Is There a Role for Genomics in the Management of Hypertension?
暂无分享,去创建一个
M. Tetti | F. Veglio | P. Mulatero | S. Monticone | F. Buffolo | J. Burrello | T. Williams
[1] G. Colussi,et al. Glucocorticoid-induced leucine zipper protein regulates sodium and potassium balance in the distal nephron. , 2017, Kidney international.
[2] T. Strom,et al. CACNA1H Mutations Are Associated With Different Forms of Primary Aldosteronism , 2016, EBioMedicine.
[3] M. Stowasser,et al. Primary Aldosteronism: Changing Definitions and New Concepts of Physiology and Pathophysiology Both Inside and Outside the Kidney. , 2016, Physiological reviews.
[4] A. Hoes,et al. 2016 European Guidelines on cardiovascular disease prevention in clinical practice. , 2016, Revista espanola de cardiologia.
[5] F. Charchar,et al. Epigenetic Modifications in Essential Hypertension , 2016, International journal of molecular sciences.
[6] Julie A. Johnson,et al. Hypertension pharmacogenomics: in search of personalized treatment approaches , 2016, Nature Reviews Nephrology.
[7] L. Liang,et al. Expression Quantitative Trait Loci Information Improves Predictive Modeling of Disease Relevance of Non-Coding Genetic Variation , 2015, PloS one.
[8] J. Schulz-Menger,et al. Clinical Effects of Phosphodiesterase 3A Mutations in Inherited Hypertension With Brachydactyly , 2015, Hypertension.
[9] E. Boerwinkle,et al. TET2 and CSMD1 genes affect SBP response to hydrochlorothiazide in never-treated essential hypertensives , 2015, Journal of hypertension.
[10] R. Auchus,et al. Adrenal steroidogenesis and congenital adrenal hyperplasia. , 2015, Endocrinology and metabolism clinics of North America.
[11] C. Menni. Blood pressure pharmacogenomics: gazing into a misty crystal ball. , 2015, Journal of hypertension.
[12] I. Kallikazaros,et al. Epigenetics, the missing link in hypertension. , 2015, Life sciences.
[13] Andreas Busjahn,et al. PDE3A mutations cause autosomal dominant hypertension with brachydactyly , 2015, Nature Genetics.
[14] Murim Choi,et al. Recurrent gain of function mutation in calcium channel CACNA1H causes early-onset hypertension with primary aldosteronism , 2015, eLife.
[15] A. Dominiczak,et al. Genetic and molecular aspects of hypertension. , 2015, Circulation research.
[16] Caiyu Chen,et al. Differential expression and DNA methylation of angiotensin type 1A receptors in vascular tissues during genetic hypertension development , 2015, Molecular and Cellular Biochemistry.
[17] P. Mulatero,et al. Understanding primary aldosteronism: impact of next generation sequencing and expression profiling , 2015, Molecular and Cellular Endocrinology.
[18] E. Boerwinkle,et al. Genome-wide association study identifies CAMKID variants involved in blood pressure response to losartan: the SOPHIA study. , 2014, Pharmacogenomics.
[19] A. Dominiczak,et al. Uromodulin, an emerging novel pathway for blood pressure regulation and hypertension. , 2014, Hypertension.
[20] T. Strom,et al. Genetic Spectrum and Clinical Correlates of Somatic Mutations in Aldosterone-Producing Adenoma , 2014, Hypertension.
[21] J. Loscalzo,et al. Epigenetic Modifications: Basic Mechanisms and Role in Cardiovascular Disease (2013 Grover Conference Series) , 2014, Pulmonary circulation.
[22] A. Dominiczak,et al. Validation of Uromodulin as a Candidate Gene for Human Essential Hypertension , 2014, Hypertension.
[23] J. Hoenderop,et al. A molecular update on pseudohypoaldosteronism type II. , 2013, American journal of physiology. Renal physiology.
[24] P. López-Jaramillo,et al. The role of environment and epigenetics in hypertension , 2013, Expert review of cardiovascular therapy.
