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Biomedical subjects

A T Canada

Publications and source records attributed to A T Canada.

At least 19 recordsLinked to original sources

Glutathione and glutathione S-transferase in benign and malignant prostate cell lines and prostate tissues.

Metastatic prostate adenocarcinoma is unresponsive to alkylator chemotherapy with virtually no prolonged remissions. Glutathione (GSH) and glutathione S-transferase (GST) have been reported to play a role in tumor resistance to alkylator therapy; however, there are no baseline studies that have investigated and compared GSH and GST in human prostate cell lines and tissues. Thus, we determined the GSH content and GST activity in benign prostate, in primary and metastatic prostate adenocarcinoma tissues, in immortal adenocarcinoma cell lines, and in primary cell cultures derived from both benign prostate and primary prostatic carcinoma tissue. The GSH content was higher in the immortal cell lines than in the fresh tissues and primary cultures. Conversely, the GST activity was significantly higher in the tissues and primary cultures than in the cell lines. The GSH content and GST activity of the primary cultured prostatic cells were similar to those of the prostate tissues. The differences between the immortal prostate cancer cell lines and prostate tissue are of sufficient magnitude to suggest that in vitro results with cell lines may not extrapolate to prostate cancer in vivo. The GSH content and GST activity in a prostate specific antigen-secreting human prostate tumor xenograft, LuCaP23, maintained in nude mice were similar to those of human prostate tissue and primary cultures. Both the xenograft and primary cultures from patients with prostate cancer may be more appropriate models than established cell lines for investigating techniques to increase the effectiveness of alkylators in prostate cancer.

Adenocarcinoma

An age-related difference in hyperoxia lethality: role of lung antioxidant defense mechanisms.

The role of animal age in the lethal response to > 98% oxygen has been extensively studied, with the observation that neonatal rats were resistant while mature animals were sensitive. Antioxidant enzymes increased during the oxygen exposure in neonatal but not in mature rats, suggesting they were important in the age-related toxicity difference. Because no studies had compared the response of mature and old rats to hyperoxia, we exposed Fischer 344 rats, aged 2 and 27 mo, to > 98% oxygen. Unexpectedly, the old rats lived significantly longer than young, 114 and 65 h, respectively. No histopathological differences were found to explain the results. Of the antioxidants, only glutathione peroxidase (GPx) activity was higher in the lungs of nonexposed old rats. Superoxide dismutase (SOD) was higher in the young, results opposite those expected if SOD was important in the lethality difference. No antioxidant induction occurred in the old oxygen-exposed rats. These results suggest that although there may be a role for GPx, mechanisms in addition to antioxidant protection and inflammation are likely responsible for the age-related difference in hyperoxia lethality.

Aging

Modulation of human colonic T84 cell secretion by hydrogen peroxide.

Hydrogen peroxide (H2O2) is a reactive oxygen species that can be produced in the digestive tract by inflammatory cells or during reperfusion following ischemia. To evaluate a possible direct effect of H2O2 on epithelial secretory cells, well-differentiated colonic T84 cells were grown to confluence on permeable membranes and studied in Ussing chambers. In this model, where the measured short-circuit current (Isc) reflects electrogenic secretion, we observed that H2O2 stimulated a concentration-dependent and transient secretory response: 5.5 mM H2O2 produced a peak Isc of 12.4 microA/cm2 after 4 min, 2.2 mM H2O2 a peak Isc of 7.9 microA/cm2 after 4 min, and 1.1 mM H2O2 a peak Isc of 5.5 microA/cm2 after 16 min (N = 5). When 97 experiments using 5.5 mM H2O2 were reviewed, the mean peak Isc response was 8.9 +/- 0.5 microA/cm2. A similar secretory response was elicited whether H2O2 was added to the serosal, to the mucosal, or simultaneously to both sides of the T84 cell monolayer. This secretory response reflected transcellular chloride secretion because it was inhibited by the depletion of chloride in the medium and by the suppression of the Na+,K+,2Cl- co-transporter activity necessary for the chloride gradient driving chloride secretion. When T84 cell monolayer resistance was studied, 5.5 mM H2O2 produced a transient decrease in resistance, reflecting transcellular chloride secretion, and a gradual decline in resistance (75% of the initial value after 55 min). The secretory response to H2O2 was increased 2-fold in T84 cells maximally stimulated with 10 nM vasoactive intestinal peptide (VIP), a neuropeptide which acts via cAMP, demonstrating synergism between the two agents. In contrast, the secretory responses produced by H2O2 and carbachol, which acts through the Ca2+ pathway, were additive. A late inhibitory effect of H2O2 was also observed: in cells previously treated with 5.5 mM H2O2, the subsequent secretory responses to either VIP or carbachol were partially inhibited. These secretory effects were specific for the oxidant properties of H2O2 because they were inhibited by 450 U/mL catalase and by 5 mM dithiothreitol, but were unaffected by 50 microM deferoxamine B or Fe3+. H2O2 may be a potential modulator of intestinal or colonic secretion in certain pathologic conditions such as inflammation or ischemia-reperfusion.

