Monitoring of microvascular hemoglobin oxygenation in liver and skeletal muscle tissue of endotoxin-exposed rats using reflection spectrophotometry.
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Biomedical subjects
Publications and source records attributed to B Vollmar.
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Starting from the concept that lipopolysaccharide (LPS)-associated hepatotoxicity involves the action of reactive oxygen species, the present study was conducted to test whether vitamin E, a lipophilic antioxidant, prevents LPS-induced hepatic microvascular dysfunction and liver injury. Fifty-two rats were divided into three groups and fed diets containing 0 (n = 16), 75 (n = 18) or 8000 mg (n = 18) alpha-tocopherol acetate/kg food for four weeks. At 1 h and 6 h after intravenous LPS-exposure (10 mg/kg E. coli LPS) hepatic microvascular response and liver injury were assessed by the analysis of Kupffer cell phagocytic activity, leukocyte-endothelial cell interaction and nutritive sinusoidal perfusion (intravital fluorescence epi- illumination technique) as well as bile flow, serum liver enzyme activities and tissue histomorphology. In animals fed with 75 mg vitamin E/kg (standard diet), LPS caused hepatic Kupffer cell activation (increased phagocytic activity) and hepatic microvascular leukocyte activation, with stasis in sinusoids and adherence in postsinusoidal venules (1 h) followed by leukocytic infiltration into tissue (6 h) and progredient sinusoidal perfusion failure (6 h). Hepatic microvascular injury was accompanied by reduced bile flow and enhanced liver enzyme release. Vitamin E-enriched diet (8000 mg/kg) and even vitamin E-deficient diet did not significantly affect LPS-induced hepatic microvascular cell activation and perfusion failure. Thus, we conclude, that vitamin E is not effective to protect from endotoxin-induced hepatic microvascular dysfunction.
OBJECTIVE: A transient but severe systemic leukopenia regularly occurs after the antagonization of heparin by protamine in patients and in animals. The aim of the present study was to investigate the site and mechanisms of white blood cell retention during this transient leukopenia by studying the leukocyte-endothelial cell interaction in skeletal muscle venules. METHODS: Syrian golden hamsters were equipped with a dorsal skinfold chamber for intravital fluorescence microscopy and arterial and venous catheters for drug infusion, blood pressure measurement, and blood sampling. Microhemodynamic parameters and leukocyte-endothelial cell interactions were observed in one single collecting venule per animal after intravenous infusion of saline solution (control, n = 10), of protamine (n = 9), and after infusion of heparin followed by either intravenous protamine (n = 9) or intraarterial protamine (n = 9). RESULTS: All parameters remained unchanged in the control group. Whereas venular diameters remained unchanged, protamine transiently increased arterial blood pressure and venular erythrocyte velocity in all groups. Systemic leukocyte counts and the venular leukocyte discharge concentration decreased concurrently after protamine administration by about 60% to 70% at 2 minutes while the fraction of rolling leukocytes and the number of adherent leukocytes remained unchanged. Two and one-half minutes later, systemic leukocyte counts and venular discharge concentrations normalized while the fraction of leukocytes rolling slowly along or adhering firmly to the venular endothelial wall increased considerably and similarly in all groups receiving protamine. Myeloperoxidase (an indicator of polymorphonuclear leukocytes) determination in 20 separate hamsters 2 minutes after protamine infusion revealed increased myeloperoxidase activity exclusively in the lungs. CONCLUSION: The response of leukocytes to protamine infusion with or without prior heparinization is biphasic: initial retention of leukocytes in the lungs is followed by enhanced leukocyte-endothelial cell interaction in the systemic circulation.