[25] Matteo Trudu,et al. Common noncoding UMOD gene variants induce salt-sensitive hypertension and kidney damage by increasing uromodulin expression , 2013, Nature Medicine.
[26] Tara M. Holmes,et al. Atrial natriuretic peptide is negatively regulated by microRNA-425. , 2013, The Journal of clinical investigation.
[27] Annabelle L. Fonseca,et al. Somatic and germline CACNA1D calcium channel mutations in aldosterone-producing adenomas and primary aldosteronism , 2013, Nature Genetics.
[28] P. Munroe,et al. Advances in blood pressure genomics. , 2013, Circulation research.
[29] Tom R. Gaunt,et al. Loci influencing blood pressure identified using a cardiovascular gene-centric array. , 2013, Human molecular genetics.
[30] M. Caulfield,et al. Genes for blood pressure: an opportunity to understand hypertension. , 2013, European heart journal.
[31] G. Ginsburg,et al. Clinical application of cardiovascular pharmacogenetics. , 2012, Journal of the American College of Cardiology.
[32] Hae-Ahm Lee,et al. Upregulation of the Na+-K+-2Cl− cotransporter 1 via histone modification in the aortas of angiotensin II-induced hypertensive rats , 2012, Hypertension Research.
[33] Hae-Ahm Lee,et al. Tissue-Specific Upregulation of Angiotensin-Converting Enzyme 1 in Spontaneously Hypertensive Rats Through Histone Code Modifications , 2012, Hypertension.
[34] E. Boerwinkle,et al. Association of Chromosome 12 locus with antihypertensive response to hydrochlorothiazide may involve differential YEATS4 expression , 2012, The Pharmacogenomics Journal.
[35] Jai Radhakrishnan,et al. Mutations in Kelch-like 3 and Cullin 3 cause hypertension and electrolyte abnormalities , 2012, Nature.
[36] B. Morris,et al. Gene Expression Profiling Reveals Renin mRNA Overexpression in Human Hypertensive Kidneys and a Role for MicroRNAs , 2011, Hypertension.
[37] P. Söderkvist,et al. Genetics and clinical characteristics of hereditary pheochromocytomas and paragangliomas. , 2011, Endocrine-related cancer.
[38] Tom R. Gaunt,et al. Blood pressure loci identified with a gene-centric array. , 2011, American journal of human genetics.
[39] Tom R. Gaunt,et al. Genetic Variants in Novel Pathways Influence Blood Pressure and Cardiovascular Disease Risk , 2011, Nature.
[40] S. Mu,et al. Epigenetic modulation of the renal β-adrenergic–WNK4 pathway in salt-sensitive hypertension , 2011, Nature Medicine.
[41] D. Vieau,et al. Epigenetic regulation of somatic angiotensin-converting enzyme by DNA methylation and histone acetylation , 2011, Epigenetics.
[42] W. Cheng,et al. microRNA-155 regulates angiotensin II type 1 receptor expression in umbilical vein endothelial cells from severely pre-eclamptic pregnant women. , 2011, International journal of molecular medicine.
[43] S. Mane,et al. K+ Channel Mutations in Adrenal Aldosterone-Producing Adenomas and Hereditary Hypertension , 2011, Science.
[44] E. Izaurralde,et al. Gene silencing by microRNAs: contributions of translational repression and mRNA decay , 2011, Nature Reviews Genetics.
[45] Richard M. Millis,et al. Epigenetics and Hypertension , 2011, Current hypertension reports.
[46] J. Staessen,et al. Main results of the Ouabain and Adducin for Specific Intervention on Sodium in Hypertension Trial (OASIS-HT): a randomized placebo-controlled phase-2 dose-finding study of rostafuroxin , 2011, Trials.
[47] G. Opocher,et al. Genetics of pheochromocytomas and paragangliomas. , 2010, Best practice & research. Clinical endocrinology & metabolism.