Adenocarcinoma

The interaction of fentanyl on the Cp50 of propofol for loss of consciousness and skin incision.

BACKGROUND: We have previously demonstrated that the minimum alveolar concentration of isoflurane at 1 atm that is required to prevent movement in 50% of patients or animals exposed to a maximal noxious stimulus is markedly reduced by increasing fentanyl concentrations. Total intravenous anesthesia with propofol is increasing in popularity, yet the propofol concentrations required for total intravenous anesthesia or the interaction between propofol and fentanyl have not yet been defined. METHODS: Propofol and fentanyl were administered via computer-assisted continuous infusion to provide pseudo-steady-state concentrations and allow equilibration between plasma-blood concentration and their biophase concentration. For the induction of anesthesia patients were randomly allocated to receive propofol only or propofol plus fentanyl 0.2, 0.8, 1.5, 3.0, and 4.5 ng/ml. In each group patients were randomized to target propofol concentrations of 1.5-10 micrograms/ml. At 7 and 10 min arterial blood samples were taken for subsequent measurement of propofol and fentanyl concentrations. At 10 min loss of consciousness was assessed by the patients' ability to respond to a simple verbal command. Thereafter a new target concentration of propofol was entered to ensure loss of consciousness, and succinylcholine was administered to facilitate tracheal intubation. Patients were rerandomized to a new target concentration of propofol (1-19 micrograms/ml) until skin incision. Before skin incision and 1 min after skin incision, arterial blood samples were again obtained for subsequent measurement of fentanyl and propofol concentrations. At skin incision and for 1 min the patient was observed for purposeful movement. Only samples in which the pre- and poststimulus drug concentrations were within 35% of each other were included. The propofol blood concentration at which 50% or 95% of patients did not respond to verbal command (Cp50s and Cp95s, respectively) and to skin incision (Cp50i and Cp95i, respectively), were calculated by logistic regression. RESULTS: There were 56 evaluable patients for calculating the propofol Cp50s and 53 patients for calculating the propofol Cp50i. For propofol alone the Cp50s was 3.3 micrograms/ml and the Cp95s 5.4 microgram/ml. Increasing fentanyl concentrations reduced the Cp50s (P = 0.03), and increasing age decreased the Cp50s (P = 0.04). For propofol alone the Cp50i was 15.2 (95% confidence interval 7.6-22.8) micrograms/ml and the Cp95i 27.4 micrograms/ml. Increasing fentanyl concentrations markedly reduced the Cp50i (P < 0.01), with a 50% reduction in Cp50i produced by 0.63 ng/ml fentanyl. The propofol Cp50i was decreased by 63% with 1 ng/ml fentanyl and 89% by 3 ng/ml fentanyl. At higher fentanyl concentrations the decrease in Cp50i was proportionally less, demonstrating a ceiling effect. CONCLUSIONS: We defined the propofol concentration required for loss of consciousness and showed that it is reduced by increasing fentanyl concentration and by increasing age. The propofol concentration (alone) adequate for skin incision is high but is markedly reduced by fentanyl. A ceiling effect in the Cp50i for propofol is seen with fentanyl concentrations greater than 3 ng/ml.

Adult

Adenine nucleotides of ischemic intestine do not reflect injury.

