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Lipid peroxidation during ischemia depends on ischemia time in warm ischemia and reperfusion of rat liver.

Prolonged hepatic warm ischemia has been incriminated in oxidative stress after reperfusion. However, the magnitude of oxidative stress during ischemia has been controversial. The aims of the present study were to elucidate whether lipid peroxidation progressed during ischemia and to clarify whether oxidative stress during ischemia aggravated the oxidative damage after reperfusion. Rats were subjected to 30 to 120 min of 70% warm ischemia alone or followed by reperfusion for 60 min. Lipid peroxidation (LPO) was evaluated by amounts of phosphatidylcholine hydroperoxide (PC-OOH) and phosphatidylethanolamine hydroperoxide (PE-OOH) as primary LPO products. Total amounts of malondialdehyde and 4-hydroxy-2-nonenal (MDA + 4-HNE), degraded from hydroperoxides, were also determined. PC-OOH and PE-OOH significantly increased at 60 and 120 min ischemia with concomitant increase of oxidized glutathione. These hydroperoxides did not increase at 60 min reperfusion after 60 min ischemia, whereas they did increase at 60 min reperfusion after 120 min ischemia with deactivation of phospholipid hydroperoxide glutathione peroxidase and superoxide dismutase. The amount of MDA + 4-HNE exhibited similar changes, but the velocity of production dropped with ischemic time longer than 60 min. In conclusion, oxidative stress progressed during ischemia and triggered the oxidative injury after reperfusion. Secondary LPO products are less sensitive, especially during ischemia, which may cause possible underestimation and discrepancy.

Aldehydes↗

Comparison of pig hepatocyte isolation using intraoperative perfusion without warm ischemia and isolation of cells from abattoir organs after warm ischemia.

Enzymatic hepatocyte isolation using warm ischemic pig livers from an abattoir was compared with isolation using in situ perfused organs. Using organs from animals of 30 kg body mass (BM), the intraoperative perfusion showed superior results. The use of livers from abattoir pigs of 40-50 kg BM after warm ischemia resulted in a lower yield of hepatocytes and in high rates of injured cells. The mean yield in the intraoperative perfusion group was 68 +/- 11% (wet weight), the maximum yield in the abattoir organ group was 58%. The mean viability in the intraoperative perfusion group was 65 +/- 14% (trypan blue) compared with a maximum viability of 39% in the abattoir liver group. Additional purification by density gradient centrifugation improved the viability of the abattoir liver group to a mean of 95% (trypan blue). The use of pig livers from large abattoir animals required additional purification steps to improve viability since the cell yield is considerably lower than with intraoperative organ perfusion. In general, hepatocyte isolation from abattoir organs is not recommended.

Abattoirs↗

Cyclosporine A sensitizes the kidney to tubulointerstitial fibrosis induced by renal warm ischemia.

BACKGROUND: Renal warm ischemic injury and immunosuppression with cyclosporin A (CsA) may contribute to chronic allograft nephropathy after cadaveric transplantation. This study establishes whether CsA can sensitize the kidney to injury and fibrosis induced by renal warm ischemia (RWI). METHODS: The left kidney of Sprague-Dawley rats was subjected to 30 min of warm ischemia and/or intraperitoneal CsA (15 mg/kg/d) for 30 days (n=6 per group). Renal injury and fibrosis were assessed histologically together with immunohistochemistry for collagen III, transforming growth factor (TGF)-beta1, ED1 (macrophage marker), and alpha-smooth muscle actin. Renal mRNAs for collagen III, TGF-beta 1, matrix metalloproteinase (MMP)-2, and tissue inhibitor of metalloproteinase-1 together with MMP enzyme activity were also determined. RESULTS: RWI or CsA alone produced only minor effects on renal injury and fibrosis. However, in CsA-treated rats, RWI produced a marked increase in tubulointerstitial fibrosis, as shown by the potentiation of collagen III and TGF-beta1 determined by immunochemistry and mRNA analysis. The up-regulation of tissue inhibitor of metalloproteinase-1 mRNA was associated with a decrease in MMP enzyme activity. In CsA-treated rats, RWI was also associated with an increase in inflammatory infiltrates, elevated immunostain for ED1 (indicating extensive macrophage influx), and elevated immunostain for alpha-smooth muscle actin (indicating myofibroblast activation). CONCLUSIONS: In the rat, CsA can sensitize the kidney to fibrosis induced by renal warm ischemia. In renal transplantation, when cadaveric donor kidneys have been subjected to a period of warm ischemia, CsA may be an inappropriate choice for immunosuppressive therapy.

