of Birmingham Mechanisms underpinning sympathetic nervous activity and its modulation using transcutaneous vagus nerve stimulation.
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J. Deuchars | Aaron R. Murray | J. Clancy | S. Deuchars | V. Lall | Mohd Mahadi | Lucy Peers | M. Mahadi | Aaron Murray
[1] J. Deuchars,et al. Physiologic regulation of heart rate and blood pressure involves connexin 36–containing gap junctions , 2017, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[2] J. Deuchars,et al. The strange case of the ear and the heart: The auricular vagus nerve and its influence on cardiac control , 2016, Autonomic Neuroscience.
[3] Douglas L. Mann,et al. Neuromodulation of the Failing Heart , 2016, JACC. Basic to translational science.
[4] K. Rijkers,et al. Morphology of the human cervical vagus nerve: implications for vagus nerve stimulation treatment , 2016, Acta neurologica Scandinavica.
[5] P. Schwartz,et al. Autonomic Modulation for the Management of Patients with Chronic Heart Failure , 2015, Circulation. Heart failure.
[6] S. Deuchars,et al. Sympathetic preganglionic neurons: properties and inputs. , 2015, Comprehensive Physiology.
[7] H. Nakagawa,et al. Low-level transcutaneous electrical vagus nerve stimulation suppresses atrial fibrillation. , 2015, Journal of the American College of Cardiology.
[8] J. Deuchars,et al. Non-invasive Vagus Nerve Stimulation in Healthy Humans Reduces Sympathetic Nerve Activity , 2014, Brain Stimulation.
[9] T. Raju,et al. Influence of age and gender on autonomic regulation of heart , 2013, Journal of Clinical Monitoring and Computing.
[10] J. Deuchars,et al. The wonders of the Wanderer , 2013, Experimental physiology.
[11] M. Bombelli,et al. Diurnal blood pressure variation and sympathetic activity , 2010, Hypertension Research.
[12] H. Middlekauff,et al. Increased muscle sympathetic nerve activity predicts mortality in heart failure patients. , 2009, International journal of cardiology.
[13] S. Dietrich,et al. A novel transcutaneous vagus nerve stimulation leads to brainstem and cerebral activations measured by functional MRI / Funktionelle Magnetresonanztomographie zeigt Aktivierungen des Hirnstamms und weiterer zerebraler Strukturen unter transkutaner Vagusnervstimulation , 2008, Biomedizinische Technik. Biomedical engineering.
[14] J. Kornhuber,et al. BOLD fMRI deactivation of limbic and temporal brain structures and mood enhancing effect by transcutaneous vagus nerve stimulation , 2007, Journal of Neural Transmission.
[15] P. Stein,et al. Vagal modulation and aging , 2007, Biological Psychology.
[16] Alberto Malliani,et al. Heart rate variability: from bench to bedside. , 2005, European journal of internal medicine.
[17] E. Peuker,et al. The nerve supply of the human auricle , 2002, Clinical anatomy.
[18] A. Zamotrinsky,et al. Vagal neurostimulation in patients with coronary artery disease , 2001, Autonomic Neuroscience.
[19] L. Ginsberg,et al. Great auricular nerve: anatomy and imaging in a case of perineural tumor spread. , 2000, AJNR. American journal of neuroradiology.
[20] V G Macefield,et al. Firing properties of single muscle vasoconstrictor neurons in the sympathoexcitation associated with congestive heart failure. , 1999, Circulation.
[21] R. Prescott,et al. Prospective study of heart rate variability and mortality in chronic heart failure: results of the United Kingdom heart failure evaluation and assessment of risk trial (UK-heart). , 1998, Circulation.
[22] D H Singer,et al. Twenty-four hour time domain heart rate variability and heart rate: relations to age and gender over nine decades. , 1998, Journal of the American College of Cardiology.
[23] J. Bigger,et al. Baroreflex sensitivity and heart-rate variability in prediction of total cardiac mortality after myocardial infarction , 1998, The Lancet.
[24] R. Karpov,et al. Effects of electrostimulation of the vagus afferent endings in patients with coronary artery disease , 1997, Coronary artery disease.
[25] G. Jennings,et al. Adverse consequences of high sympathetic nervous activity in the failing human heart. , 1995, Journal of the American College of Cardiology.
[26] D. Seals,et al. Effects of aging on epinephrine secretion and regional release of epinephrine from the human heart. , 1995, The Journal of clinical endocrinology and metabolism.
[27] M. Hori,et al. Vagally mediated heart rate recovery after exercise is accelerated in athletes but blunted in patients with chronic heart failure. , 1994, Journal of the American College of Cardiology.
[28] A. Ng,et al. Age and gender influence muscle sympathetic nerve activity at rest in healthy humans. , 1993, Hypertension.
[29] J. J. Smith,et al. Effects of aging on baroreflex regulation of sympathetic activity in humans. , 1992, The American journal of physiology.
[30] R. Callister,et al. Sympathetic activity is influenced by task difficulty and stress perception during mental challenge in humans. , 1992, The Journal of physiology.
[31] J. Cohn,et al. Plasma norepinephrine as a guide to prognosis in patients with chronic congestive heart failure. , 1984, The New England journal of medicine.
[32] R. Cohen,et al. Power spectrum analysis of heart rate fluctuation: a quantitative probe of beat-to-beat cardiovascular control. , 1981, Science.
[33] A Malliani,et al. A Cardiocardiac Sympathovagal Reflex in the Cat , 1973, Circulation research.
[34] D L Eckberg,et al. Defective cardiac parasympathetic control in patients with heart disease. , 1971, The New England journal of medicine.