Warm ischemia of the intestine is a medical emergency which results from mesenteric vascular occlusion. In addition, intestinal transplantation techniques will also inevitably result in intestinal ischemia. The recovery of organ function following ischemia depends on the extent of irreversible damage produced by the ischemia and the extent of reflow upon reperfusion. In some organs energy homeostasis has been found to correlate with organ recovery and graft survival following ischemia-reperfusion. Investigating the usefulness of the determination of adenine and pyridine nucleotides as indicators of the extent of ischemic injury in intestinal segments, we found that after an initial 40% decrease in ATP following 30 min of ischemia there was no further decrease despite increasing the ischemia period to 120 min. Similarly, the decrease in NAD+ and NADP which occurred after 30 min of ischemia did not decrease further after 60, 90, or 120 min of ischemia. Xanthine was the only biochemical where an increase appeared to correlate with ischemia duration while energy charge was of no value in indicating injury extent. Additionally, after reperfusion there was at best a poor correlation between recovery of ATP content and the duration of ischemia. Microcirculation reflow after reperfusion indicated ischemia time-related endothelial cell injury. Thus, the measurement of high-energy phosphates in intestinal segments is not of value as an indicator of the extent of intestinal ischemic injury.

Adenine Nucleotides

Hydrogen peroxide production by monoamine oxidase during ischemia-reperfusion in the rat brain.

Monoamine oxidase (MAO) as a source of hydrogen peroxide (H2O2) was evaluated during ischemia-reperfusion in vivo in the rat brain. H2O2 production was assessed with and without inhibition of MAO during and after 15 min of ischemia. Metabolism of H2O2 by catalase during ischemia and reperfusion was measured in forebrain homogenates using aminotriazole (ATZ), an irreversible H2O2-dependent inhibitor of catalase. Catecholamine and glutathione concentrations in forebrain were measured with and without MAO inhibitors. During ischemia, forebrain blood flow was reduced to 8% of baseline and H2O2 production decreased as measured at the microperoxisome. During reperfusion, a rapid increase in H2O2 generation occurred within 5 min as measured by a threefold increase in oxidized glutathione (GSSG). The H2O2-dependent rates of ATZ inactivation of catalase between control and ischemia-reperfusion were similar, indicating that H2O2 was more available to glutathione peroxidase than to catalase in this model. MAO inhibitors eliminated the biochemical indications of increased H2O2 production and increased the catecholamine concentrations. Mortality was 67% at 48 h after ischemia-reperfusion, and there was no improvement in survival after inhibition of MAO. We conclude that MAO is an important source of H2O2 generation early in brain reperfusion, but inhibition of the enzyme does not improve survival in this model despite ablating H2O2 production.

Amitrole

Citrus flavonoids stimulate secretion by human colonic T84 cells.

Flavonoids, compounds containing a 2-phenylbenzo(gamma)pyrane nucleus, are universally distributed among vascular plants. Even though flavonoids are ingested in a normal diet in average quantities of 1 g daily, their effects on the digestive system have only been recently investigated. This study used an in vitro model of colonic secretion, monolayers of T84 colonic adenocarcinoma cells mounted in Ussing chambers, to demonstrate that 100 mumol/L of either tangeritin or nobiletin, polymethoxylated flavonoids contained in citrus fruits, stimulated sustained electrogenic chloride secretion with a maximal short-circuit current of 3.3 microA/cm2. In contrast, naringin and hesperidin, glycosylated citrus flavonoids, stimulated minimal secretion, suggesting that carbohydrate substitutions inhibited their secretory potential. The secretion stimulated by tangeritin and nobiletin was synergistic with carbachol but not with vasoactive intestinal peptide and was inhibited by barium chloride, bumetanide, H-89, and Cl- depletion. These properties suggest that tangeritin and nobiletin stimulated Cl- secretion via the cAMP pathway; however, these flavonoids did not stimulate cAMP production to the extent seen with vasoactive intestinal peptide. These flavonoids did not autooxidize, suggesting that reactive oxygen species did not mediate this secretion. These observations suggest that dietary citrus flavonoids may modulate colonic secretion, possibly through direct interaction with intracellular secretory pathways.

Adenocarcinoma

Biochemical appraisal of models for hepatic ischemia-reperfusion injury.