Animals↗

[Role of nitric oxide in warm ischemia of the transplanted kidney].

OBJECTIVE: Nitric oxide (NO) is a gas considered to have two roles: cytoprotective, derived from its vasodilating and anti-platelet aggregation effects, and cytotoxic, due to its free oxygen radical. It is produced by NO synthase; nitrites and nitrates are its end products. We investigated the role of NO in ischemia-perfusion injury. METHODS: For the study, we utilized dogs weighing 15 to 25 kg. Autotransplantation of the left kidney and right nephrectomy were performed. Group I comprised 9 dogs submitted to renal autotransplantation; group II comprised 6 dogs submitted to renal autotransplantation after 24 h cold ischemia; group III comprised 6 dogs submitted to renal autotransplantation after 24 h cold ischemia and subsequent warm ischemia of 30 min; group IV comprised 9 dogs submitted to renal autotransplantation after 24 h cold ischemia and 60 min warm ischemia. RESULTS: A significant fall in nitrite levels was observed in dogs that had some type of surgical injury. Nitrate levels increased significantly in dogs that had warm ischemia. At 30 min reperfusion, a significant increase in the production of constitutive enzyme was observed in all groups. A significant increase in inducible enzyme at 30 min reperfusion was observed in the first three groups and no inducible enzyme was produced in the group that had more injury from ischemia (group IV). CONCLUSION: Nitrites are markers of the injury produced by surgery. Nitrates clearly express the injury to the organs caused by warm ischemia-reperfusion. The cNOS enzyme increases after surgery in response to surgical insult or stress. The iNOS enzyme increases in the kidneys that have suffered ischemia and are viable. Non-viable kidneys express no enzymatic activity (cNOS, iNOS).

Animals↗

[Effect of superoxide production on nitric oxide release from the pulmonary vascular endothelium during reperfusion after warm ischemia].

It has been reported that reperfusion injury results in the diminished nitric oxide (NO) release from the pulmonary vascular endothelium. However, this mechanism is completely unknown. We examined the effect of superoxide dismutase (SOD) on NO release at reperfusion. A rabbit lung was perfused with Krebs-Henselit buffer in a recirculation system. Cyclic GMP (cGMP) content in the lung effluent from the left ventricle was assayed in a time-dependent manner. In the control group, the lung was immediately perfused without interventing ischemia. In the warm ischemia and reperfusion group, the lung was reperfused after 30 min of warm ischemia. In the SOD group, SOD (60,000 U and 120,000 U) was administered at reperfusion after warm ischemia. The cGMP release in the warm ischemia and reperfusion group significantly decreased compared with the control group. In the SOD group, cGMP release was reversed with increasing doses of SOD, and the cGMP content was significantly reversed at all time points with SOD administration of 120,000 U. The impairement of cGMP release by reperfusion injury was restored by SOD administration. This data suggests that NO release from the endothelium may be quenched by superoxide anion generated at reperfusion. In lung transplantation, efforts must be pursued to preserve the endothelial function such as NO pathway.

Animals↗

Transmembrane fluxes of potassium in dog kidney slices. A quantitation of the effect of warm ischemia.

