Pulmonary vascular resistance and compliance relationship in pulmonary hypertension
暂无分享,去创建一个
D. Chemla | Y. Papelier | P. Hervé | E. Lau | P. Attal
[1] J. Paulus,et al. Pulmonary Arterial Capacitance Is an Important Predictor of Mortality in Heart Failure With a Preserved Ejection Fraction. , 2015, JACC. Heart failure.
[2] Sanjiv J. Shah,et al. Management of Pulmonary Arterial Hypertension , 2015, Seminars in Respiratory and Critical Care Medicine.
[3] J. Newman,et al. Effect of acute arteriolar vasodilation on capacitance and resistance in pulmonary arterial hypertension. , 2015, Chest.
[4] J. Barberà,et al. The distribution of the obstruction in the pulmonary arteries modifies pulsatile right ventricular afterload in pulmonary hypertension. , 2015, International journal of cardiology.
[5] D. Aronson,et al. Pulmonary arterial capacitance in patients with heart failure and reactive pulmonary hypertension , 2015, European journal of heart failure.
[6] R. Naeije,et al. The right ventricle in pulmonary arterial hypertension , 2014, European Respiratory Review.
[7] D. Badesch,et al. [Definitions and diagnosis of pulmonary hypertension]. , 2014, Turk Kardiyoloji Dernegi arsivi : Turk Kardiyoloji Derneginin yayin organidir.
[8] D. Celermajer,et al. Dobutamine stress echocardiography for the assessment of pressure-flow relationships of the pulmonary circulation. , 2014, Chest.
[9] R. Tedford. Determinants of Right Ventricular Afterload (2013 Grover Conference Series) , 2014, Pulmonary circulation.
[10] S. Ghio,et al. Prognostic relevance of pulmonary arterial compliance in patients with chronic heart failure. , 2014, Chest.
[11] J. Grignola. Is the time constant of the pulmonary circulation truly constant? , 2014, European Respiratory Journal.
[12] J. Lumens,et al. Right heart adaptation to pulmonary arterial hypertension: physiology and pathobiology. , 2013, Journal of the American College of Cardiology.
[13] F. Martinez,et al. Pulmonary hypertension due to left heart diseases. , 2013, Journal of the American College of Cardiology.
[14] W. Klepetko,et al. Surgical specimens, haemodynamics and long-term outcomes after pulmonary endarterectomy , 2013, Thorax.
[15] Ami A. Shah,et al. Right Ventricular Dysfunction in Systemic Sclerosis–Associated Pulmonary Arterial Hypertension , 2013, Circulation. Heart failure.
[16] M. Humbert,et al. Strong linear relationship between heart rate and mean pulmonary artery pressure in exercising patients with severe precapillary pulmonary hypertension. , 2013, American journal of physiology. Heart and circulatory physiology.
[17] R. Naeije,et al. Decreased time constant of the pulmonary circulation in chronic thromboembolic pulmonary hypertension. , 2013, American journal of physiology. Heart and circulatory physiology.
[18] R. Naeije,et al. Proximal pulmonary arterial obstruction decreases the time constant of the pulmonary circulation and increases right ventricular afterload. , 2013, Journal of applied physiology.
[19] E. Domingo,et al. Pulmonary endarterectomy in chronic thromboembolic pulmonary hypertension: How can patients be better selected? , 2013, World journal of cardiology.
[20] R. Starling,et al. Prognostic Role of Pulmonary Arterial Capacitance in Advanced Heart Failure , 2012, Circulation. Heart failure.
[21] R. Benza,et al. An evaluation of long-term survival from time of diagnosis in pulmonary arterial hypertension from the REVEAL Registry. , 2012, Chest.
[22] D. Celermajer,et al. Abnormal Pulmonary Artery Stiffness in Pulmonary Arterial Hypertension: In Vivo Study with Intravascular Ultrasound , 2012, PloS one.
[23] R. Benza,et al. The REVEAL Registry risk score calculator in patients newly diagnosed with pulmonary arterial hypertension. , 2012, Chest.
[24] James O. Mudd,et al. Pulmonary Capillary Wedge Pressure Augments Right Ventricular Pulsatile Loading , 2012, Circulation.