Since total hepatic ischemia occurs with transplantation, there has been interest in developing a model which could be used to evaluate interventions to mitigate hepatic ischemic injury. The initial model employed global ischemia of the entire liver which necessitated the placement of a portal-femoral shunt (model A). In 1982, a model of hepatic ischemia was proposed in which ischemia was produced only in the left and median lobes which obviated the need for the shunt (model B). Recently, it has been found that with this model, increased flow to the nonischemic right lobe persists after left reperfusion thus effectively "stealing" blood from the reperfusing left lobe. Occlusion (model C) or removal (model D) of the right lobe on reperfusion have been proposed as techniques to reduce the "steal". We found, that after 30 min of ischemia, the ATP recovery for model B was significantly slower than for either model C or D. Similarly, the AMP content of model B lobes was significantly higher after 15 min of reperfusion, while 30 min after reperfusion, the total adenine nucleotide content was significantly lower in model B compared with models C and D. The energy charge returned to normal within 15 min of reperfusion in model C lobes while it was delayed until 60 min of reperfusion for models B and D. This study provides support for the advantages of right lobe occlusion (model C) over model B for acute studies evaluating the effect of interventions on ischemic injury to the liver and of removal (model D) for survival studies.

Adenine Nucleotides

Stimulation of secretion by the T84 colonic epithelial cell line with dietary flavonols.

Flavonols are dietary compounds widely distributed in plants and characterized by a 2-phenyl-benzo(alpha)pyrane nucleus possessing hydroxyl and ketone groups at positions 3 and 4, respectively. Kaempferol, quercetin, and myricetin are flavonols that are further mono-, di-, or trihydroxylated on the phenyl ring, respectively. To test whether these ingested flavonols might exert a direct secretory effect on intestinal epithelial cells, monolayers of the T84 colonocyte cell line were mounted in Ussing chambers and examined for ion transport response. Twenty minutes after addition of 100 microM quercetin to either the serosal or mucosal side, the short-circuit current change was maximal at 16.6 microA/cm2. Kaempferol was less potent than quercetin, while myricetin and glycosylated quercetin (rutin) did not induce secretion. The secretion induced by quercetin did not seem to be mediated by the reactive oxygen species generated by quercetin through auto-oxidation and/or redox cycling (superoxide, hydrogen peroxide, and the hydroxyl radical) because it was neither enhanced by iron, nor inhibited by desferroxamine B or catalase (alone or in combination with superoxide dismutase). Like vasoactive intestinal peptide, quercetin induced a secretory response that was inhibited by barium chloride and bumetanide, and which exhibited synergism with carbachol. Quercetin also stimulated a modest increase in intracellular cAMP levels and the phosphorylation of endogenous protein substrates for cAMP-dependent protein kinase. Thus, quercetin is a potent stimulus of colonocyte secretion that resembles secretagogues which act via a cAMP-mediated signaling pathway.

Carbachol

The evaluation of Escherichia coli as a model for oxidant stress in mammalian hepatocytes: role of glutathione.

Among bacteria, Escherichia coli are unique because they contain an amount of glutathione (GSH) comparable to that of mammalian cells. Thus, this bacterium has been suggested as a model for oxidant stress in mammalian systems. Two common strains of E. coli, ATCC 29682, a B strain, and AB 1157, a K-12 strain, were exposed to paraquat (PQ) or t-butyl hydroperoxide (TBH) and the effect on GSH, growth, and lethality was assessed. Exposure of both strains to 5 mM PQ resulted in an 80% decrease in GSH. Exposure to 5 mM TBH resulted in a 31% decrease in GSH in the K-12 strain and an 80% decrease in the B strain. No correlation was found between the GSH decrease in either strain and the PQ or TBH growth inhibitory effects. TBH exposures increased oxidized GSH (GSSG) export. However, no increase in intracellular GSSG or protein-mixed disulfides was found after exposure to either oxidant nor was GSSG secreted following PQ. After failing to inhibit GSH synthesis with buthionine sulfoximine, a B strain GSH-deficient mutant [RCI-1] was constructed. There was no difference in the growth and lethality responses to the oxidants between GSH-deficient and -sufficient strains. GSH supplementation with N-acetylcysteine or L-2-oxothiazolidine decreased the sensitivity of the E. coli B strain to the growth inhibitory but not the lethality effects of TBH. The lack of a correlation of changes in GSH with either oxidant-induced growth inhibitory or lethality effects, the presence of catalase in the cytoplasm not peroxisomes, and the absence of glutathione peroxidase are limitations to the value of this bacterium as a model for mammalian oxidant stress.

