In vivo evaluation of the miniaturized Gyro centrifugal pump as an implantable ventricular assist device.
暂无分享,去创建一个
H. Schima | E. Wolner | Y. Nosé | K. Nakata | E. Tayama | Y. Takami | Y. Ohashi | H. Schmallegger | G. Otsuka | J. Mueller | Y. Sugita
[1] H. Schima,et al. Anatomical consideration for an implantable centrifugal biventricular assist system. , 2008, Artificial organs.
[2] Y Nosé,et al. Material of the double pivot bearing system in the Gyro C1E3 centrifugal pump. , 2008, Artificial organs.
[3] J. Antaki,et al. Long-term animal survival with an implantable axial flow pump as a left ventricular assist device. , 2008, Artificial organs.
[4] G Damm,et al. Baylor Gyro Pump: a completely seal-less centrifugal pump aiming for long-term circulatory support. , 2008, Artificial organs.
[5] H. Harasaki,et al. Effects of temperature on phagocytosis of human and calf polymorphonuclear leukocytes. , 2008, Artificial organs.
[6] J M Fuqua,et al. Development of an implantable ventricular assist system. , 1997, The Annals of thoracic surgery.
[7] G. Noon,et al. Ex vivo evaluation of the NASA/DeBakey axial flow ventricular assist device. Results of a 2 week screening test. , 1996, ASAIO journal.
[8] O. Frazier,et al. Improved left ventricular function after chronic left ventricular unloading. , 1996, The Annals of thoracic surgery.
[9] P. Allaire,et al. Development of a Prototype Magnetically Suspended Rotor Ventricular Assist Device , 1996, ASAIO journal.
[10] George Damm,et al. Development of a Pivot Bearing Supported Sealless Centrifugal Pump for Ventricular Assist. , 1996, Artificial organs.
[11] William A Smith,et al. The Cleveland Clinic Rotodynamic Pump Program. , 1996, Artificial organs.
[12] Hisateru Takano,et al. Development of a Centrifugal Pump with Improved Antithrombogenicity and Hemolytic Property for Chronic Circulatory Support. , 1996, Artificial organs.
[13] B. Griffith,et al. Transplant candidate's clinical status rather than right ventricular function defines need for univentricular versus biventricular support. , 1996, The Journal of thoracic and cardiovascular surgery.
[14] Y. Nosé. FDA approval of clinical studies on left ventricular assist system for its therapeutic application. , 1996, Artificial organs.
[15] H. Oral,et al. Proinflammatory cytokine levels in patients with depressed left ventricular ejection fraction: a report from the Studies of Left Ventricular Dysfunction (SOLVD). , 1996, Journal of the American College of Cardiology.
[16] D. Mancini,et al. Multivariate analysis of factors affecting waiting time to heart transplantation. , 1996, The Annals of thoracic surgery.
[17] T. Akamatsu,et al. Development of a Magnetically Suspended Centrifugal Pump as a Cardiac Assist Device for Long-Term Application , 1996, ASAIO journal.
[18] H. Harasaki,et al. Reduced expression of platelet surface glycoprotein receptor IIb/IIIa at hyperthermic temperatures. , 1995, Laboratory investigation; a journal of technical methods and pathology.
[19] U Losert,et al. An implantable seal-less centrifugal pump with integrated double-disk motor. , 1995, Artificial organs.
[20] T Nakatani,et al. Long-term circulatory support to promote recovery from profound heart failure. , 1995, ASAIO journal.
[21] R T Kung,et al. Progress in the development of the ABIOMED total artificial heart. , 1995, ASAIO journal.
[22] P. McCarthy,et al. HeartMate implantable left ventricular assist device: bridge to transplantation and future applications. , 1995, The Annals of thoracic surgery.
[23] H. Harasaki,et al. Chronic nonpulsatile blood flow. I. Cerebral autoregulation in chronic nonpulsatile biventricular bypass: carotid blood flow response to hypercapnia. , 1994, The Journal of thoracic and cardiovascular surgery.
[24] Y Nosé,et al. Development and evaluation of antithrombogenic centrifugal pump: the Baylor C-Gyro Pump Eccentric Inlet Port Model. , 1994, Artificial organs.
[25] H Harasaki,et al. Adaptation of tissue to a chronic heat load. , 1994, ASAIO journal.
[26] I. Sakuma,et al. Flow visualization evaluation of secondary flow in a centrifugal blood pump. , 1993, ASAIO journal.
[27] H Harasaki,et al. Plasma protein and gelatin surface interactions. Kinetics of protein adsorption. , 1987, ASAIO transactions.
[28] M. Oz,et al. Experience with right ventricular assist devices for perioperative right-sided circulatory failure. , 1996, The Annals of thoracic surgery.
[29] M. Oz,et al. Miniature axial flow pump for ventricular assistance in children and small adults. , 1996, The Journal of thoracic and cardiovascular surgery.
[30] W. Santamore,et al. Left ventricular contributions to right ventricular systolic function during LVAD support. , 1996, The Annals of thoracic surgery.
[31] G Damm,et al. An ultimate, compact, seal-less centrifugal ventricular assist device: Baylor C-Gyro pump. , 1994, Artificial organs.
[32] D. Farrar,et al. Univentricular and biventricular Thoratec VAD support as a bridge to transplantation. , 1993, The Annals of thoracic surgery.
[33] H. Harasaki,et al. Damage to erythrocytes from long-term heat stress. , 1992, Clinical science.