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Leukocytic response plays a major role in the manifestation of hepatic ischemia/reperfusion (I/R) injury. To clarify whether post-ischemic hepatic leukocyte accumulation is based on increased leukocyte flux to the hepatic tissue due to systemic inflammation or chemoattractant activities or whether it represents solely a local tissue response without changing overall leukocyte flux and trafficking characteristics through the microvasculature, we studied acinar and sinusoidal leukocyte flux and distribution in rat livers in vivo both under normal (sham, n = 8) and post-ischemic (60' ischemia/75' reperfusion) conditions (I/R, n = 8), using fluorescence epi-illumination microscopy (rhodamine-6G). Hepatic ischemia/reperfusion significantly (p < 0.05) increased acinar leukocyte flux (58.4 +/- 20.9 cells/min vs 36.4 +/- 12.8 cells/min in sham controls); however, it did not exhibit increased heterogeneity of acinar leukocyte distribution, as indicated by the unchanged coefficient of variance (CV) of 0.36 +/- 0.16 (sham controls: 0.31 +/- 0.14). In parallel, analysis of individual sinusoidal leukocyte flux demonstrated significantly (p < 0.05) higher values (8.9 +/- 3.7 cells/min) after ischemia/reperfusion when compared with sham controls (5.7 +/- 1.9 cells/min), which, however, was not associated with increased heterogeneity of sinusoidal leukocyte trafficking (CV: 0.85 +/- 0.15 vs 0.85 +/- 0.16 in sham controls) and manifestation of preferential pathways. Analysis of blood cell count did not demonstrate an overall increase of total blood leukocyte count; however, an increased (p < 0.01) fraction of polymorphonuclear leukocytes (65.2 +/- 11.2%) and stab cells (9.5 +/- 7.9%) during post-ischemic reperfusion when compared with sham controls (8.8 +/- 3.5% and 0.2 +/- 0.4%) was demonstrated. Thus, the increase of hepatic leukocyte flux after ischemia/reperfusion may be the result of both the manifestation of a systemic inflammatory response and the increase of local chemoattractant activities, such as the production and release of the cytokine-induced neutrophil chemoattractant of the IL-8 family.
The process of lymph vessel expansion and function in the development of CCl4-induced hepatic fibrosis and cirrhosis was studied using intravital fluorescence microscopy of the rat liver. The unique aspect of our approach was the use of high molecular fluorescein-isothiocyanate-labeled dextran (MW, 150,000) as fluorescent marker, which allowed for simultaneous assessment of both 1) the macromolecular blood hepatocytic exchange from the sinusoidal microvasculature (extra-/intrasinusoidal gray level intensity at 1, 3, 5, and 10 minutes after intravenous injection) and 2) the hepatic lymph system. In animals exposed with CCl4 up to 4 weeks, macromolecular trans-sinusoidal exchange was found progressively delayed. This was strongly associated with lymph vessel expansion and function, as indicated by a continuous increase of lymph vessel density and area. Delay of macromolecular exchange and lymph vessel expansion was found not further enhanced at fibrotic and cirrhotic stages of 8- and 12-week CCl4-exposed livers. Linear regression analysis revealed a strong negative correlation between lymphatic network density development and macromolecular trans-sinusoidal exchange (r2 = 0.99; P < 0.01). Thus, our study provides for the first time direct evidence for the pivotal role of lymphatic function for macromolecular transport in case of deteriorated sinusoidal hepatocellular exchange capacity.
The major dysfunction of capillaries after prolonged periods of ischemia is the lack of re-establishment of nutritive blood flow upon onset of reperfusion, i.e., capillary no-reflow. Several mechanisms have been proposed to cause capillary no-reflow, including intravascular hemoconcentration and thrombosis, leukocyte plugging, endothelial cell swelling, vasomotor dysfunction, and interstitial edema formation. Electron microscopic studies suggest that thrombus formation and intravascular clotting are not significant mechanisms. Moreover, intravital microscopic studies have demonstrated that plugging of capillaries by leukocytes is not a primary cause for the manifestation of no-reflow in postischemic striated muscle. In contrast, both in vivo studies and histological examinations support the concept that ischemia/reperfusion induces the disruption of the endothelial integrity with loss of fluid to endothelial cells and the interstitial space. As a consequence, these pathological sequelae are associated with intravascular hemoconcentration, endothelial cell swelling and interstitial edema formation, which contribute to capillary lumenal narrowing, increase of hydraulic resistance, and, thus, impairment of perfusion. Whether the postischemic diameter response with dilation of reperfused capillaries and lumenal narrowing of no-reflow capillaries involves endothelin/nitric oxide-triggered capillary pericyte function remains to be determined.
