Evaluating asymmetrical thermal distributions through image processing.
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Biomedical subjects
Publications and source records attributed to I Fujimasa.
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An artificial heart (AH) driving system, in which a sac or diaphragm type blood pump is liquid gas driven, is designed. The working mechanism of this system is as follows: 1) liquid gas is used for the driving source; 2) a liquid gas is stored in its liquid state in the circuit; 3) a liquid gas is vaporized, and the vaporizing pressure squeezes the blood pump, causing ejection of blood; 4) vaporized gas is aspirated and compressed by a small compressor to liquefaction through the heat exchanger, then negative pressure is applied to the blood pump and blood is aspirated; and 5) the blood pump is driven in this closed cycle. To demonstrate the mechanism of this system, a prototype was developed using Freon 114 as the liquid gas. In this system, the maximum flow of the AH at a 100 pulse per minute rate, was about 6.9 L/min, using a 90 ml sac type blood pump. The advantages of this AH driving mechanism are as follows: 1) a small system is available because pressure chambers are not necessary; 2) a biventricular system is available, with a single compressor; 3) no compliance chamber is necessary if the system is small enough to be implanted.
A total of 61 VASs developed in Tokyo University were evaluated at 21 institutions in the period 1985-1989 for determination of its reliability and effectiveness. The system is comprised of a pneumatic sack-type pump (Nippon Zeon Co.), and its driving console (Aishin Seiki Co.). The stroke volume of the pump is 40 ml and blood contacting surfaces are coated with Cardiothane. Ages of the patients (pts) ranged from 12-82 yrs (mean 58 yrs). VASs were used in the assist mode of LVAD (54 pts), RVAD (5 pts) and BVAD (2 pts). Most of the cases (58 pts) included postocardiotomy cardiogenic shock after surgery for ischemic (28 pts), valvular (22 pts), both ischemic and valvular (7 pts) and congenital (1 pt) heart diseases. Average duration of the assist ranged from 1 hr-20 days (mean 5.6 dys). The VADs could be weaned in 34 cases (56%) and among these, 13 cases (21%) survived to discharge from the hospital. Causes of death in cases which could be weaned from the VAD included multiple organ failure/due to delayed institution of adequate circulatory support, renal failure and systemic infection. Small and minute thrombus formations were noted in 7 cases however, no pump originated thromboembolism were complicated. No troubles of the pump including leakage nor breakage, no mechanical failures of the driving consoles were experienced in any of the cases. Thus, it is concluded that the system was proved to be clinically effective and reliable.
The purpose of this study was to clarify whether plasma ANP levels (p-ANP) are abnormal in TAH animals, and if ANP plays an important role in circulatory failure in TAH animals. In five TAH goats that survived for 51-171 days, changes in hemodynamic parameters, plasma levels of renin, angiotensin I and II, aldosterone (p-RAA), and p-ANP were measured, and correlations between p-ANP and other parameters were studied, and histologic study of ANP and assay of the ANP content in atrial tissue was undertaken. Generally, p-ANP of TAH goats fell temporarily after surgery but then recovered to preoperative levels. Histopathologic studies of atrial tissue and ANP granules proved almost normal, although the coronary blood supply was occluded for more than 170 days; the ANP content in the atrium did not show significant changes after 51 days of TAH pumping. In one case prominent correlations between p-ANP and p-RAA were observed, and in another case significant correlation between p-ANP and arterial pressure was observed. However, these correlations were not observed in every case. In TAH goats the plasma ANP level did not increase in spite of high atrial pressures. Plasma ANP levels in TAH animals are almost normal. In TAH animals no role in the pathogenesis of hemodynamic abnormalities is played by abnormality of plasma ANP levels. However, TAH animals may display an abnormality in sensitivity to the p-ANP.
The natural heart could be preserved in the beating state, with appropriate afterload, for more than 24 hrs if supported by blood compatible artificial organs and biomedical engineering techniques. An artificial environment was developed using this philosophy. The system was constructed from four subsystems: circulatory, respiratory, metabolic, and environmental. In the circulatory subsystem, diastolic pressure was held at 70 to 100 mmHg by computer aided peripheral resistance, and a left ventricular assist device (LVAD) could be added when cardiac function was weakened. The respiratory subsystem was composed of an artificial lung and computer aided gas mixer for O2, CO2, and air, which kept blood PO2 and PCO2 within physiologic levels. In the metabolic subsystem, glucose and insulin were injected by infusion pump so as to maintain blood sugar within 100 to 200 mg/dl, whereas the environmental system preserved the isolated heart at 37 degrees C in a sterile water bath. Goats' hearts were connected to this system, and continued to beat for a maximum of 24 hours.
No control method has yet been established for the total artificial heart (TAH) during exercise. As the simple intrinsic control method does not significantly increase cardiac output (CO), this study attempted to develop a new TAH control method that increases the CO during exercise in a manner similar to a natural heart (NH) by predicting changes in CO as a time function (TF) at various treadmill speeds. The control method for TAH was as follows: 1) an arbitrary grade of treadmill exercise was loaded onto the TAH goat; 2) a TF at this grade of treadmill exercise was determined from the physical activity rate (PAR) measurement, defined as the time average of the increase in vertical acceleration of the body; 3) operating parameters of both pumps were controlled in accordance with the TF using the computer algorithm. With the predictive control method changes in CO in the TAH were almost the same as in the NH, whereas no increase in CO occurred with the fixed control method (FC), in which operating parameters remained unchanged during exercise. Changes in blood lactate and catecholamines tended to be less than with the FC.
Bjork-Shiley and Hall valves used in most artificial heart blood pumps have often induced problems, which include 1) An expensive valve must be used even when the AH is used for only a few days, 2) Ring thrombus was often formed at the interface between the valve ring and blood pump, seamless fabrication was not possible, and 3) Mechanical failure often occurred. To improve these circumstances, a new jellyfish valve was designed and manufactured. The valve has a simple structure: The center of a thin circular polyurethane membrane is fixed on a polyurethane base plate, which has many holes or slits to reduce flow resistance and help hold the membrane during the diastolic phase. In a mock circulation study, the valve displayed performance similar to the Bjork-Shiley valve. A small amount of regurgitant flow was observed at valve closure, in comparison with the Bjork-Shiley valve. It was recognized in the flow visualization study that the central region of the membrane was washed out well by the flapping of the membrane. This jellyfish valve is promising for use in a AH blood pump.
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A TAH goat survived 344 days postoperatively. The cause of death was hypoxia due to lung embolism and anemia.