing nitric oxide and reducing oxidative stress , 2010, Aging cell.
[183] Kotb Abdelmohsen,et al. microRNA Expression Patterns Reveal Differential Expression of Target Genes with Age , 2010, PloS one.
[184] G. Kreiman,et al. Widespread transcription at neuronal activity-regulated enhancers , 2010, Nature.
[185] Chen-Yu Liao,et al. Genetic variation in the murine lifespan response to dietary restriction: from life extension to life shortening , 2010, Aging cell.
[186] Gordon J. Lithgow,et al. MicroRNAs miR-146a/b negatively modulate the senescence-associated inflammatory mediators IL-6 and IL-8 , 2009, Aging.
[187] D. Christianson,et al. Arginase and vascular aging. , 2008, Journal of applied physiology.
[188] Leonid Peshkin,et al. Resveratrol delays age-related deterioration and mimics transcriptional aspects of dietary restriction without extending life span. , 2008, Cell metabolism.
[189] T. Morgan,et al. Expression of a noncoding RNA is elevated in Alzheimer's disease and drives rapid feed-forward regulation of β-secretase , 2008, Nature Medicine.
[190] Z. Ungvari,et al. Dysregulation of mitochondrial biogenesis in vascular endothelial and smooth muscle cells of aged rats. , 2008, American journal of physiology. Heart and circulatory physiology.
[191] Guoyao Wu,et al. Ageing diminishes endothelium‐dependent vasodilatation and tetrahydrobiopterin content in rat skeletal muscle arterioles , 2008, The Journal of physiology.
[192] Z. Ungvari,et al. Increased mitochondrial H2O2 production promotes endothelial NF- B activation in aged rat arteries , 2007 .
[193] I. Wilkinson,et al. AGE, HYPERTENSION AND ARTERIAL FUNCTION , 2007, Clinical and experimental pharmacology & physiology.
[194] G. Pierce,et al. Direct Evidence of Endothelial Oxidative Stress With Aging in Humans: Relation to Impaired Endothelium-Dependent Dilation and Upregulation of Nuclear Factor-&kgr;B , 2007, Circulation research.
[195] K. Moreau,et al. Ascorbic Acid Selectively Improves Large Elastic Artery Compliance in Postmenopausal Women , 2005, Hypertension.
[196] D. Kass,et al. Mechanisms, pathophysiology, and therapy of arterial stiffness. , 2005, Arteriosclerosis, thrombosis, and vascular biology.
[197] A. Zeiher,et al. Endothelial Function: Cardiac Events , 2005, Circulation.
[198] E. Lander,et al. Finishing the euchromatic sequence of the human genome , 2004 .
[199] P. Ganz,et al. Role of Endothelial Dysfunction in Atherosclerosis , 2004, Circulation.
[200] R. S. Sohal,et al. Genotype and age influence the effect of caloric intake on mortality in mice , 2003, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[201] D. Aronson. Cross-linking of glycated collagen in the pathogenesis of arterial and myocardial stiffening of aging and diabetes , 2003, Journal of hypertension.
[202] P. Libby. Inflammation in atherosclerosis , 2002, Nature.
[203] P. Ganz,et al. Endothelial function. From vascular biology to clinical applications. , 2002, The American journal of cardiology.
[204] Hong Yang,et al. Dietary restriction reduces atherosclerosis and oxidative stress in the aorta of apolipoprotein E-deficient mice , 2002, Mechanisms of Ageing and Development.
[205] T. Lüscher,et al. Enhanced Peroxynitrite Formation Is Associated with Vascular Aging , 2000, The Journal of experimental medicine.
[206] R. Ross,et al. Atherosclerosis is an inflammatory disease. , 1998, American heart journal.
[207] T. Lüscher,et al. Biology of the Endothelium , 1997, Clinical cardiology.
[208] R. Effros,et al. Calorie restriction inhibits the age-related dysregulation of the cytokines TNF-α and IL-6 in C3B10RF1 mice , 1997, Mechanisms of Ageing and Development.
[209] E. Arnold,et al. Inhibition of smooth muscle cell growth by nitric oxide and activation of cAMP-dependent protein kinase by cGMP. , 1994, The American journal of physiology.
[210] J. Sixma,et al. Nitric Oxide Functions as an Inhibitor of Platelet Adhesion Under Flow Conditions , 1992, Circulation.
[211] E. Burns,et al. Thinning of capillary walls and declining numbers of endothelial mitochondria in the cerebral cortex of the aging primate, Macaca nemestrina. , 1979, Journal of gerontology.
[212] J. Colgan,et al. Ultrastructure of the aging myocardium: a morphometric approach. , 1977, The American journal of anatomy.
[213] B. C. Bernardo,et al. Translational Potential of Non-coding RNAs for Cardiovascular Disease. , 2020, Advances in experimental medicine and biology.
[214] L. D. de Windt,et al. MicroRNAs in control of cardiac hypertrophy. , 2012, Cardiovascular research.
[215] L. Gallo. Cardiovascular Disease , 1995, GWUMC Department of Biochemistry Annual Spring Symposia.
[216] T. Lüscher,et al. Endothelium‐Derived Vasoactive Substances: Potential Role in Hypertension, Atherosclerosis, and Vascular Occlusion , 1989, Journal of cardiovascular pharmacology.