Gut metagenomic and short chain fatty acids signature in hypertension: a cross-sectional study
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R. Valls | A. Pedret | Laura Rubió | R. Solà | M. Gosalbes | L. Calderón-Pérez | E. Llauradó | J. Companys | L. Pla-Pagà | Silvia Yuste | A. Artacho | I. Ludwig | M. Romero | N. Jimenéz-Hernandéz | Nuria Jimenéz-Hernandéz | Iziar A. Ludwig
[1] Shimin Zhao,et al. Faecalibacterium prausnitzii produces butyrate to decrease c-Myc-related metabolism and Th17 differentiation by inhibiting histone deacetylase 3. , 2019, International immunology.
[2] M. Febo,et al. Impaired butyrate absorption in the proximal colon, low serum butyrate and diminished central effects of butyrate on blood pressure in spontaneously hypertensive rats , 2019, Acta physiologica.
[3] Mei-Jun Zhu,et al. A sensitive GC/MS detection method for analyzing microbial metabolites short chain fatty acids in fecal and serum samples. , 2019, Talanta.
[4] J. Sierra,et al. Higher Fecal Short-Chain Fatty Acid Levels Are Associated with Gut Microbiome Dysbiosis, Obesity, Hypertension and Cardiometabolic Disease Risk Factors , 2018, Nutrients.
[5] M. Farràs,et al. Trimethylamine N-Oxide: A Link among Diet, Gut Microbiota, Gene Regulation of Liver and Intestine Cholesterol Homeostasis and HDL Function , 2018, International journal of molecular sciences.
[6] Y. Haberman,et al. A High Salt Diet Modulates the Gut Microbiota and Short Chain Fatty Acids Production in a Salt-Sensitive Hypertension Rat Model , 2018, Nutrients.
[7] J. Escobar,et al. Gut microbiota is associated with obesity and cardiometabolic disease in a population in the midst of Westernization , 2018, Scientific Reports.
[8] S. Bhosale,et al. Dynamic multistimuli-responsive reversible chiral transformation in supramolecular helices , 2018, Scientific Reports.
[9] C. Pepine,et al. Imbalance of gut microbiome and intestinal epithelial barrier dysfunction in patients with high blood pressure. , 2018, Clinical science.
[10] M. Ufnal,et al. Trimethylamine N-oxide: A harmful, protective or diagnostic marker in lifestyle diseases? , 2018, Nutrition.
[11] Thomas E. Nichols,et al. HHS Public Access , 2018 .
[12] C. Mackay,et al. Beyond gut feelings: how the gut microbiota regulates blood pressure , 2018, Nature Reviews Cardiology.
[13] A. C. Cruz,et al. In situ immune response and mechanisms of cell damage in central nervous system of fatal cases microcephaly by Zika virus , 2018, Scientific Reports.
[14] A. Zanfirescu,et al. Chronic Monosodium Glutamate Administration Induced Hyperalgesia in Mice , 2017, Nutrients.
[15] K. Jaworska,et al. Hypertension in rats is associated with an increased permeability of the colon to TMA, a gut bacteria metabolite , 2017, PloS one.
[16] A. Sannino,et al. Gut microbe-generated metabolite trimethylamine-N-oxide as cardiovascular risk biomarker: a systematic review and dose-response meta-analysis , 2017, European heart journal.
[17] M. Chung,et al. Beneficial effects of a probiotic blend on gastrointestinal side effects induced by leflunomide and amlodipine in a rat model. , 2017, Beneficial microbes.
[18] E. Terán,et al. Vascular Dysfunction in Mother and Offspring During Preeclampsia: Contributions from Latin-American Countries , 2017, Current Hypertension Reports.
[19] Shenghui Li,et al. Alterations of the Gut Microbiome in Hypertension , 2017, Front. Cell. Infect. Microbiol..
[20] Tong Zhang,et al. Metagenomics of urban sewage identifies an extensively shared antibiotic resistome in China , 2017, Microbiome.
[21] M. Sakamoto,et al. Faecalimonas umbilicata gen. nov., sp. nov., isolated from human faeces, and reclassification of Eubacterium contortum, Eubacterium fissicatena and Clostridium oroticum as Faecalicatena contorta gen. nov., comb. nov., Faecalicatena fissicatena comb. nov. and Faecalicatena orotica comb. nov. , 2017, International journal of systematic and evolutionary microbiology.
[22] André Fujita,et al. The Distinct Transcriptional Response of the Midgut of Amblyomma sculptum and Amblyomma aureolatum Ticks to Rickettsia rickettsii Correlates to Their Differences in Susceptibility to Infection , 2017, Front. Cell. Infect. Microbiol..