The alteration of rheological blood properties as well as deterioration of vascular perfusion conditions and cell-cell interactions are major determinants of thrombus formation. Herein, we present an experimental model which allows for quantitative in vivo microscopic analysis of these determinants during both thrombus formation and vascular recanalisation. The model does not require surgical preparation procedures, and enables for repeated analysis of identical microvessels over time periods of days or months, respectively. After i.v. administration of FITC-dextran thrombus formation was induced photochemically by light exposure to individual arterioles and venules of the ear of ten anaesthetised hairless mice. In venules, epi-illumination induced rapid thrombus formation with first platelet deposition after 0.59 +/- 0.04 min and complete vessel occlusion within 7.48 +/- 1.31 min. After a 24-h time period, 75% of the thrombosed venules were found recanalised. Marked leukocyte-endothelial cell interaction in those venules indicated persistent endothelial cell activation and/or injury, even after an observation period of 7 days. In arterioles, epi-illumination provoked vasomotion, while thrombus formation was significantly (p <0.05) delayed with first platelet deposition after 2.32 +/- 0.22 min and complete vessel occlusion within 20.07 +/- 3.84 min. Strikingly, only one of the investigated arterioles was found recanalised after 24 h, which, however, did not show leukocyte-endothelial cell interaction. Heparin (300 U/kg, i.v.) effectively counteracted the process of thrombus formation in this model, including both first platelet deposition and vessel occlusion. We conclude that the model of the ear of the hairless mouse allows for distinct in vivo analysis of arteriolar and venular thrombus formation/recanalisation, and, thus, represents an interesting tool for the study of novel antithrombotic and thrombolytic strategies, respectively.
Cellular adhesion is mediated by distinct cell surface receptors (adhesion molecules) and plays a pivotal role in the biological processes of morphogenesis, cell migration and cell-cell communication. During the past decade many adhesion molecules have been identified and structurally analysed. This has allowed an understanding of their role in the pathophysiology of disease, including inflammation and sepsis, ischaemia and reperfusion, transplant rejection, atherosclerosis and thrombosis, angiogenesis and wound healing, as well as carcinogenesis and tumour metastasis. Understanding of the molecular mechanisms of cellular communication is not only vital for advances in surgical pathophysiology, it also has the potential to widen the spectrum of diagnosis and therapy of disease. Analysis of expression of individual surface molecules may help in the diagnosis of transplant rejection and allow a prognostic determination of tumour progression and metastasis formation. Moreover, manipulation of adhesion molecule function by monoclonal antibodies, antisense oligonucleotides or single gene products may open the door for novel therapeutic regimens to prevent transplant rejection and ischaemia-, sepsis- and shock-induced tissue injury.
Postischemic liver dysfunction following portal triad cross-clamping (PTC) predisposes patients for the development of multiple system organ failure (MSOF) and is associated with increased mortality of MSOF. The deterioration of the hepatic microcirculation may play a pivotal role in the pathophysiologic sequelae of PTC-induced reperfusion injury. We quantitatively analyzed in vivo the role of microcirculatory derangements in the manifestation of hepatic reperfusion injury following ischemia by PTC. Sprague-Dawley rats were subjected to 20 min PTC followed by 60 min reperfusion (PTC, n = 18). Sham-operated animals without ischemia served as controls (sham, n = 15). Within 45-60 min of reperfusion, hepatic microcirculation (sinusoidal perfusion, leukocyte-endothelial cell interaction) was analyzed by means of intravital fluorescence microscopy; tissue oxygenation was assessed using a platinum multiwire surface electrode. Liver enzymes and bile flow were determined as indicators of hepatocellular integrity and liver function. In vivo analysis of postischemic hepatic microcirculation revealed the induction of leukocyte-endothelial cell interaction within sinusoids and postsinusoidal venules and concomitant sinusoidal perfusion deficits associated with tissue hypoxia. In addition, PTC resulted in increased serum levels of liver enzymes and a marked reduction of bile flow. Regression analyses demonstrated significant correlations between hepatocellular desintegration/liver dysfunction and PTC-induced microcirculatory disorders. These results underline the predominant role of microcirculatory disturbances in the development of PTC-induced hepatic reperfusion injury and support the concept that normalization of postischemic microcirculation may be a most effective therapeutic regimen to prevent hepatocellular damage and liver dysfunction.
