The Adventitia Layer Modulates the Arterial Wall Elastic Response to Intra-Aortic Counterpulsation: In Vivo Studies

There is a relationship between the intra-aortic balloon pumping (IABP) benefits and the dynamic behavior of muscular arteries, which is associated with induced changes on the vessel walls through an endothelial-dependent mechanism. The arterial wall elastic behavior is influenced by adventitial fun...

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Autor principal: Cabrera-Fischer, E.I
Otros Autores: Bia, D., Zócalo, Y., Wray, S., Armentano, R.
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: 2013
Acceso en línea:Registro en Scopus
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Registro en la Biblioteca Digital
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100 1 |a Cabrera-Fischer, E.I. 
245 1 4 |a The Adventitia Layer Modulates the Arterial Wall Elastic Response to Intra-Aortic Counterpulsation: In Vivo Studies 
260 |c 2013 
270 1 0 |m Bia, D.; Cardiovascular Hemodynamic Group, Physiology Department, School of Medicine, Centro Universitario de Investigacion, Innovación y Diagnóstico Arterial, Republic University, General Flores 2125, Montevideo 11800, Uruguay; email: dbia@fmed.edu.uy 
506 |2 openaire  |e Política editorial 
504 |a Cabrera-Fischer, E., Bia, D., Camus, J., Zócalo, Y., De Forteza, E., Armentano, R., Adventitia-dependent mechanical properties of brachiocephalic ovine arteries in in vivo and in vitro studies (2006) Acta Physiol, 188, pp. 103-111 
504 |a Bia, D., Zócalo, Y., Armentano, R.L., Camus, J., De Forteza, E., Cabrera-Fischer, E.I., The adventitia reduces left ventricular dynamic afterload via smooth muscle activation-dependent mechanisms (2007) Rev Esp Cardiol, 60, pp. 501-509 
504 |a Cabrera-Fischer, E., Bia, D., Zócalo, Y., Camus, J., de Forteza, E., Armentano, R., Effects of removing the adventitia on the mechanical properties of ovine femoral arteries in vivo and in vitro (2010) Circ J, 74, pp. 1014-1022 
504 |a Okada, M., Hasebe, N., Aizawa, Y., Izawa, K., Kawabe, J., Kikuchi, K., Thermal treatment attenuates neointimal thickening with enhanced expression of heat-shock protein 72 and suppression of oxidative stress (2004) Circulation, 109, pp. 1763-1768 
504 |a Gálvez-Prieto, B., Dubrovska, G., Cano, M.V., A reduction in the amount and anti-contractile effect of periadventitial mesenteric adipose tissue precedes hypertension development in spontaneously hypertensive rats (2008) Hypertens Res, 31, pp. 1415-1423 
504 |a Bia, D., Cabrera-Fischer, E., Zócalo, Y., Armentano, R.L., The endothelium modulates the arterial wall mechanical response to intra-aortic balloon counterpulsation: in vivo studies (2001) Artif Organs, 35, pp. 883-892 
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504 |a Cabrera-Fischer, E.I., Bia, D., Zócalo, Y., Armentano, R.L., Smooth muscle-dependent changes in aortic wall dynamics during intra-aortic counterpulsation in an animal model of acute heart failure (2009) Int J Artif Organs, 32, pp. 354-361 
504 |a Bia, D., Zócalo, Y., Armentano, R., Camus, J., Forteza, E., Cabrera-Fischer, E.I., Increased reversal and oscillatory shear stress cause smooth muscle contraction-dependent changes in sheep aortic dynamics: role in aortic balloon pump circulatory support (2008) Acta Physiol (Oxf), 192, pp. 487-503 
504 |a Cabrera-Fischer, E.I., Bia, D., Camus, J.M., Zócalo, Y., de Forteza, E., Armentano, R.L., Effects of intra-aortic counterpulsation on aortic wall energetics and damping: in vivo experiments (2008) ASAIO J, 54, pp. 44-49 
504 |a Bia, D., Barra, J.G., Grignola, J.C., Ginés, F.F., Armentano, R.L., Pulmonary artery smooth muscle activation attenuates arterial dysfunction during acute pulmonary hypertension (2005) J Appl Physiol, 98, pp. 605-613 
504 |a Atlas, G., Li, J.K., Brachial artery differential characteristic impedance: contributions from changes in young's modulus and diameter (2009) Cardiovasc Eng, 9, pp. 11-17 
504 |a Nichols, W., O'Rourke, M., Properties of the arterial wall: theory. Chapter 4: Properties of the arterial wall: practice (2005) McDonald's Blood Flow in Arteries: Theoretical, Experimental and Clinical Principles, pp. 49-65. , Nichols W, O'Rourke M, eds., 4th Edition. London, UK: Edward Arnold, 67-93 
504 |a Wick, M.C., Tauscher, T., Rieger, M., Claudication due to systic adventitial degeneration. A classical differential diagnosis of atherosclerotic peripheral artery disease (2012) Circulation, 125, pp. 1926-1927 
504 |a Gringas, M., Farand, P., Safar, M.E., Plante, G.E., Adventitia: the vital wall of conduit arteries (2009) J Am Soc Hypertens, 3, pp. 166-183 
