PubMed Health⌕ Search

Biomedical subjects

Gregor Warnecke

Publications and source records attributed to Gregor Warnecke.

7 recordsLinked to original sources

Antegrade versus retrograde perfusion of the donor lung: impact on the early reperfusion phase.

Transpulmonary thermodilution was used to evaluate the effect of flush route during harvest on hemodynamic and respiratory function of the pulmonary graft in the early post-transplant phase. Single lung transplantation was performed in two piglet groups after 24 h of cold storage. Donor organs for group A underwent antegrade perfusion, and those for group R retrograde perfusion. PaO(2), compliance (C), airway resistance (R), extravascular lung water index (EVLWI), pulmonary blood volume index (PBVI), intrathoracic blood volume index (ITBVI), capillary leak (CL), and cardiac function index (CFI) were assessed by transpulmonary thermodilution at baseline, 1, 3, and 6 h after reperfusion. EVLWI was significantly lower in group R. Compliance and PaO(2) were higher in the same group. The two groups did not differ significantly with regard to CFI, PBVI, ITBVI, and airway resistance. Retrograde perfusion of the donor lung had a positive impact on graft function during early reperfusion. Transpulmonary hemodynamic monitoring can be a powerful tool for intra- and postoperative management of transplant patients.

Animals↗

In-situ topical cooling of lung grafts: early graft function and surfactant analysis in a porcine single lung transplant model.

OBJECTIVE: Improvement of organ preservation is essential to facilitate acceptance of marginal donor lungs for transplantation. Thus, recruiting non-heart-beating donors (NHBD) may be one reasonable strategy to augment the organ-pool especially in the field of pulmonary transplantation. Topical cooling (TC) of donor lungs could provide fast organ-protection and is an available procedure even in smaller centers. In this study transplanted lung function and surfactant activity in same lungs, which were preserved by TC, were assessed following transplantation. METHODS: Twelve porcine allogeneic single lung transplants were performed. Six lungs that were flush preserved through the antegrade route served as controls. The other six lungs were preserved by TC for 30 min after induction of cardiac arrest by repeated application of cold saline (8 degrees C) to both pleural cavities. Lungs of both groups were stored in LPD solution for 24 h at 8 degrees C. After transplantation, the recipient's right bronchus and right pulmonary artery were clamped. Major endpoints included early graft function over a period of 7 h. Hemodynamic measures and respiratory functions were recorded in 30-min intervals. Surfactant function was determined before transplantation and 2 h after reperfusion by broncho-alveolar lavage fluid analysis. RESULTS: Only four animals of the control-group survived the 7 h reperfusion period. Right heart failure occurred in two animals after 150 and 240 min of reperfusion. All six animals in the TC group survived the observation period. Pulmonary vascular resistance (p<0.01), pulmonary artery pressure (p=0.03), and lung tissue water content remained significantly lower in topically cooled allografts (p=0.01) vs. controls. Surfactant function after transplantation was comparable in both groups with a trend towards lower protein contents (p=0.07) in the broncho-alveolar fluid of grafts after TC. CONCLUSIONS: In-situ TC seems to be a reliable strategy to preserve lungs for up to 24 h. It even surpasses the results of LPD-perfused grafts in hemodynamic function and survival time.

Animals↗

Endothelial function in pigs transgenic for human complement regulating factor.

BACKGROUND: Expression of human complement regulating factor (hCRF) in porcine organs prevents hyperacute rejection of these organs after xenotransplantation to nonhuman primates. Experiments were designed to characterize endothelial and smooth muscle function of arteries from pigs transgenic for hCD46. METHODS: Arterial blood from outbred pigs transgenic for hCD46 expression and nontransgenic animals of the same lineage was analyzed for angiotensin-converting enzyme (ACE), C-type natriuretic peptide (CNP), and nitric oxide. Aortic endothelial cells were prepared for measurement of mRNA or activity for nitric oxide synthase (NOS). Rings cut from femoral and pulmonary arteries were suspended in organ chambers for measurement of isometric tension. RESULTS: CNP was significantly greater, ACE was similar, and nitric oxide was significantly less in plasma from transgenic compared with nontransgenic pigs. Neither mRNA nor activity of NOS differed between the groups. Endothelium-dependent relaxations to bradykinin and acetylcholine but not the calcium ionophore were shifted significantly to the left in femoral and pulmonary arteries from hCD46 transgenic pigs compared with nontransgenic pigs. The ACE-inhibitor captopril augmented relaxations similarly in both groups, but NG-monomethyl-L-arginine (L-NMMA) did not inhibit relaxations in rings from transgenic pigs. CONCLUSIONS: Data suggest that expression of hCD46 on endothelium of pigs selectively augments endothelium-dependent relaxations to bradykinin by increased release of endothelium-derived factors other than nitric oxide. There does not seem to be any change in activity of ACE or NOS with expression of the human protein. Increased relaxations to bradykinin may be beneficial in lowering vascular resistance when transgenic organs are used for xenotransplantation.

Angiotensin I↗

Pulmonary preservation with Bretscheider's HTK and Celsior solution in minipigs.

