A double-blind, randomised, placebo-controlled parallel study to investigate the effect of sex and dietary nitrate on COVID-19 vaccine-induced vascular dysfunction in healthy men and women: protocol of the DiNOVasc-COVID-19 study
暂无分享,去创建一个
V. Kapil | R. Khambata | Tipparat Parakaw | Krishnaraj S. Rathod | Nicki Dyson | A. Ahluwalia | V. Apea | Thomas Godec | A. Shabbir | I. Chhetri | Clement Lau | Muhammad A. B. N. Aubdool | Gianmichele Massimo | Jan Flint | Chloe Orkin
[1] M. Woodward,et al. Sex differences in cardiovascular complications and mortality in hospital patients with covid-19: registry based observational study , 2023, BMJ medicine.
[2] J. Lancaster,et al. Nitric oxide signaling in health and disease , 2022, Cell.
[3] A. Ahluwalia,et al. BS37 Leukocytic nitrate reductase activity mitigates systemic inflammation-induced endothelial dysfunction in humans by accelerating resolution , 2022, Basic science.
[4] Dave L Dixon,et al. Endothelial dysfunction and immunothrombosis as key pathogenic mechanisms in COVID-19 , 2021, Nature Reviews Immunology.
[5] A. Baumbach,et al. Therapeutic Implications of COVID-19 for the Interventional Cardiologist , 2020, Journal of cardiovascular pharmacology and therapeutics.
[6] K. Peter,et al. Higher mortality of COVID-19 in males: sex differences in immune response and cardiovascular comorbidities , 2020, Cardiovascular research.
[7] P. Libby,et al. COVID-19 is, in the end, an endothelial disease , 2020, European heart journal.
[8] A. Amanullah,et al. Arrhythmia in COVID-19 , 2020, SN Comprehensive Clinical Medicine.
[9] C. Weber,et al. Endothelial dysfunction in COVID-19: a position paper of the ESC Working Group for Atherosclerosis and Vascular Biology, and the ESC Council of Basic Cardiovascular Science , 2020, Cardiovascular research.
[10] D. Lewis,et al. COVID-19 and cardiovascular disease: from basic mechanisms to clinical perspectives , 2020, Nature Reviews Cardiology.
[11] K. Bhaskaran,et al. OpenSAFELY: factors associated with COVID-19 death in 17 million patients , 2020, Nature.
[12] A. Ahluwalia,et al. The Noncanonical Pathway for In Vivo Nitric Oxide Generation: The Nitrate-Nitrite-Nitric Oxide Pathway , 2020, Pharmacological Reviews.
[13] W. Liang,et al. Risk Factors of Fatal Outcome in Hospitalized Subjects With Coronavirus Disease 2019 From a Nationwide Analysis in China , 2020, Chest.
[14] Christian Templin,et al. Typical takotsubo syndrome triggered by SARS-CoV-2 infection , 2020, European heart journal.
[15] V. Aboyans,et al. ENDOTHELIAL FUNCTION IN CARDIOVASCULAR PRECISION MEDICINE : A POSITION PAPER ON BEHALF OF THE EUROPEAN SOCIETY OF CARDIOLOGY. , 2020, Cardiovascular research.
[16] S. Merler,et al. Baseline Characteristics and Outcomes of 1591 Patients Infected With SARS-CoV-2 Admitted to ICUs of the Lombardy Region, Italy. , 2020, JAMA.
[17] Fenglian Ma,et al. Coronavirus fulminant myocarditis treated with glucocorticoid and human immunoglobulin , 2020, European heart journal.
[18] J. Xiang,et al. Clinical course and risk factors for mortality of adult inpatients with COVID-19 in Wuhan, China: a retrospective cohort study , 2020, The Lancet.
[19] D. Thijssen,et al. Expert consensus and evidence-based recommendations for the assessment of flow-mediated dilation in humans. , 2019, European heart journal.
[20] A. Ahluwalia,et al. Accelerated resolution of inflammation underlies sex differences in inflammatory responses in humans , 2016, The Journal of clinical investigation.
[21] Jamie R. Blackwell,et al. Dietary nitrate modulates cerebral blood flow parameters and cognitive performance in humans: A double-blind, placebo-controlled, crossover investigation , 2015, Physiology & Behavior.
[22] M. Caulfield,et al. Dietary nitrate provides sustained blood pressure lowering in hypertensive patients: a randomized, phase 2, double-blind, placebo-controlled study. , 2015, Hypertension.
[23] D. Thijssen,et al. Is Flow-Mediated Dilation Nitric Oxide Mediated?: A Meta-Analysis , 2014, Hypertension.
[24] M. Gilchrist,et al. Effect of dietary nitrate on blood pressure, endothelial function, and insulin sensitivity in type 2 diabetes. , 2013, Free radical biology & medicine.
[25] Amrita Ahluwalia,et al. Inorganic Nitrate Supplementation Lowers Blood Pressure in Humans: Role for Nitrite-Derived NO , 2010, Hypertension.
[26] I. Wilkinson,et al. Validity and repeatability of the Vicorder apparatus: a comparison with the SphygmoCor device , 2009, Hypertension Research.
[27] Rajesh K Kharbanda,et al. Inflammation-induced endothelial dysfunction involves reduced nitric oxide bioavailability and increased oxidant stress. , 2004, Cardiovascular research.
[28] Aroon D. Hingorani,et al. Acute Systemic Inflammation Impairs Endothelium-Dependent Dilatation in Humans , 1999, Circulation.
[29] L. Ignarro,et al. Oxidation of nitric oxide in aqueous solution to nitrite but not nitrate: comparison with enzymatically formed nitric oxide from L-arginine. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[30] J. K. Lloyd,et al. Non-invasive detection of endothelial dysfunction in children and adults at risk of atherosclerosis , 1992, The Lancet.
[31] L. Ignarro,et al. Nitric oxide synthase from cerebellum catalyzes the formation of equimolar quantities of nitric oxide and citrulline from L-arginine. , 1992, Biochemical and biophysical research communications.
[32] S. Moncada,et al. ENDOGENOUS NITRIC OXIDE INHIBITS HUMAN PLATELET ADHESION TO VASCULAR ENDOTHELIUM , 1987, The Lancet.
[33] Hilde van der Togt,et al. Publisher's Note , 2003, J. Netw. Comput. Appl..
[34] P. López-Jaramillo,et al. The L-arginine: nitric oxide pathway. , 1993, Current opinion in nephrology and hypertension.