The aim of the study was to evaluate the effects of arterial hypotension, high-volume crystalloid resuscitation, and isovolemic hemodilution on pancreatic microvascular perfusion during acute pancreatitis. Using intravital microscopy, pancreatic functional capillary density was analyzed in rats 1 and 2 hr after onset of acute pancreatitis. Pancreatic microvascular perfusion in acute pancreatitis was characterized by a (-62%) significant reduction of functional capillary density predominantly in perinecrotic but also in nonnecrotic tissue (-43%). Pancreatic microvascular perfusion failure was aggravated by arterial hypotension but attenuated by treatment with high-volume crystalloid resuscitation. Isovolemic hemodilution was found superior to high-volume crystalloid resuscitation in maintaining pancreatic functional capillary density and therefore has the best potential in preserving tissue integrity and thereby limiting progression of disease. This study underlines the importance of early fluid resuscitation/hemodilution in patients presenting with acute pancreatitis.
In hepatic pathology, in vivo assessment of microvascular perfusion failure by intravital microscopic determination of functional sinusoidal density is a time-consuming procedure, which requires accurate identification of blood-flow conditions within each individual sinusoid. Herein we report a new method, which is easily applicable and which allows for rapid analysis of hepatic microvascular perfusion deficits by intravital fluorescence microscopy using Bisbenzamide H33342 staining of hepatocytes (excitation 330-390 nm/emission > 430 nm). To validate this method hepatic microvascular perfusion failure was induced in eight spontaneously breathing, chloralhydrate-anesthetized rats by 90-min left lobar ischemia and reperfusion. For quantitative assessment of hepatocellular bisbenzamide fluorescence intensity, gray levels were determined densitometrically, and the area of positive-stained cells was calculated automatically as percentage of the whole area of observation. Within identical acini (n = 67) area of positive hepatocellular fluorescence was correlated with functional sinusoidal density, i.e, total length of perfused sinusoids per observation area (cm/cm2), which was determined simultaneously by contrast enhancement with sodium fluorescein (450-490/ > 520 nm) using a computer-assisted image analysis system. Postischemic reperfusion was characterized by a marked heterogeneity of nutritive perfusion with a considerable number of nonperfused sinusoids. Visualization of bisbenzamide fluorescence revealed brightly stained hepatocytes in well-perfused areas, but faint hepatocellular fluorescence in areas presenting with sinusoidal perfusion failure. Linear regression analysis between area of positive hepatocellular fluorescence and functional sinusoidal density revealed a significant (P < 0.01) correlation (r2 = 0.926), indicating that automated densitometric analysis of hepatocellular bisbenzamide fluorescence represents a valid method to determine hepatic nutritive perfusion failure in vivo.
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With the concept that ischemia-reperfusion injury may contribute to the pathogenesis of acute pancreatitis, we have quantitatively analyzed the pancreatic microcirculation of rats during postischemic reperfusion using intravital fluorescence microscopy. Ischemia to the pancreas of Sprague-Dawley rats (N = 7) was induced by clamping the arteriae gastroduodenalis, lienalis, gastrica sinistra, and gastricae breves for 60 min followed by 120 min of reperfusion. Ischemic conditions were verified by measurement of microvascular hemoglobin oxygenation using reflection spectrophotometry (n = 9). Postischemic reperfusion was characterized by a significant (P < 0.05) reduction of functional capillary density to approximately 69% of baseline (no reflow). Reperfusion-induced inflammatory response was reflected by a marked increase (100-fold; P < 0.01) of the number of permanently adherent leukocytes in postcapillary venules (reflow paradox). Postischemic reperfusion was further associated with increased serum lipase activities, and histomorphological analysis revealed alterations, similar as known in acute interstitial pancreatitis, ie, neutrophil infiltration, interstitial edema, and hemorrhagic lesions. We, therefore, conclude that ischemia-reperfusion- associated events, ie, no reflow and reflow paradox, may be considered as trigger mechanisms in the manifestation of distinct types of acute pancreatitis, in particular posttransplant pancreatitis.