BACKGROUND: Pulmonary preservation with high potassium/low oncotic pressure Euro-Collins (EC) solution is associated with endothelial dysfunction and reduced surfactant function. We compared two low potassium solutions, histidine-tryptophane-ketoglutarate (HTK) and Celsior, to EC in lung ischemia-reperfusion injury. METHODS: In 19 minipigs, the left lung was perfused in situ with cold preservation solution (EC, n=6; HTK, n=6; Celsior, n=7). Reperfusion was started after 90 min of warm ischemia. The right pulmonary artery and main bronchus were clamped. Bronchoalveolar lavage (BAL) was obtained before ischemia and after 2 h of reperfusion. Surfactant activity was determined from the BAL in a pulsating bubble surfactometer. RESULTS: Animals in the EC group survived 3.7+/-1.4 h. Six Celsior and five HTK treated animals survived the observation period of 7 h (P<0.001). Compliance of the reperfused lung deteriorated less in both Celsior and HTK groups (P<0.001). In EC and HTK animals, the pO(2)/FiO(2) ratio was lower (P=0.002), and pulmonary vascular resistance was higher (P=0.02) than in Celsior animals. Surfactant function was impaired after reperfusion in all groups. CONCLUSIONS: Compared to EC, HTK solution showed moderate and Celsior distinct improvement of post-ischemic pulmonary function. However, surfactant function was not well preserved in any group.

Animals↗

Celsior solution provides superior post-ischemic right ventricular function as compared with UW solution in a porcine heart transplantation model.

BACKGROUND: Use of the new cardioprotective Celsior solution has been suggested for organ preservation in cardiac transplantation, but selective data for right ventricular function, of special interest in the clinical setting, have not been evaluated. METHODS: Celsior solution was compared with the clinical standard University of Wisconsin solution (UW) in a porcine allogenic heart transplantation model with accurate isovolumic measurement of right ventricular (RV) function. RESULTS: Maximum RV developed pressures were significantly different between Celsior and UW groups (51.1 +/- 9.6 mm Hg vs 42.2 +/- 15.4 mm Hg after 1 hour, respectively, and 55.6 +/- 7.8 mm Hg vs 45.1 +/- 16.2 mm Hg after 2 hours, respectively; p = 0.02, 2-way analysis of variance). CONCLUSIONS: Celsior significantly improves post-ischemic right ventricular function when compared with UW solution in an experimental heart transplantation model.

Adenosine↗

Improved right heart function after myocardial preservation with 2,3-butanedione 2-monoxime in a porcine model of allogenic heart transplantation.

BACKGROUND: Right heart dysfunction is a major cause for early morbidity and mortality after heart transplantation. Experiments were designed to evaluate the influence of the calcium-desensitizing drug 2,3-butanedione 2-monoxime (BDM) on right heart function in a porcine model of heart transplantation. METHODS: Donor hearts of domestic pigs were arrested with BDM in Krebs solution (n = 7) and with BDM in Bretschneider's histidine-tryptophan-ketoglutarate (HTK) solution (n = 6). There were 2 control groups: University of Wisconsin (UW, n = 6) and HTK (n = 6). An isovolumic model was used in which the right ventricular volume was precisely controlled in vivo with an intracavitary high-compliance balloon. After 4 hours of ischemia, hearts were transplanted into recipients. After 1 and 2 hours of reperfusion, the right ventricular balloon volume was increased in 10-mL increments until right ventricular failure occurred and the developed pressures were recorded. RESULTS: Maximal right ventricular developed pressures were significantly different after 2 hours of reperfusion (UW: 35 +/- 13 mm Hg; HTK: 47 +/- 8 mm Hg; Krebs+BDM: 49 +/- 9 mm Hg; HTK+BDM: 50 +/- 6 mm Hg; P =.04). Hearts subjected to BDM could be loaded with a significantly increased volume after 1 hour and after 2 hours (UW: 57 +/- 10 mL vs HTK: 43 +/- 8 mL vs Krebs+BDM: 70 +/- 10 mL vs HTK+BDM: 67 +/- 15 mL; P =.002). Postischemic right ventricular enddiastolic compliance was significantly increased in groups treated with BDM after 1 hour (P =.02) and after 2 hours (P =.039). CONCLUSIONS: The drug BDM significantly improves right ventricular function in a heart transplantation model. The increase in volume load and developed right ventricular pressure achieved by BDM application would translate into a decreased risk of right ventricular failure after clinical transplantation.

Adenosine↗

Surfactant function in lung transplantation after 24 hours of ischemia: advantage of retrograde flush perfusion for preservation.

OBJECTIVE: Surfactant function was shown to be impaired in clinical and experimental lung transplantation. This study was designed to define the impact of retrograde flush perfusion on graft and surfactant function after an extended period of ischemia. METHODS: Left lung transplantation was performed after 24 hours of graft ischemia in 12 pigs. In half of the grafts antegrade cold flush perfusion (Perfadex) was used for preservation. In the second group grafts were flushed in a retrograde fashion via the left atrium. Graft function was monitored for 7 hours after transplantation. Before transplantation (basal) and after 2 hours of reperfusion, bronchoalveolar lavage fluid was obtained. Minimal surface tension of bronchoalveolar lavage fluid was determined and the ratio of small and large surfactant aggregates was calculated. Lung water content was analyzed online in the reperfusion period. RESULTS: Right-sided heart failure developed in 2 animals of group 1 (antegrade perfusion) within 2 and 4.5 hours of reperfusion, respectively. All other pigs survived the observation period. PO(2)/FIO(2) (P =.001) and dynamic lung compliance (P =.001) were superior in retrogradely flushed grafts. A comparable increase of minimal surface tension was found after reperfusion in both groups. Small/large surfactant aggregate ratio after reperfusion (P =.03), as well as extravascular lung water content, was higher in the antegrade perfusion group. CONCLUSION: Retrograde flush perfusion for 24-hour lung preservation with low-potassium dextran (Perfadex) solution led to better initial graft function than the standard antegrade perfusion technique. A moderate impairment of surfactant function was found in both groups, which was more pronounced in the antegrade perfusion group.

Animals↗