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The arterial system; its influence on the heart and circulation
Artery Research volume 1, pages S7–S14 (2006)
Abstract
From antiquity the arterial pulse was associated with life, and its absence with death. The pulse was considered to carry vital information on the state of health, and was a central part of the physical examination in Chinese, Greek and Arabian medicine [1]. Untold numbers of paintings show the physician feeling the radial artery pulse – though rarely conducting any other sort of examination.
The Roman physician Galen (AD ?130–?200), had a strong influence on this field for over fifteen hundred years. He wrote voluminously on the pulse in a series of tomes that came to assume huge influence in subsequent years – though not at the time of his life [1]. It appears that he was a loner, and not one of influence among contemporary colleagues. He had no pupils, acolytes or disciples. His characterisation of pulses was incomprehensible. But it survived unquestioned until the time of William Harvey [2].
References
O’Rourke MF. Arterial function in health and disease. Edinburgh: Churchill Livingstone; 1982.
Harvey W. de Motu Cordis et Sanguinis in Animalibus 1628. William Fitzer Frankfurt. Translation: Movement of the Heart and Blood in Animals, Translated by Franklin KJ. Oxford: Blackwell; 1957.
Harvey W. de Circulatione Sanguinis [The Circulation of Blood]. Translation by Franklin KJ. Oxford: Blackwell; 1957.
Hales S. 1733. Statical essays containing haemastaticks. History of Medicine Series. Library of New York Academy of Medicine No 22. New York: Harper Publishing; 1964.
Nichols WW, O’Rourke MF. McDonald’s Blood Flow in Arteries, 5th edn. London: Arnold; 2005.
McDonald DA, Taylor MG. The hydrodynamics of the arterial circulation. Prog Biophys Biophys Chem 1959;9:107–73.
Poiseuille JLM. Recherches sur les causes du mouvement du sang dans les veines. J Physiol Esp Pathologie 1830;10:277–95.
Poiseuille JLM. Recherches expérimentales sur le mouvement des liquides dans les tubes de très-petits diamètres. Memoires Savant des Etrangers 1846;9:433–544.
Bright R. Select reports of medical cases. London: Longmans; 1827.
O’Rourke MF. Frederick Akbar Mahomed. Historical Perspective (Invited review). Hypertension 1992;19:212–17.
Marey EJ. Recherches sur le pouls au moyen d’un nouvel appareil enregistreur: le sphygmographe. Paris: E Thunot et Cie; 1860.
Mackenzie J. The study of the pulse. London: Pentland; 1902.
Katz A. Cardiomyopathy of overload. N Engl J Med 1990;322:100–10.
Levy D, Larson MG, Vasan R. The progression from hypertension to congestive heart failure. J Am Med Assoc 1996;275:1557–62.
Anonymous. The sphygmograph in English Medical Practice. Lancet 1866;1:579.
Bramwell C. The arterial pulse in health and disease. Lancet 1937;2:239–347.
Korotkov N. A contribution to the problem of methods for the determination of the blood pressure. In: Ruskin A (Editor), Classics in Arterial Hypertension. Springfield, IL: Thomas; 1927, 126–133.
Postel-Vinay N. A Century of Arterial Hypertension 1896–1996. Chichester: John Wiley; 1996.
McDonald DA. McDonald’s Blood Flow in Arteries. London: Arnold; 1960.
O’Rourke MF, Taylor MG. Donald Arthur McDonald. In: Hurst JW, Conti CR, Fye B (Editors), Profiles in Cardiology. Mahwah, NJ: Foundation for Advances in Medicine and Science; 2003, 400–401.
Gow BS. Circulatory correlates: vascular impedance, resistance and capacity. In: Borh DF, Somlyo AP, Sparks HVJ (Editors), Handbook of Physiology, Section 2. The Cardiovascular System, Vol. 2, Vascular Smooth Muscle. Bethesda, MD: American Physiological Society; 1980, 353–408.