[48] J. Pell,et al. Genome-Wide Association Study of Blood Pressure Extremes Identifies Variant near UMOD Associated with Hypertension , 2010, PLoS genetics.
[49] Su-Hyung Hong,et al. Promoter hypomethylation upregulates Na+-K+-2Cl- cotransporter 1 in spontaneously hypertensive rats. , 2010, Biochemical and biophysical research communications.
[50] C. Gheorghe,et al. Brain Renin-Angiotensin System: Fetal Epigenetic Programming by Maternal Protein Restriction During Pregnancy , 2010, Reproductive Sciences.
[51] M. Barciszewska,et al. Global DNA methylation changes in blood of patients with essential hypertension. , 2010, Medical science monitor : international medical journal of experimental and clinical research.
[52] Aravinda Chakravarti,et al. Follow-up of a major linkage peak on chromosome 1 reveals suggestive QTLs associated with essential hypertension: GenNet study , 2009, European Journal of Human Genetics.
[53] Mark D. Huffman,et al. Heart Disease and Stroke Statistics—2015 Update: A Report From the American Heart Association , 2009, Circulation.
[54] M. Stowasser. Update in primary aldosteronism. , 2009, The Journal of clinical endocrinology and metabolism.
[55] G. Boysen. European Guidelines on Cardiovascular Disease Prevention , 2009, International journal of stroke : official journal of the International Stroke Society.
[56] Keith C. Norris,et al. G-protein-coupled receptor kinase 4 polymorphisms and blood pressure response to metoprolol among African Americans: sex-specificity and interactions. , 2009, American journal of hypertension.
[57] M. Daly,et al. Genetic Mapping in Human Disease , 2008, Science.
[58] O. Olivieri,et al. Epigenetic control of 11 beta-hydroxysteroid dehydrogenase 2 gene promoter is related to human hypertension. , 2008, Atherosclerosis.
[59] Praveen Sethupathy,et al. Human microRNA-155 on chromosome 21 differentially interacts with its polymorphic target in the AGTR1 3' untranslated region: a mechanism for functional single-nucleotide polymorphisms related to phenotypes. , 2007, American journal of human genetics.
[60] Simon C. Potter,et al. Genome-wide association study of 14,000 cases of seven common diseases and 3,000 shared controls , 2007, Nature.
[61] O. Melander,et al. Polymorphism in NEDD4L Is Associated with Increased Salt Sensitivity, Reduced Levels of P-renin and Increased Levels of Nt-proANP , 2007, PloS one.
[62] E. Boerwinkle,et al. Multiple genes for essential-hypertension susceptibility on chromosome 1q. , 2007, American journal of human genetics.
[63] N. Samani,et al. Increased Support for Linkage of a Novel Locus on Chromosome 5q13 for Essential Hypertension in the British Genetics of Hypertension Study , 2006, Hypertension.
[64] J. Staessen,et al. Adducin and hypertension. , 2005, Pharmacogenomics.
[65] Danielle Posthuma,et al. Heritability and stability of resting blood pressure. , 2005, Twin research and human genetics : the official journal of the International Society for Twin Studies.
[66] J. Fish,et al. The Expression of Endothelial Nitric-oxide Synthase Is Controlled by a Cell-specific Histone Code* , 2005, Journal of Biological Chemistry.
[67] J. Staessen,et al. Adducin Polymorphism: Detection and Impact on Hypertension and Related Disorders , 2005, Hypertension.
[68] J. Virtamo,et al. Common variants of the beta and gamma subunits of the epithelial sodium channel and their relation to plasma renin and aldosterone levels in essential hypertension , 2005, BMC Medical Genetics.
[69] K. Michaëlsson,et al. Beta1‐adrenergic receptor gene polymorphisms and response to Beta1‐adrenergic receptor blockade in patients with essential hypertension , 2004, Clinical cardiology.
[70] G. Dorn,et al. β1-adrenergic receptor polymorphisms confer differential function and predisposition to heart failure , 2003, Nature Medicine.