504 |a Maiellaro, K., Taylor, W.R., The role of the adventitia in vascular inflammation (2007) Cardiovasc Res, 75, pp. 640-648 
504 |a Fleenor, B.S., Marshall, K.D., Durrant, J.R., Lesniewski, L.A., Seals, D.R., Arterial stiffening with ageing is associated with transforming growth factor-β1-related changes in adventitial collagen: reversal by aerobic exercise (2010) J Physiol, 588, pp. 3971-3982 
504 |a Giannattasio, C., Achilli, F., Failla, M., Arterial stiffness in heart failure patients: dependence on diastolic dysfunction and plasma aldosterone levels (2004) Eur Heart J Suppl, 6 (SUPPL. F), pp. F30-F34 
504 |a Meguro, T., Nagatomo, Y., Nagae, A., Elevated arterial stiffness evaluated by brachial-ankle pulse wave velocity is deleterious for the prognosis of patients with heart failure (2009) Circ J, 73, pp. 673-680 
504 |a Khir, A.W., Price, S., Henein, M.Y., Parker, K.H., Pepper, J.R., Intra-aortic balloon pumping: effects on left ventricular diastolic function (2003) Eur J Cardiothorac Surg, 24, pp. 277-282 
504 |a Stefanadis, C., Vlachopoulus, C., Karayannacos, P., Effect of vasa vasorum flow on structure and function of the aorta in experimental animals (1995) Circulation, 91, pp. 2669-2678 
504 |a Bia, D., Zócalo, Y., Are peripheral arterial changes during enhanced external counterpulsation necessary for and/or evidence of an adequate cardiovascular response? (2013) Hypertens Res, 36, pp. 293-294 
520 3 |a There is a relationship between the intra-aortic balloon pumping (IABP) benefits and the dynamic behavior of muscular arteries, which is associated with induced changes on the vessel walls through an endothelial-dependent mechanism. The arterial wall elastic behavior is influenced by adventitial function; however, no studies were performed in order to elucidate if this layer plays a role in the changes determined by IABP. Our aim was to quantify acute IABP effects on the mechanical properties of muscular arteries in induced acute heart failure (AHF), before and after adventitia removal. Pressure and diameter were recorded in the iliac arteries (IA) of sheep (n=7), before and during 1:2 IABP: (i) in control state (CS) with intact IA, (ii) in CS after IA adventitia removal, and (iii) in de-adventitialized IA after AHF. Conduit function, compliance and arterial distensibility were calculated in each state. During CS, IABP resulted in intact IA dilatation and in an increase in conduit function, compliance and distensibility; adventitial removal determined an increase of arterial stiffness with respect to the CS, which decreased when IABP was used; the increase in arterial stiffness observed after adventitia removal was also detected in AHF state; IABP improves conduit function and arterial stiffness in de-adventitialized arteries, both before and during AHF. However, the improvement in these properties was lower than in intact arteries. Before and after AHF induction, the improvements of conduit function and arterial distensibility determined by IABP in intact IA were significantly reduced after adventitia removal. Adventitial layer integrity would be necessary to maximize IABP-related beneficial effects on arterial system properties. © 2013 Wiley Periodicals, Inc. and International Center for Artificial Organs and Transplantation.  |l eng 
593 |a AIDUF-CONICET, Buenos Aires, Argentina 
593 |a Facultad de Ingeniería y Ciencias Exactas y Naturales, Favaloro University, Buenos Aires, Argentina 
593 |a Favaloro University, Buenos Aires, Argentina 
593 |a Hemodynamic Group, Physiology Department, School of Medicine, Centro Universitario de Investigacion, Innovacion y Diagnóstico Arterial, Republic University, Montevideo, Uruguay 
690 1 0 |a ACUTE HEART FAILURE 
690 1 0 |a ADVENTITIA 
690 1 0 |a ARTERIAL STIFFNESS 
690 1 0 |a INTRA-AORTIC BALLOON PUMP 
690 1 0 |a ACUTE HEART FAILURE 
690 1 0 |a ANIMAL EXPERIMENT 
690 1 0 |a ANIMAL MODEL 
690 1 0 |a ANIMAL TISSUE 
690 1 0 |a ARTERY WALL 
690 1 0 |a ARTICLE 
690 1 0 |a BLOOD VESSEL WALL 
690 1 0 |a CONTROLLED STUDY 
690 1 0 |a COUNTERPULSATION 
690 1 0 |a COUNTERPULSATION DEVICE 
690 1 0 |a ELASTICITY 
690 1 0 |a ELECTROCARDIOGRAM 
690 1 0 |a ILIAC ARTERY 
690 1 0 |a IN VIVO STUDY 
690 1 0 |a INTRAAORTIC BALLOON PUMP 
690 1 0 |a NONHUMAN 
690 1 0 |a PRIORITY JOURNAL 
690 1 0 |a SHEEP 
690 1 0 |a OVIS ARIES 
700 1 |a Bia, D. 
700 1 |a Zócalo, Y. 
700 1 |a Wray, S. 
700 1 |a Armentano, R. 
773 0 |d 2013  |g v. 37  |h pp. 1041-1048  |k n. 12  |p Artif. Organs  |x 0160564X  |t Artificial Organs 
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