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U Tochtermann

Publications and source records attributed to U Tochtermann.

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Influence of brain death and cardiac preservation on systolic and diastolic function and coronary circulation in the cross-circulated canine heart.

Previous studies have demonstrated hemodynamic instability and cardiac dysfunction in the brain-dead organ donor. It remains unclear if primary cardiac dysfunction is responsible for hemodynamic deterioration or decreased cardiac function is secondary to brain death-associated altered loading conditions. Therefore in the present study the effects of brain death on hemodynamics and cardiac function were analyzed in vivo in an open chest model and ex vivo in a cross-circulated heart preparation. In a second protocol, the impact of brain death-associated hemodynamic changes on postischemic graft function was investigated. Brain death was induced injecting saline in a subdural Foley catheter. Induction of brain death led to a hyperdynamic reaction followed by hemodynamic deterioration with a decrease of systemic vascular resistance and myocardial contractility. If the hearts were explanted and assessed ex vivo, no differences were found between control and brain-dead hearts. Furthermore, both control and brain-dead hearts showed full functional recovery after 4 hours of hypothermic ischemic storage. Despite hemodynamic deterioration in situ after brain death, there were no differences between the postischemic function of control and brain-dead hearts. These results indicate that myocardial dysfunction is not irreversible and may be secondary to altered loading conditions, and that the recovery of cardiac function after long-term hypothermic storage is not impaired by the hemodynamic changes observed in situ after brain death induction. These data may also indicate that potential donor hearts might not be excluded from transplantation on the basis of impaired hemodynamic characteristics, especially if they are evaluated by load-dependent parameters.

Analysis of Variance

Interruption of bronchial circulation leads to a severe decrease in peribronchial oxygen tension in standard lung transplantation technique.

OBJECTIVE: In clinical practice lung transplantation is the only procedure where the transplanted organ is left without its own arterial perfusion. With the interruption of the bronchial arteries the nutritive support is dependent on collateral flow by the pulmonary artery and the oxygen tension of desaturated central venous blood, representing an abnormal physiology. METHODS: To analyze this problem systematically, we used a standard single left lung transplantation model in the pig (n = 12). In accordance with the clinical standard, lung preservation was performed with modified Euro-Collins solution with addition of prostacycline. The duration of ischemia was set to 4 h. Before and after single left lung transplantation tissue oxygen tension in the peribronchial tissue was measured with Licox tissue pO2 microprobes. For validation, the myocardial tissue oxygen tension was recorded simultaneously. The hemodynamic assessment included continuous flow measurement of the left and right pulmonary artery using Transsonic ultrasound flow probes. After transplantation the animals were observed for 4 h. For hypothetic augmentation of collateral blood flow to the peribronchial tissue we administered Nitric oxide (10 ppm) to the ventilation in six pigs (group B). Six pigs (group A) served as a control without the addition of nitric oxide (NO). All pigs were ventilated with a FiO2 of 0.5 resulting in paO2 values between 160 and 200 mmHg. RESULTS: In both groups single lung transplantation led to a significant decrease in peribronchial tissue oxygen tension throughout the observation period. Pre-Tx values of peribronchial tissue oxygen tension (38.31 +/- 6.56 mmHg) decreased to 9.72 +/- 2.55 mmHg in group A and 10.3 +/- 3.61 mmHg in group B after 4 h, which could not be altered by a FiO2 of 1.0 (P < 0.0001). The addition of NO in group B led to a significantly augmented flow in the left pulmonary artery (0.63 +/- 0.31 l/min in group B vs. 0.46 +/- 0.26 l/min group A, P < 0.001) representing 67 vs. 49% of the pre-Tx flow in groups B and A, respectively, but the peribronchial tissue oxygen tension was not influenced (P > 0.05). In both groups A and B, the central venous pO2 did not differ in the postoperative period (41.83 +/- 3.27 mmHg group A vs. 43.26 +/- 2.98 mmHg group B) and was kept in a comparable range to the pretransplantation values (45.23 +/- 3.41 mmHg pre-Tx). CONCLUSIONS: The persistence of a very low peribronchial tissue oxygen tension in the early phase after lung transplantation cannot be influenced by improved pulmonary artery flow and solely relates to the central venous pO2, which cannot be augmented by the addition of NO. This mechanism might be a trigger for anastomotic healing problems, infectious complications and later development of obliterative bronchiolitis (OB).