The effect of warm ischemia on the transmembrane transport of potassium in dog kidney slices was studied by measurement of the uptake of 42K. The requirement for steady-state conditions concerning the intracellular potassium concentration was thereby studied. The total potassium content in the slices was found to be constant between 120 and 180 min incubation at both 25 and 37 degrees C. The cell water calculated from the total tissue water and 14C-inulin space in the dog kidney slices amounted to 38 ml-100 g wet weight-1 at 37 degrees C and 45 ml-100 g wet weight-1 at 25 degrees C and was found to remain constant for the incubation interval 120--180 min. The major part of the tissue uptake of 42K could be described by one single mono-exponential function under these conditions. The transmembrane influx at 37 degrees C calculated by using a modified Keynes formula amounted to 1.70 mmol K+-kg wet weight-1-min-1 after no warm ischemia and to 0.89 mmol K+-kg wet weight-1-min-1 after 2 h warm ischemia. The corresponding values for incubation at 25 degrees C were 1.26 and 0.77 mmol K+-kg wet weight-1-min-1, respectively. In the slices incubated at 25 degrees C, the potassium content was higher and the sodium content lower than in slices incubated at 37 degrees C.

Animals↗

Preservation of pig liver allografts after warm ischemia: normothermic perfusion versus cold storage.

Warm ischemia is known to induce substantial damage to the liver parenchyma. With respect to clinical liver transplantation, the tolerance of the liver to warm ischemia and the preservation of these organs have not been studied in detail. In isolated reperfused pig livers we proceeded according to the following concept: Livers were subjected to 1 or 3 h of warm ischemia. Subsequently, these organs were preserved by either normothermic perfusion or cold storage (histidine-tryptophan-alpha-ketoglutarate, HTK) for 3 h each. After storage, liver function was assessed in a reperfusion circuit for another 3 h. Parameters under evaluation were bile flow, perfusion flow, oxygen consumption, enzyme release into the perfusate (creatine kinase, glutamic oxaloacetic transaminase (GOT), lactic dehydrogenase, and glutamic pyruvic transaminase), and histomorphology. Damage to the liver was lowest after warm ischemia of 1 h. The results after cold storage were superior to those after normothermic perfusion (GOT: 3.2 +/- 0.3 and 2.6 +/- 0.2 U/g liver; cumulative bile production: 14.7 +/- 2.1 and 9.4 +/- 1 ml, respectively; P < 0.05). In contrast, we found substantial damage at the end of reperfusion in livers undergoing 3 h of warm ischemia under both preservation techniques with severe hepatocellular pyknoses and essentially altered nonparenchymal cells. The results suggest that pig livers undergoing 1 h of warm ischemia and cold storage for 3 h with HTK solution may lead to functioning after transplantation.

Alanine Transaminase↗

Metabolism of prostaglandins in porcine liver transplantation with a graft harvested after 30- and 60-minute warm ischemia.

The influence of warm ischemia on the metabolism of prostaglandins was investigated using a pig liver transplantation model employing the temporary portal arterialization technique. Eighteen pigs were divided into three groups according to warm ischemia time: 0 min (group I, n = 6), 30 min (group II, n = 6), and 60 min (group III, n = 6). During portal arterialization, the hepatic venous prostaglandin E2 (PGE2) level in group III (3356.0 +/- 1011.8 pg/ml) was significantly higher than that in group I (831.7 +/- 182.1 pg/ml; P = 0.0285). The hepatic venous PGE2 levels were significantly higher than the arterial counterparts in all groups both at the beginning and during portal arterialization. At 60 min after portal revascularization, the arterial PGE2 level in group III (886.7 +/- 268.0 pg/ml) was significantly higher than that in group I (99.0 +/- 18.6 pg/ml; P = 0.0116) and II (204.2 +/- 65.4 pg/ml; P = 0.0282). Neither thromboxane B2 (TXB2) nor 6-keto PGF1 alpha showed any significant differences. In conclusion, the intraoperative changes of PGE2 thus reflected the degree of warm ischemic damage, and PGE2 could also be released from the graft. On the other hand, the increased levels of TXB2 and 6-keto PGF1 alpha were thought to have an extrahepatic origin.

Animals↗

Warm ischemia induces alteration in lung immune cell functions.