[71] M. Olivier. A haplotype map of the human genome. , 2003, Nature.
[72] M. Olivier. A haplotype map of the human genome , 2003, Nature.
[73] A. Vandewalle,et al. The severe form of hypertension caused by the activating S810L mutation in the mineralocorticoid receptor is cortisone related. , 2003, Endocrinology.
[74] T. Eschenhagen,et al. Effect of the CYP2D6 genotype on metoprolol metabolism persists during long-term treatment. , 2002, Pharmacogenetics.
[75] P. Snyder. The epithelial Na+ channel: cell surface insertion and retrieval in Na+ homeostasis and hypertension. , 2002, Endocrine reviews.
[76] E. Lander,et al. On the allelic spectrum of human disease. , 2001, Trends in genetics : TIG.
[77] Robert J. Unwin,et al. Human Hypertension Caused by Mutations in WNK Kinases , 2001, Science.
[78] C. Allis,et al. Translating the Histone Code , 2001, Science.
[79] S. Portrat,et al. Deletion hybrid genes, due to unequal crossing over between CYP11B1 (11beta-hydroxylase) and CYP11B2(aldosterone synthase) cause steroid 11beta-hydroxylase deficiency and congenital adrenal hyperplasia. , 2001, The Journal of clinical endocrinology and metabolism.
[80] Ali G. Gharavi,et al. Molecular Mechanisms of Human Hypertension , 2001, Cell.
[81] M. Daly,et al. A map of human genome sequence variation containing 1.42 million single nucleotide polymorphisms , 2001, Nature.
[82] M. Bihoreau,et al. Genetic Mapping of Blood Pressure Quantitative Trait Loci in Milan Hypertensive Rats , 2000, Hypertension.
[83] P. Sigler,et al. Activating mineralocorticoid receptor mutation in hypertension exacerbated by pregnancy. , 2000, Science.
[84] N Risch,et al. The Future of Genetic Studies of Complex Human Diseases , 1996, Science.
[85] L. Schild,et al. Hypertension caused by a truncated epithelial sodium channel γ subunit: genetic heterogeneity of Liddle syndrome , 1995, Nature Genetics.
[86] Morris Schambelan,et al. Liddle's syndrome: heritable human hypertension caused by mutations in the β subunit of the epithelial sodium channel , 1994, Cell.
[87] R. Benediktsson,et al. Apparent mineralocorticoid excess. , 1994, Journal of human hypertension.
[88] S C Hunt,et al. Genetic basis of familial dyslipidemia and hypertension: 15-year results from Utah. , 1993, American journal of hypertension.
[89] J. Lalouel,et al. A chimaeric llβ-hydroxylase/aldosterone synthase gene causes glucocorticoid-remediable aldosteronism and human hypertension , 1992, Nature.
[90] C. Kater,et al. Mineralocorticoids in congenital adrenal hyperplasia , 1991, The Journal of Steroid Biochemistry and Molecular Biology.
[91] M. New,et al. A syndrome of apparent mineralocorticoid excess associated with defects in the peripheral metabolism of cortisol. , 1979, The Journal of clinical endocrinology and metabolism.
[92] J. K. Healy,et al. Hyperkalemia, hypertension and systemic acidosis without renal failure associated with a tubular defect in potassium excretion. , 1969, The American journal of medicine.
[93] P. D. Oldham,et al. The Hereditary Factor in Arterial Blood-pressure , 1963, British medical journal.
[94] E. Boerwinkle,et al. Genome-Wide and Gene-Based Meta-Analyses Identify Novel Loci Influencing Blood Pressure Response to Hydrochlorothiazide , 2017, Hypertension.
[95] T. Wienker,et al. Severe autosomal dominant hypertension and brachydactyly in a unique Turkish kindred maps to human chromosome 12 , 1996, Nature Genetics.
[96] B. Childs. Causes of essential hypertension. , 1983, Progress in medical genetics.