[25] J. Granton,et al. Early postoperative pulmonary vascular compliance predicts outcome after pulmonary endarterectomy for chronic thromboembolic pulmonary hypertension. , 2011, Chest.
[26] Naomi C. Chesler,et al. Pulmonary vascular wall stiffness: An important contributor to the increased right ventricular afterload with pulmonary hypertension , 2011, Pulmonary circulation.
[27] Nico Westerhof,et al. Proportional Relations Between Systolic, Diastolic and Mean Pulmonary Artery Pressure are Explained by Vascular Properties , 2010, Cardiovascular engineering and technology.
[28] N. Westerhof,et al. The arterial load in pulmonary hypertension , 2010, European Respiratory Review.
[29] A. Zaiman,et al. Hemodynamic predictors of survival in scleroderma-related pulmonary arterial hypertension. , 2010, American journal of respiratory and critical care medicine.
[30] D. Chemla,et al. Total arterial compliance estimated from the time constant of aortic pressure decay: the influence of downstream pressure , 2010 .
[31] B. Westerhof,et al. RC time constant of single lung equals that of both lungs together: a study in chronic thromboembolic pulmonary hypertension. , 2009, American journal of physiology. Heart and circulatory physiology.
[32] I. Aleksic,et al. Critical Closing Pressure as the Arterial Downstream Pressure with the Heart Beating and during Circulatory Arrest , 2009, Anesthesiology.
[33] Ramakrishna Mukkamala,et al. Continuous cardiac output and left atrial pressure monitoring by long time interval analysis of the pulmonary artery pressure waveform: proof of concept in dogs. , 2009, Journal of applied physiology.
[34] Berend E. Westerhof,et al. The arterial Windkessel , 2009, Medical & Biological Engineering & Computing.
[35] Nico Westerhof,et al. Pulmonary vascular resistance and compliance stay inversely related during treatment of pulmonary hypertension. , 2008, European heart journal.
[36] D. Chemla,et al. Towards New Indices of Arterial Stiffness Using Systolic Pulse Contour Analysis: A Theoretical Point of View , 2008, Journal of cardiovascular pharmacology.
[37] Nico Westerhof,et al. Noninvasively assessed pulmonary artery stiffness predicts mortality in pulmonary arterial hypertension. , 2007, Chest.
[38] Nico Westerhof,et al. Quantification of right ventricular afterload in patients with and without pulmonary hypertension. , 2006, American journal of physiology. Heart and circulatory physiology.
[39] Paul Sorajja,et al. Relationship of pulmonary arterial capacitance and mortality in idiopathic pulmonary arterial hypertension. , 2006, Journal of the American College of Cardiology.
[40] Vivek Muthurangu,et al. Measurement of total pulmonary arterial compliance using invasive pressure monitoring and MR flow quantification during MR-guided cardiac catheterization. , 2005, American journal of physiology. Heart and circulatory physiology.
[41] Amir Haghighat,et al. Snapshots of Hemodynamics: An Aid for Clinical Research and Graduate Education , 2005 .
[42] J. Linehan,et al. Distensibility of the normal human lung circulation during exercise. , 2005, American journal of physiology. Lung cellular and molecular physiology.
[43] Ori Ben-Yehuda,et al. Preoperative Partitioning of Pulmonary Vascular Resistance Correlates With Early Outcome After Thromboendarterectomy for Chronic Thromboembolic Pulmonary Hypertension , 2004, Circulation.
[44] R. Naeije,et al. Single arterial occlusion to locate resistance in patients with pulmonary hypertension , 2003, European Respiratory Journal.
[45] D. Chemla,et al. Haemodynamic evaluation of pulmonary hypertension , 2002, European Respiratory Journal.
[46] Y Lecarpentier,et al. Pulmonary artery pulse pressure and wave reflection in chronic pulmonary thromboembolism and primary pulmonary hypertension. , 2001, Journal of the American College of Cardiology.
[47] Pascal Verdonck,et al. Pulmonary arterial compliance in dogs and pigs: the three-element windkessel model revisited. , 1999, American journal of physiology. Heart and circulatory physiology.
[48] G. Montalescot,et al. Effects of prostacyclin on the pulmonary vascular tone and cardiac contractility of patients with pulmonary hypertension secondary to end-stage heart failure. , 1998, The American journal of cardiology.