Warm ischemia is an important factor in early allograft dysfunction. To elucidate cellular events involved in such lung injury, we examined the effects of warm ischemia on the cytotoxic function of lymphocytes retrieved by bronchoalveolar lavage as compared with peripheral blood lymphocytes. Warm ischemia of the lung was induced in eight dogs by crossclamping left hilar structures for 1 hour. Bronchoalveolar cells from ischemia left and unaffected right lungs, as well as blood lymphocytes, were isolated before operation and 2 hours, 72 hours, and 7 days after operation. Lung and blood lymphocytes were assayed for natural killer and lectin-dependent cell-mediated cytotoxicity. Warm ischemia resulted in a significant impairment of natural killer activity within 2 hours of reperfusion (49% of preoperative control cytolysis, p less than 0.01). There was a significant increase in natural killer activity in bronchoalveolar lavage mononuclear cells 72 hours after reperfusion injury (178.4% of preoperative value, p less than 0.01). Interestingly, these functional alterations were not paralleled with changes seen in the peripheral blood lymphocytes or the opposite nonaffected lungs, where the natural killer activity appeared significantly depressed at 72 hours. Similarly, lectin-dependent cell-mediated cytotoxicity was noted to be increased in the bronchoalveolar lavage from the ischemic lung (179.5%, p less than 0.01) but decreased in the bronchoalveolar lavage from the nonaffected lung and peripheral blood lymphocytes at 72 hours after injury. We conclude that warm ischemia is associated with a functional alteration of the local lung immune cells. Such alteration is not observed in cells from the opposite lung or peripheral blood. The observed increase in nonspecific cytotoxicity of bronchoalveolar lymphocytes can be causative in the early damage seen in poorly preserved lung allografts.

Animals↗

Dynamical changing patterns of histological structure and ultrastructure of liver graft undergoing warm ischemia injury from non-heart-beating donor in rats.

AIM: To investigate the histological and ultra-structural characteristics of liver graft during different of warm ischemia time (WIT) in rats and to predict the maximum limitation of liver graft to warm ischemia. METHODS: The rats were randomized into 7 groups undergoing warm ischemia injury for 0, 10, 15, 20, 30, 45 and 60 min, respectively. All specimens having undergone warm ischemia injury were investigated dynamically by light and electron microscopy, and histochemistry staining. After orthotopic liver transplantation (OLT), the recovery of morphology of liver grafts after 6, 24 and 48 h was observed. RESULTS: The donor liver from non-heart-beating donors (NHBD) underwent ischemia injury both in the warm ischemia period and in the reperfusion period. Morphological changes were positively related to warm ischemia injury in a time-dependent manner during the reperfusion period. The results demonstrated that different degrees of histiocyte degeneration were observed when WIT was within 30 min, and became more severe with the prolongation of WIT, no obvious hepatocyte necrosis was noted in any specimen. In the group undergoing warm ischemia injury for 45 min, small focal necrosis occurred in the central area of hepatic lobule first. In the group undergoing warm ischemia injury for 60 min, patchy or diffused necrosis was observed and the area was gradually extended, while hepatic sinusoid endothelial cells were obviously swollen. Hepatic sinusoid was obstructed and microcirculation was in disorder. CONCLUSION: The rat liver graft undergoing warm ischemia injury is in the reversible stage when the WIT is within 30 min. The 45 min WIT may be a critical point of rat liver graft to endure warm ischemia injury. When the WIT is over 60 min, the damage is irreversible.

Animals↗

Determination of warm ischemia time at donor nephrectomy.

To assess the warm ischemia time of kidneys with obscure donor histories we attempted to develop an index for the duration of ischemia by analysis of adenine nucleotides and their degradation products in cortical biopsies of canine kidneys. Two biopsy harvesting techniques were compared. The use of a laboratory technique (dentist's drill) resulted in higher concentrations of adenosine triphosphate (ATP) in normoxic tissue specimens as compared with a clinical method of harvesting biopsies (wedge biopsy). However the sum of adenine nucleotides (AN) (ATP, adenosine diphosphate [ADP], and adenosine monophosphate [AMP]) was not significantly different in both groups (P less than 0.05). Therefore, wedge biopsies were used to study the degradation of AN following 0, 30, 60, 90, and 120 min of ischemia. Adenine nucleotides and their degradation products were assayed by high-performance liquid chromatography. Concentrations of individual adenine nucleotides did not show a consistent correlation with warm ischemia time. However, as the sum of the AN and the sum of their degradation products (DP) decreased and increased, respectively, the balance between these metabolites offered a good correlation with duration of warm ischemia. The ratio of DP to AN was significantly different at each interval (P less than 0.05). To study the influence of temperature on the degradation process, ischemia was induced at 37 degrees C and 32 degrees C. Lowering of the temperature reduced the catabolic rate of the AN. The ratio of DP to AN was significantly different from corresponding values at 37 degrees C. In biopsies of nonischemic human donor kidneys, concentrations of adenine nucleotides and their degradation products were measured. Biopsies weighing less than 0.01% of total renal mass were large enough to meet analytical demands. The ratio of DP to AN in human kidney biopsies was in the same range as in the corresponding dog kidney biopsies. These findings demonstrate that the ratio of DP to AN, as determined from concentrations of purine metabolites in canine cortical wedge biopsies, is a sensitive and potentially useful index of warm ischemia time.