[23] J. Pluznick. Microbial Short-Chain Fatty Acids and Blood Pressure Regulation , 2017, Current Hypertension Reports.
[24] A. El-Osta,et al. High-Fiber Diet and Acetate Supplementation Change the Gut Microbiota and Prevent the Development of Hypertension and Heart Failure in Hypertensive Mice , 2017, Circulation.
[25] M. Bochud,et al. The Hypertension Pandemic: An Evolutionary Perspective. , 2017, Physiology.
[26] Weili Zhang,et al. Gut microbiota dysbiosis contributes to the development of hypertension , 2017, Microbiome.
[27] C. Pepine,et al. Hypertension-Linked Pathophysiological Alterations in the Gut , 2017, Circulation research.
[28] Patrick K. H. Lee,et al. Microbiota fingerprints lose individually identifying features over time , 2017, Microbiome.
[29] Hynek Pikhart,et al. Worldwide trends in blood pressure from 1975 to 2015: a pooled analysis of 1479 population-based measurement studies with 19·1 million participants , 2017, The Lancet.
[30] D. Raoult,et al. ‘Pygmaiobacter massiliensis’ sp. nov., a new bacterium isolated from the human gut of a Pygmy woman , 2016, New microbes and new infections.
[31] Jian Yan,et al. Trimethylamine‐N‐oxide (TMAO) response to animal source foods varies among healthy young men and is influenced by their gut microbiota composition: A randomized controlled trial , 2017, Molecular nutrition & food research.
[32] A. Semplicini. Faculty Opinions recommendation of Worldwide trends in blood pressure from 1975 to 2015: a pooled analysis of 1479 population-based measurement studies with 19·1 million participants. , 2016 .
[33] S. Flavahan,et al. Microbial short chain fatty acid metabolites lower blood pressure via endothelial G protein-coupled receptor 41. , 2016, Physiological genomics.
[34] Stanley L. Hazen,et al. Plasma Trimethylamine N-Oxide, a Gut Microbe-Generated Phosphatidylcholine Metabolite, Is Associated With Atherosclerotic Burden. , 2016, Journal of the American College of Cardiology.
[35] F. Bäckhed,et al. From Dietary Fiber to Host Physiology: Short-Chain Fatty Acids as Key Bacterial Metabolites , 2016, Cell.
[36] F. Schick,et al. Relationship of Serum Trimethylamine N-Oxide (TMAO) Levels with early Atherosclerosis in Humans , 2016, Scientific Reports.
[37] D. Aronoff,et al. The influence of non-steroidal anti-inflammatory drugs on the gut microbiome. , 2016, Clinical microbiology and infection : the official publication of the European Society of Clinical Microbiology and Infectious Diseases.
[38] N. Ajami,et al. Role of the Gut Microbiome in Obstructive Sleep Apnea–Induced Hypertension , 2016, Hypertension.
[39] S. Zeisel,et al. Rapid LC‐MRM‐MS assay for simultaneous quantification of choline, betaine, trimethylamine, trimethylamine N‐oxide, and creatinine in human plasma and urine , 2015, Electrophoresis.
[40] Partho Sen,et al. Quantifying Diet-Induced Metabolic Changes of the Human Gut Microbiome. , 2015, Cell metabolism.
[41] K. Tārs,et al. Structure and Function of CutC Choline Lyase from Human Microbiota Bacterium Klebsiella pneumoniae* , 2015, The Journal of Biological Chemistry.
[42] C. Pepine,et al. Gut Dysbiosis Is Linked to Hypertension , 2015, Hypertension.
[43] V. Jala,et al. Evidence for a link between gut microbiota and hypertension in the Dahl rat. , 2015, Physiological genomics.
[44] A. Dominiczak,et al. Genetic and molecular aspects of hypertension. , 2015, Circulation research.
[45] Richard G. Lee,et al. The TMAO-Generating Enzyme Flavin Monooxygenase 3 Is a Central Regulator of Cholesterol Balance. , 2015, Cell Reports.
[46] Kunihiko Sadakane,et al. MEGAHIT: an ultra-fast single-node solution for large and complex metagenomics assembly via succinct de Bruijn graph , 2014, Bioinform..
[47] Angela C. Poole,et al. Human Genetics Shape the Gut Microbiome , 2014, Cell.
[48] S. Hazen,et al. The contributory role of gut microbiota in cardiovascular disease. , 2014, The Journal of clinical investigation.
[49] T. Wolever,et al. Adiposity, gut microbiota and faecal short chain fatty acids are linked in adult humans , 2014, Nutrition & Diabetes.