Although reactive oxygen metabolites may play a pivotal role in mediating microvascular reperfusion injury, the source of these radicals is still a matter of controversy. With the use of spectrophotometry and intravital microscopy we studied the role of xanthine oxidase and superoxide radicals in portal triad crossclamping-induced microvascular injury in rats. After 20 min of global hepatic ischemia and splanchnic vascular congestion, followed by 40 min of reperfusion (n = 8), xanthine oxidase activities in hepatic venous (26.9 +/- 4.7 nmol/ml x min) and systemic arterial blood (16.3 +/- 2.5 nmol/ml x min) were found significantly (p < .01) increased when compared with sham-operated controls (6.8 +/- 0.9 and 6.0 +/- 0.8 nmol/ml x min, n = 8). The increase of xanthine oxidase activity was accompanied by oxygen radical-mediated intravascular hemolysis. Intravital microscopy (n = 6) revealed accumulation of leukocytes within the postischemic hepatic microvasculature with stasis in sinusoids (75.9 +/- 8.9 per liver lobule) and adherence to the endothelial lining of postsinusoidal venules (534.7 +/- 125.3 per mm2 endothelial surface). Concomitantly, compromised microvascular reperfusion was characterized by perfusion deficits of individual sinusoids (25.6 +/- 4.0% nonperfused sinusoids). The xanthine oxidase inhibitor allopurinol (50 mg/kg b.wt., orally, n = 6) and the radical scavenger superoxide dismutase (60000 IU/kg b.wt., IV, n = 6) effectively (p < .01) inhibited both sinusoidal leukostasis (16.1 +/- 2.6 and 32.1 +/- 3.1 cells/lobule) and venular leukocyte adherence (247.6 +/- 7.9 and 205.0 +/- 38.0 cells/mm2), and, hence, reduced microcirculatory deteriorations, indicated by the attenuation of sinusoidal perfusion failure (2.8 +/- 0.8 and 9.0 +/- 3.1%). Our results support the hypothesis that portal triad crossclamping-induced microvascular reperfusion injury is triggered by superoxide radicals derived from the xanthine oxidase system.
BACKGROUND/AIMS: In recent years, Gadolinium chloride (GdCl3), a rare earth metal, has frequently been used to study the role and function of Kupffer cells under physiological and pathological conditions. This study was performed to elucidate the consequences of GdCl3-induced Kupffer cell blockade for hepatic microcirculation, hepatocellular function and integrity. METHODS/RESULTS: Using intravital fluorescence microscopy, we studied the hepatic microcirculation of rats pretreated with either GdCl3 (n = 12; 10 mg/kg; 1 ml i.v. for 2 d) or saline (n = 9; 1 ml). The GdCl3-treated animals revealed a significantly lower phagocytic activity of Kupffer cells when compared to controls. Concomitantly, GdCl3-treatment resulted in a pronounced rise of serum cytokine activity (tumor necrosis factor-alpha; interleukin-6). The hepatic microvascular perfusion was characterized by a moderate increase in the number of non-perfused sinusoids accompanied by a reduction of bile flow. In addition, GdCl3-treatment caused a slight increase in liver enzyme activity (< 200 U/l) (aspartate aminotransferase and alanine aminotransferase) with no substantial parenchymal tissue injury (light microscopy). The groups did not differ in concentrations of circulating endotoxin (GdCl3-treatment: 0.044 +/- 0.042 ng/ml; controls: 0.052 +/- 0.014 ng/ml). CONCLUSIONS: We conclude that hepatic alterations following Kupffer cell blockade with GdCl3 may possibly be the consequence of cytokine release as a response to the phagocytic challenge of GdCl3-aggregates. If used for Kupffer cell blockade, the hepatic alterations following GdCl3-treatment described in the present study should be taken into consideration.
With the use of epiilumination fluorescence microscopy, we demonstrate for the first time in vivo the existence and function of direct arteriovenous communication (arteriovenous shunt) in rat pancreatic acinar tissue. In eight Sprague-Dawley rats the corpus and tail of the pancreatic gland were reviewed for arteriovenous anastomoses. In seven animals the technique did not allow us to visualize completely the arteriolar and venular vascular system due to overlying pancreatic tissue. In one animal, however, the vascular trees could be identified in their continuity over a length of several millimeters, including an arteriovenous shunt with a diameter of 12.0 microns. Analysis of volumetric blood flow revealed that 86.2% (15.61 nl/min) of the arteriolar blood volume was shunted into the venule, while only 13.8% (2.50 nl/min) of the blood volume was carried by the arteriole distal to the arteriovenous shunt to the nutritive capillary bed. There were no changes in diameter, i.e., vasoconstriction, vasodilation, or vasomotion, over an observation period of 30 min, indicating that, at least under physiological conditions, this arteriovenous communication functioned as a real "fare-through" channel.