Adenine Nucleotides↗

Livers from non-heart-beating donors tolerate short periods of warm ischemia.

BACKGROUND: In contrast with kidneys, transplantation of livers originating from non-heart-beating donors remains rare, mainly because warm ischemia causes a higher rate of potentially lethal primary graft nonfunction. Little is known on the tolerance of liver grafts to warm ischemia. No techniques are available to assess the viability of ischemic livers before implantation. Therefore, experimental models are needed to address these questions before non-heart-beating liver transplantation can be more widely applied. This study aims to develop a reproducible large animal model of liver transplantation using non-heart-beating donors and, in this model, to define the tolerance of the liver to warm ischemia. METHODS: Pigs weighing 25to 30 kg are used. In donors, cardiac arrest is caused by ventricular fibrillation. After increasing lengths of warm ischemia (0, 15, 30, 45, and 60 min), the liver is flushed in situ with 4 degrees C histidine tryptophan ketoglutarate preservation solution and procured. The liver is transplanted after a 4-hour cold storage period. RESULTS: Control livers (no warm ischemia) and livers exposed to 15 minutes of warm ischemia function normally after transplantation, whereas all livers submitted to 60 minutes of warm ischemia display primary nonfunction and cause recipient death. Graft function and survival are occasionally observed after 30 and 45 minutes of warm ischemia. CONCLUSIONS: A reproducible model of non-heart-beating liver transplantation is described. We found that the liver tolerates 15 minutes of warm ischemia. This preclinical model is a valid tool to develop techniques to predict the quality of ischemic livers before implantation and to design interventional strategies to improve the tolerance of the liver to warm ischemia.

Animals↗

Differential modulation of gene expression among rat tissues with warm ischemia.

The aim of this study is to determine if warm ischemia after surgical extirpation impacts gene expression in tissue samples which will be used for cDNA array analysis. We investigated effects of warm ischemia on gene expression in lung, liver, kidney, and spleen of rats, chronologically, using an original cDNA array, real-time quantitative RT-PCR and immunohistochemistry. Although no visible alteration was found in RNA quality, cDNA array showed that expression of many genes was modulated by warm ischemia within 60 min in these tissues, 19.1% of the tested genes in lung, 11.0% in liver, 5.1% in kidney, and 16.2% in spleen. Quantitative RT-PCR revealed that warm ischemia significantly induced up-regulation of immediate early genes, c-fos, Egr-1, and c-jun, in lung, but not in liver. These findings suggest that genes may show tissue-dependent differential transcriptional response against warm ischemia. Tissue samples obtained from patients during surgery cannot completely escape effects of ischemia. In case of examination by cDNA array analysis, biologists should keep in mind that tissue samples come equipped with particular footprints.

Animals↗

Functional, metabolic, and histological changes of vascular tissues after warm ischemia.