Kelly R, Fitchett D. Noninvasive determination of aortic input impedance and external left ventricular power output: a validation and repeatability study of a new technique. J Am Coll Cardiol 1992;20:952–63.
Mitchell GF, Tardif JC, Arnold JM, et al. Pulsatile hemodynamics in congestive heart failure. Hypertension 2001;38:1433–9.
Kelly R, Hayward C, Ganis J, et al. Non-invasive registration of the arterial pressure pulse waveform using high fidelity applanation tonometry. J Vasc Med Biol 1989;1:142–9.
van Bortel LM, Balkestein EJ, Van der Heijden-Spek JJ, et al. Noninvasive assessment of local arterial pulse pressure, comparison of applanation tonometry and echo-tracking. J Hypertens 2001;19:1037–44.
Hirata K, Yaginuma T, O’Rourke MF, et al. Age-related change in the carotid artery flow and pressure pulses implications to cerebral microvascular disease. Stroke 2006 (in press).
Adji A, Hirata K, O’Rourke MF. Clinical value of indices determined non-invasively from the radial and carotid pressure waveforms. Blood Pressure Monitoring 2006;11:215–21.
Pauca A, O’Rourke M, Kon N. Prospective evaluation of a method for estimating ascending aortic pressure from the radial artery pressure waveform. Hypertension 2001;38:932–7.
Gallagher D, Adji A, O’Rourke MF. Validation of the transfer function technique for generating central from peripheral upper limb pressure waveform. Am J Hypertens 2004;17:1059–67.
Hope SA, Tay DB, Meredith IT, et al. Use of arterial transfer functions for the derivation of central aortic waveform characteristics. J Hypertens 2003;21:1299–305.
Hope SA, Tay DB, Meredith IT, et al. Physiological conditions influence individual arterial transfer functions: implications for the reconstruction of central waveform characteristics. Heart Lung Circulation 2004;13S2:S67.
SHEP Cooperative Research Group. Prevention of stroke by antihypertensive drug treatment in older persons with isolated systolic hypertension. Final results of the Systolic Hypertension in the Elderly Program (SHEP). J Am Med Assoc 1991;265:3255–64.
Williams B, Lacy PS, Thom SM, et al. Differential impact of blood pressure-lowering drugs on central aortic pressure and clinical outcomes: principal results of the Conduit Artery Function Evaluation (CAFE) study. Circulation 2006;113:1213–25.
Roman M, Kizer JR, Ali A, et al. Central blood pressure better predicts cardiovascular events than does peripheral blood pressure: the Strong Heart study. Circulation 2005;112(suppl 2):778.
London GM, Asmar RG, O’Rourke MF, et al.; REASON Project Investigators. Mechanism(s) of selective systolic blood pressure reduction after a low-dose combination of perindopril/indapamide in hypertensive subjects: comparison with atenolol. J Am Coll Cardiol 2004;43:92–9.
Safar ME, London GM, Plante GE. Arterial stiffness and kidney function. Hypertension 2004;43:163–8.
O’Rourke MF, Safar ME. Relationship between aortic stiffening and microvascular disease in brain and kidney: cause and logic of therapy. Hypertension 2005;46:200–4.
Bateman GA. Pulse wave encephalopathy: a spectrum hypothesis incorporating Alzheimer’s disease, vascular dementia and normal pressure hydrocephalus. Med Hypotheses 2004;62:182–7.
Schofield I, Malik R, Izzard A, et al. Vascular structural and functional changes in type 2 diabetes mellitus: evidence for the roles of abnormal myogenic responsiveness and dyslipidemia. Circulation 2002;106:3037–43.
Greenberg SM. Small vessels, big problems. N Engl J Med 2006;354:1451–3.
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O’Rourke, M.F., Hashimoto, J. The arterial system; its influence on the heart and circulation. Artery Res 1 (Suppl 1), S7–S14 (2006). https://doiorg.publicaciones.saludcastillayleon.es/10.1016/S1872-9312(07)70002-9
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DOI: https://doiorg.publicaciones.saludcastillayleon.es/10.1016/S1872-9312(07)70002-9