Animals

Right ventricular function after brain death: response to an increased afterload.

OBJECTIVE: A major cause of early postoperative morbidity and mortality after cardiac transplantation is right ventricular (RV) failure which is attributed to the inability of the donor's RV to acutely compensate for the recipient's elevated pulmonary vascular resistance. This study was performed to determine: (1) the acute effects of brain death on the RV function; and (2) the adaptation potential of the RV to a progressive increase in RV afterload. METHODS: In 13 anesthetized, open-chest dogs (eight with brain death vs. five control with sham operation), brain death was induced by inflation of a subdural balloon catheter. Heart rate, RV systolic and end-diastolic pressure (RVSP, RVEDP), pulmonary arterial pressure (PAP), and cardiac output (CO), and pressure-length loops (sonomicrometry) were recorded. Afterload increase was induced 2 h after brain death induction by constriction of the pulmonary artery with an increase in RVP from 25 to 50 mmHg in 5 mmHg steps. RESULTS: Cushing phenomenon occurred within a few minutes after brain death induction, with a significant increase of HR (229 +/- 10 vs. 89 +/- 6 min(-1), P < 0.001), CO (3.2 +/- 0.2 vs. 1.7 +/- 0.1 l/min, P < 0.001), PAP (30.4 +/- 2.5 vs. 15.5 +/- 1.3 mmHg, P < 0.01) RVSP (55 +/- 5 vs. 23 +/- 2 mmHg, P < 0.001) and RVEDP (7.4 +/- 0.9 vs. 3.3 +/- 0.6 mmHg, P < 0.001). All these values were also significantly (P < 0.01) higher than the time corresponding values of the control group. The analysis of the pressure-length loops showed a hypercontractile state. Within 15-60 min, all parameters turned to baseline and remained stable for up to 2 h. When afterload was increased progressively, RVEDP increased markedly in the brain death and slightly in the control group (9.4 +/- 0.7 vs. 4.2 +/- 1.1 mmHg, P < 0.01, at RVSP = 50 mmHg). On the other hand, the increase of peak positive dP/dt was significantly higher in the control group (430 +/- 37 vs. 644 +/- 55 mmHg/s, P < 0.01, at RVP = 50 mmHg). However, global RV pump function characterized by CO and stroke work was similar in both groups. While regional RV contractility remained unchanged in the brain death group in terms of pressure-length relationships, RV contractility significantly increased in the control group. CONCLUSION: (1) Brain death per se does not result in an acute impairment of RV function. (2) While control animals adapt to an increased afterload by the homeometric, as well as the heterometric regulation, after brain death, an increase in RV preload follows elevations in RV afterload by the Frank-Starling mechanism subserving the increased stroke work required to ensure unchanged pump function.

Adaptation, Physiological

Effects of brain death on myocardial function and ischemic tolerance of potential donor hearts.

BACKGROUND: An increasing number of experimental and clinical studies reports hemodynamic instability in the donor organism after brain death. However, the relative importance of brain death-related cardiac dysfunction on posttransplantation cardiac function and the reversibility of the observed changes remain controversial. In this study a load-independent analysis of cardiac function after brain death was performed. Special interest was focused on a possible interactive influence of brain death and cardiac preservation on postischemic cardiac function. METHODS: In 12 anesthetized dogs, brain death was induced by inflation of a subdural balloon; 12 sham-operated animals served as control subjects. After a 2-hour observation in situ, the hearts were explanted and perfused parabiotically either immediately or after hypothermic ischemic preservation (4 hours, 4 degrees C). Heart rate, cardiac output, left ventricular pressure, the maximum of left ventricular pressure development and aortic pressure were measured in situ. In addition, the slope of the end-systolic pressure-volume relationship, coronary blood flow, and myocardial oxygen consumption were estimated in the cross-circulated hearts. RESULTS: In spite of a brain death-associated hemodynamic deterioration in situ (expressed as low mean aortic pressure and significant decrease of maximal dP/dt), myocardial function was similar to control after explantation, if assessed ex vivo. Furthermore, after hypothermic ischemic preservation and reperfusion, complete functional recovery of control and brain-dead hearts could be observed. CONCLUSIONS: These data indicate that hemodynamic instability after brain death may rather reflect altered loading conditions than irreversible myocardial damage or primary cardiac dysfunction. Furthermore, there is no evidence for a brain death-related impairment of ischemic tolerance.