We examined functional, metabolic, and histological changes in the aortic tissue of rats after the period of warm ischemia ranging from 0 to 24 hours to determine the window of time in which grafts can be optimally viable for harvest. Sixty aortas from Brown Norway rats obtained after warm ischemia were used and changes in contraction, endothelial-dependent or -independent vasodilatation, cell viability, and histology were examined. Maximal contraction induced by norepinephrine and potassium chloride decreased time-dependently after exposure to warm ischemia. The warm ischemic period when 50% of the maximal contractile response of freshly isolated arteries was preserved, ranged from 6 to 8 hours. Maximal endothelium-dependent relaxation induced by acetylcholine decreased along with the time of warm ischemia. Endothelium-independent relaxation induced by sodium nitroprusside and forskolin was unaltered for up to 9 hours. Cell viability gradually decreased, and a significant negative correlation was found between warm ischemic period (T: hours) and cell viability (V: %) (V=101.9-2.35T; r(2)=0.96; p<0.0001). Cell viability was greater than 70% within 12 hours postmortem. Histologically, after 9-hour-warm ischemia irreversible changes were detected. Results suggest that the period of warm ischemia for up to 6 hours would be acceptable for preservation of tissue viability.

Analysis of Variance↗

Marked difference in tumor necrosis factor-alpha expression in warm ischemia- and cold ischemia-reperfusion of the rat liver.

Although tumor necrosis factor-alpha has been implicated in liver injury after both warm ischemia- and cold ischemia-reperfusion, it is unclear whether reactivity of the liver to these stimuli is similar with regard to cytokine expression. Here we compare the effects of warm and cold ischemia on tumor necrosis factor-alpha expression and test the hypothesis that cold ischemia preceding warm ischemia causes overexpression of this cytokine. Rat livers were flushed out with University of Wisconsin solution and subjected to varying periods of warm ischemia, cold ischemia, or cold ischemia plus warm ischemia followed by reperfusion using a blood-free perfusion model. Tumor necrosis factor-alpha and interleukin-10 release into the perfusate and bile were measured by ELISA, and expression of these cytokines and that of c-fos, c-jun, and c-myc were studied by reverse-transcriptase polymerase chain reaction. We found high levels of tumor necrosis factor-alpha in the perfusates of livers subjected to warm ischemia-reperfusion, whereas minimal or no tumor necrosis factor-alpha was detected in livers subjected to cold ischemia-reperfusion or to cold ischemia plus warm ischemia-reperfusion. Reverse-transcriptase polymerase chain reaction confirmed the above findings and showed that immediate early genes were expressed in reperfused groups of livers. Measurements of cytokine release into bile showed that neither tumor necrosis factor-alpha nor interleukin-10 were upregulated by cold ischemia-reperfusion. The results suggest that (1) warm ischemia- and cold ischemia-reperfusion of rat liver lead to very different outcomes with regard to tumor necrosis factor-alpha expression and (2) cold ischemia preceding warm ischemia prevents upregulation of tumor necrosis factor-alpha.

Animals↗

Difference in onset of warm ischemia and reperfusion injury between parenchymal and endothelial cells of the liver. Evaluation by purine nucleoside phosphorylase and hyaluronic acid.

The onset of warm ischemia and reperfusion injury in the liver was investigated in a canine model through changes in parenchymal markers [isozyme class V of lactate dehydrogenase (LDH) and alanine aminotransferase (ALT)], endothelial markers [purine nucleoside phosphorylase (PNP) and hyaluronic acid clearance], and the liver metabolism (ketone body ratio) in warm ischemia induced by inflow occlusion using Pringle's maneuver and subsequent reperfusion. In this in vivo model, a PNP assay system and a model were designed so as to exclude the influence of wide localization of PNP possibly originating in erythrocytes or the intestine, and to discriminate between PNP of endothelial cells and that of parenchymal cells in the liver. After 45 min of warm ischemia, reperfusion resulted in damage only to endothelial cells, as seen by significant increase in PNP alone (3.6 +/- 0.1 U/liter at the end of warm ischemia to 6.8 +/- 0.5 U/liter at 5 min after reperfusion, P < 0.01) and significant decrease in hyaluronic acid clearance compared to the 30-min warm ischemia group in which no increase in either marker for parenchymal and endothelial cells was noted. By contrast, after 60 min of warm ischemia, reperfusion resulted in damage to parenchymal cells along with damage to endothelial cells, as seen by significant increases in LDH(V) and ALT (93 +/- 4 U/liter and 32 +/- 2 IU/liter at the end of warm ischemia to 239 +/- 17 U/liter and 165 +/- 27 IU/liter at 5 min after reperfusion, respectively), as well as a marked increase in PNP and deterioration of hyaluronic acid clearance compared to the 45-min warm ischemia group. Reperfusion after 120 min of warm ischemia did not show recovery of metabolic function of the liver as evaluated by hepatic mitochondrial redox state. It is suggested that a time lag occurs in the onset of injury between parenchymal cells and endothelial cells and that endothelial cells are temporally earlier in failing than parenchymal cells when the liver is exposed to short-term warm ischemia and subsequent reperfusion.