[50] D. Bluemke,et al. Physical activity, measures of obesity, and cardiometabolic risk: the Multi-Ethnic Study of Atherosclerosis (MESA). , 2014, Journal of physical activity & health.
[51] S. Hazen,et al. Prognostic value of choline and betaine depends on intestinal microbiota-generated metabolite trimethylamine-N-oxide. , 2014, European heart journal.
[52] G. Gloor,et al. Evidence for Greater Production of Colonic Short Chain Fatty Acids in Overweight than Lean Humans , 2014, International Journal of Obesity.
[53] R. Bhadra,et al. NIH Public Access , 2014 .
[54] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[55] Martin McKee,et al. Prevalence, awareness, treatment, and control of hypertension in rural and urban communities in high-, middle-, and low-income countries. , 2013, JAMA.
[56] F. Bushman,et al. Intestinal microbiota metabolism of L-carnitine, a nutrient in red meat, promotes atherosclerosis , 2013, Nature Medicine.
[57] J. Gordon,et al. Olfactory receptor responding to gut microbiota-derived signals plays a role in renin secretion and blood pressure regulation , 2013, Proceedings of the National Academy of Sciences.
[58] Pelin Yilmaz,et al. The SILVA ribosomal RNA gene database project: improved data processing and web-based tools , 2012, Nucleic Acids Res..
[59] J. Bressan,et al. Higher level of faecal SCFA in women correlates with metabolic syndrome risk factors , 2012, British Journal of Nutrition.
[60] M. Szklo,et al. The Multi-Ethnic Study of Atherosclerosis (MESA) , 2012 .
[61] Steven Salzberg,et al. BIOINFORMATICS ORIGINAL PAPER , 2004 .
[62] C. Huttenhower,et al. Metagenomic biomarker discovery and explanation , 2011, Genome Biology.
[63] C. Christophersen,et al. Resistant starch, large bowel fermentation and a broader perspective of prebiotics and probiotics. , 2010, Beneficial microbes.
[64] Dolores Corella,et al. Relative validity of a semi-quantitative food-frequency questionnaire in an elderly Mediterranean population of Spain , 2010, British Journal of Nutrition.
[65] A. Schwiertz,et al. Microbiota and SCFA in Lean and Overweight Healthy Subjects , 2010, Obesity.
[66] Miriam L. Land,et al. Trace: Tennessee Research and Creative Exchange Prodigal: Prokaryotic Gene Recognition and Translation Initiation Site Identification Recommended Citation Prodigal: Prokaryotic Gene Recognition and Translation Initiation Site Identification , 2022 .
[67] B. White,et al. Polysaccharide utilization by gut bacteria: potential for new insights from genomic analysis , 2008, Nature Reviews Microbiology.
[68] Michelle G. Giglio,et al. TIGRFAMs and Genome Properties: tools for the assignment of molecular function and biological process in prokaryotic genomes , 2006, Nucleic Acids Res..
[69] Andy Liaw,et al. Classification and Regression by randomForest , 2007 .
[70] A. Bernalier-Donadille,et al. H2 and acetate transfers during xylan fermentation between a butyrate-producing xylanolytic species and hydrogenotrophic microorganisms from the human gut. , 2006, FEMS microbiology letters.
[71] A. Sanabria,et al. Randomized controlled trial. , 2005, World journal of surgery.
[72] Jeremiah Stamler,et al. Relation of vegetable, fruit, and meat intake to 7-year blood pressure change in middle-aged men: the Chicago Western Electric Study. , 2004, American journal of epidemiology.
[73] D. Briggs,et al. An Evolutionary Perspective , 2004, J. Decis. Syst..
[74] Daniel W. Jones,et al. Seventh report of the Joint National Committee on Prevention, Detection, Evaluation, and Treatment of High Blood Pressure. , 2003, Hypertension.
[75] T. Wolever,et al. Fecal acetate is inversely related to acetate absorption from the human rectum and distal colon. , 2003, The Journal of nutrition.
[76] P. Aaronson,et al. Propionate‐induced relaxation in rat mesenteric arteries: a role for endothelium‐derived hyperpolarising factor , 2002, The Journal of physiology.
[77] Sean R. Eddy,et al. Biological Sequence Analysis: Probabilistic Models of Proteins and Nucleic Acids , 1998 .
[78] Y. Benjamini,et al. Controlling the false discovery rate: a practical and powerful approach to multiple testing , 1995 .
[79] M. Mulvany,et al. Short chain fatty acids dilate isolated human colonic resistance arteries. , 1990, Gut.
[80] Daniel J Buysse,et al. The Pittsburgh sleep quality index: A new instrument for psychiatric practice and research , 1989, Psychiatry Research.