Animals

Is the brain death related endocrine dysfunction an indication for hormonal substitution therapy in the early period ?

Experimental studies in animals have suggested that brain death (BD) -- related endocrinological dysregulations lead to a significant depression of cardiac pump and muscle function, however, the discussion about the relative extent of this influence remains controversal. The aim of the present study was to assess in an open chest animal model the short time course (5 hours) of hormonal (epinephrine, norepinephrine, T3, T4, ACTH, cortisol, insuline) and metabolic (glucose, lactate) changes in 10 brain dead dogs with special respect to the hemodynamic stability and myocardial pump function. After the onset of BD the concentrations of all hormonal parameters showed a significant decrease. Despite these changes, and in contrast to other studies, an adequate pump function (filling pressures, cardiac output) and muscle function (LVdp/dt) could be maintained by exclusive volume substitution without the use of hormonal or pressor agents. We conclude that in the present model a sufficient pump and muscle function can be maintained by adequate volume substitution, exclusively. The significant fall in adrenal and thyroid hormones had no direct effects on heart functional parameters in the first 5 hours after experimental BD induction.

Animals

Cardiocirculatory effects of acutely increased intracranial pressure and subsequent brain death.

Hemodynamic instability and functional impairment of the donor heart are currently reported problems in organ transplantation. Actual shortage of potential donor hearts continues to raise controversial discussion about adequate donor management with regard to graft quality. In an experimental open chest model, physiopathologic effects of acutely induced, irreversible intracranial hypertension (AIIHT) were investigated in situ with respect to hemodynamics, cardiac pump and muscle function, and hormonal parameters. Acutely induced irreversible intracranial hypertension was induced by rapid inflation of a subdural balloon catheter in 10 anesthetized dogs, four animals serving as controls. The observation period in both groups was 300 min. Cardiocirculatory stability was maintained by continuous crystalloid volume substitution without the use of inotropic or pressor agents. After AIIHT, three characteristic hemodynamic response phases have been observed: 1) The "acute hyperdynamic phase" lasting up to 15 min with marked increases of heart rate (HR), left ventricular pressure (LVP), cardiac output (CO) and myocardial contractility indices, 2) At the end of the "early restabilization phase", (60 min), these parameters returned close to control levels, except HR (+50%) and systemic vascular resistance (SVR) (-40%), 3) During the "late restabilization phase", filling pressures, LVP and CO remained within control limits at low SVR, contractility indices showed a decreasing tendency. All assessed plasmatic hormones (Catecholamines, triiodothyronine (T3), thyroxine (T4), adrenocorticotropic hormone (ACTH), cortisol and anti-diuretic hormone (ADH) showed a continuous fall to levels significantly below control over the phases of restabilization. Acutely induced irreversible intracranial hypertension leads to multifactorial hemodynamic and hormonal changes. At low SVR, cardiac pump function was preserved exclusively by continuous volume substitution, while myocardial contractility indicated a slight decrease. From this observed hemodynamic and functional state within the donor organism, no reliable prediction on graft functional capacity can be made.

Animals

Efficiency of a computer network in the administrative and medical field of cardiac surgery. Concept of and experience with a departmental system.

We report on a pilot project implementing electronic data processing (EDP) in the Department of Cardiac Surgery of the University of Heidelberg, based on a concept of complete integration of a medical database system into everyday clinical routine. A computer network was installed and has been in use since August 1988 as a department system supporting both the administrative and the medical side of the department (documentation, information, research, archives, organization, secretarial office, billing, statistics and communication). With a computer-assisted documentation system and standardized data acquisition, nearly 80% of letters and reports on operations are written automatically without any further need for dictation. Automatic computer controlled follow-up has been initiated to cover all patients operated on in our hospital. The complete integration of a new method of clinical documentation and EDP into everyday clinical routine and the extensive use of computer-derived information have proved to be significant advances. Our practice of computer-assisted information management and departmental organization serves the patient by; (1) providing up-to-date valid information for the clinical staff; (2) establishing and stabilizing contact and communication with physicians elsewhere, e.g. cardiologists; (3) facilitating pre- and postoperative contact with patients; (4) helping to optimize medical treatment by routine statistical data analysis (quality assurance); (5) creating a clear and logical computer-assisted departmental organizational structure; (6) permitting long-term evaluation of operative results based on a standardized computer-controlled follow-up procedure; (7) improving the quality of medical and administrative data.

Cardiac Surgical Procedures