Alanine Transaminase↗

31P NMR assessment of orthotopic rat liver transplant viability. The effect of warm ischemia.

The relationship between NMR visible high energy phosphates and transplant outcome for the case of liver damage by warm ischemia was investigated. In vivo 31P nuclear magnetic resonance (NMR) spectroscopy of rat liver was performed before the induction of warm ischemia in the donor and 20 min after reestablishment of portal blood flow in the recipient. Pretransplant damage was varied by subjecting the livers to 0, 15, 30, or 60 min of warm ischemia prior to harvesting. In the controls (0 min warm ischemia), 4 of 4 rats survived transplantation (one week survival end-point) and the mean NTP recovery was 94 +/- 8%; 3 of 6 rats survived in the 15 min warm ischemia group. Mean NTP recovery was 77 +/- 20% in the 15 min survival subgroup and 32 +/- 20% in the nonsurvival subgroup. Of 6 rats, 1 survived in the 30 min group. NTP recovery was 44% for the 30 min survivor and 37 +/- 5% in the nonsurvival subgroup. Of 4 rats, 1 survived in the 60 min warm ischemia group. NTP recovery was 56% for the 60 min survivor and 28 +/- 7% in the nonsurvival subgroup. Overall, there was a significant difference between the mean NTP recovery of the survival and nonsurvival subgroups (78 +/- 21% versus 31 +/- 18%, P < 0.001). The dividing line between the survival and nonsurvival groups was approximately 50% NTP recovery. Of 9 rats with liver NTP recovery greater than 50%, 8 survived while 10 of 11 rats with less than 50% recovery died. NMR visible NTP recovery 20 min after the reestablishment of portal blood flow was a good indicator of transplant outcome in the case of rat liver damage by warm ischemia.

Animals↗

Changes in glucose transporter 2 and carbohydrate-metabolizing enzymes in the liver during cold preservation and warm ischemia.

In order to examine glucose metabolism in liver grafts during cold preservation (24 and 48 hr), warm ischemia (60 and 120 min), a combination of the two and reperfusion, the amount of protein and mRNA of glucose transporter 2 and the activities of enzymes in glycolysis (glucokinase, phosphofructokinase, pyruvatekinase), gluconeogenesis (glucose 6-phosphatase, fructose 1,6-bisphosphatase), and the pentose phosphate pathway (glucose 6-phosphate dehydrogenase) were measured. It appeared that glucose transport, the pentose phosphate pathway, and gluconeogenesis were maintained during cold preservation and warm ischemia. The activity of glucokinase significantly decreased from the control value of 1.33 +/- 0.23 IU/g protein to 0.70 +/- 0.17 (24 hr, P<0.05) and 0.57 +/- 0.12 (48 hr, P<0.01) only during cold preservation. However, the activity of phosphofructokinase significantly decreased from the control value of 4.37 +/- 0.06 IU/g protein to 2.67 +/- 0.15 (60 min, P<0.0001) and 1.53 +/- 0.06 (120 min, P<0.0001) only during warm ischemia. This indicates that glycolysis deteriorates during both cold preservation and warm ischemia and demonstrates further that the balance between glycolysis and gluconeogenesis shifts to gluconeogenesis. Even when cold preservation was combined with warm ischemia, the activity of glucokinase decreased only during cold preservation and the activity of phosphofructokinase decreased only during warm ischemia. Furthermore, these changes were time-dependent. It is suggested that they can be used as a clock to measure the durations of cold preservation and warm ischemia separately and that the magnitude of an ischemic injury to a liver and a liver graft's viability can be indirectly estimated before transplantation.

Animals↗