[49] T. Walsh,et al. Mathematical coupling in medical research: lessons from studies of oxygen kinetics. , 1998, British journal of anaesthesia.
[50] C. Mélot,et al. Partitioning of pulmonary vascular resistance in primary pulmonary hypertension. , 1998, Journal of the American College of Cardiology.
[51] B. Lieber,et al. Clinical significance of pulmonary arterial input impedance. , 1996, The European respiratory journal.
[52] H. Senzaki,et al. Relationship between the pulmonary artery index and physiological properties of the pulmonary vascular bed. , 1996, Japanese circulation journal.
[53] G. Belz,et al. Elastic properties and Windkessel function of the human aorta , 1995, Cardiovascular Drugs and Therapy.
[54] E H Bergofsky,et al. Survival in Patients with Primary Pulmonary Hypertension: Results from a National Prospective Registry , 1991 .
[55] N Westerhof,et al. Normalized input impedance and arterial decay time over heart period are independent of animal size. , 1991, The American journal of physiology.
[56] C. Mélot,et al. Nature of pulmonary hypertension in canine oleic acid pulmonary edema. , 1990, Journal of applied physiology.
[57] K Sagawa,et al. Translation of Otto Frank's paper "Die Grundform des Arteriellen Pulses" Zeitschrift für Biologie 37: 483-526 (1899). , 1990, Journal of molecular and cellular cardiology.
[58] D. Fitchett,et al. Vasodilators and pulmonary arterial hypertension: the paradox of therapeutic success and clinical failure. , 1988, International journal of cardiology.
[59] K P Brin,et al. Estimation of total arterial compliance: an improved method and evaluation of current methods. , 1986, The American journal of physiology.
[60] J. Cosín,et al. Time constant of isovolumic pressure fall: new numerical approaches and significance. , 1984, The American journal of physiology.
[61] D. Adam,et al. Myocardial Relaxation. V. Postextrasystolic Contraction‐Relaxation in the Intact Dog Heart , 1981, Circulation.
[62] S A Glantz,et al. Volume Loading Slows Left Ventricular Isovolumic Relaxation Rate , 1981, Circulation research.
[63] J P Archie,et al. Mathematic Coupling of Data: A Common Source of Error , 1981, Annals of surgery.
[64] Y. Enson. Pulmonary heart disease: relation of pulmonary hypertension to abnormal lung structure and function. , 1977, Bulletin of the New York Academy of Medicine.
[65] B. Kirby. Pulmonary Artery Compliance in Pulmonary Heart Disease , 1975 .
[66] S. Reuben,et al. Compliance of the Human Pulmonary Arterial System in Disease , 1971, Circulation research.
[67] C. Conti,et al. An Official Journal of the American Heart Association Pulmonary Arterial Pulse Wave Velocity and Impedance in Man , 2005 .
[68] R. Riley,et al. HEMODYNAMICS OF COLLAPSIBLE VESSELS WITH TONE: THE VASCULAR WATERFALL. , 1963, Journal of applied physiology.
[69] A B DUBOIS,et al. Mechanics of pulmonary circulation in isolated rabbit lungs. , 1959, The American journal of physiology.
[70] R. Barst,et al. Four- and seven-year outcomes of patients with congenital heart disease-associated pulmonary arterial hypertension (from the REVEAL Registry). , 2014, The American journal of cardiology.
[71] N. Chesler,et al. Pulmonary circulation at exercise. , 2012, Comprehensive Physiology.
[72] H. Olschewski,et al. [Pulmonary hypertension]. , 2012, Deutsche medizinische Wochenschrift.
[73] W. Klepetko,et al. Right ventricular load at exercise is a cause of persistent exercise limitation in patients with normal resting pulmonary vascular resistance after pulmonary endarterectomy. , 2011, Chest.
[74] S. Awa,et al. Pulmonary arterial compliance in children with atrial and ventricular septal defect , 2000, Heart and Vessels.
[75] H. Senzaki,et al. New criteria for the radical repair of congenital heart disease with pulmonary hypertension. In order to avoid postoperative residual pulmonary hypertension. , 1995, Japanese heart journal.
[76] J. Severinghaus. Pulmonary vascular function. , 1977, The American review of respiratory disease.
[77] M. I. Ferrer,et al. A reconsideration of the origins of pulmonary hypertension. , 1971, Chest.