Animals

Evaluation of solutions for small intestinal preservation. Biochemical changes as a function of storage time.

A number of organ preservation solutions have been formulated to slow the inevitable progression of ischemic injury, thus prolonging the storage time between removal and implantation. As adenine nucleotide content has been shown to correlate with the functional recovery of transplanted livers and hearts, this study investigated the effects of 24 hr of storage in three preservation solutions, saline (SA), Euro-Collins (CO), and University of Wisconsin (UW) on adenine and nicotinamide adenine nucleotides and inosine content of the rat small intestine. Significant biochemical differences were found between segments as early as after the initial perfusion when the inosine content was higher in UW-perfused than CO- or SA-perfused segments. After 2 hr of storage in CO solution and after 6 and 24 hr in both CO and UW solutions, the ATP content was higher than in SA-stored segments. In addition to inosine, which was significantly higher at all time points for UW-stored segments, the AMP and total adenine nucleotide content of UW-stored segments at 24 hr was significantly higher than SA- or CO-stored segments. After 24 hr of storage, those segments stored in UW were able to utilize significantly more oxygen than SA-stored. These data provide biochemical evidence supporting the advantages of CO and UW storage solutions over SA for preservation of small intestine segments.

Adenine Nucleotides

The production of reactive oxygen species by dietary flavonols.

Flavonols are a group of naturally occurring compounds which are widely distributed in nature where they are found glycosylated primarily in vegetables and fruits. A number of studies have found both anti- and prooxidant effects for many of these compounds. The most widely studied because of their ubiquitous nature have been quercetin, a B-dihydroxylated and myricetin, a B-trihydroxylated flavonol. Some of their prooxidant properties have been attributed to the fact that they can undergo autooxidation when dissolved in aqueous buffer. Studying a number of factors affecting autooxidation, we found the rate of autooxidation for both quercetin and myricetin to be highly pH dependent with no autooxidation detected for quercetin at physiologic pH. Both the addition of iron for the two flavonols and the addition of iron followed by SOD for quercetin at physiologic pH. Both the addistantially. Neither kaempferol, a monohydroxylated flavonol nor rutin, a glycosylated quercetin showed any ability to autooxidize. The results with rutin differ from what we expected based on the B-ring structural similarity to quercetin. The autooxidation of quercetin and myricetin was further studied by electron spin resonance spectroscopy (ESR). Whereas quercetin produced a characteristic DMPO-OH radical, it was not detected below a pH of 9. However, the addition of iron allowed the signal to be detected at a pH as low as 8.0. On the other hand, myricetin autooxidation yielded a semiquinone signal which upon the addition of iron, converted to a DMPO-OH signal detected at a pH of 7.5. In a microsome-NADPH system, quercetin produced an increase in oxygen utilization and with ESR, an ethanol-derived radical signal which could be completely suppressed by catalase indicating the dependence of the signal on hydrogen peroxide. These studies demonstrate that the extracellular production of active oxygen species by dietary flavonols is not likely to occur in vivo but the potential for intracellular redox cycling may have toxicologic significance.

Animals

The toxicity of flavonoids to guinea pig enterocytes.

Flavonoids, a group of compounds found primarily in vegetables and fruits, are generally believed to be beneficial to biological systems. Isolated guinea pig enterocytes were exposed to three of these compounds (kaempferol, quercetin, and myricetin) in concentrations of 50-450 microM. Toxicity was examined using trypan blue exclusion and lactic dehydrogenase (LDH) leakage. All three flavonoids produced cellular damage at 450 microM: compared with a control incubation, cellular viability was 12-60% lower and LDH leakage 28-41% greater after a 3-hr incubation. In addition, as assessed by trypan blue exclusion, quercetin and myricetin, both of which produce superoxide on autoxidation, appeared to be more toxic than kaempferol. These results suggest that dietary flavonoids may have the potential for producing intestinal injury.

Animals

Superoxide dismutase: its role in xenobiotic detoxification.

Since the discovery of superoxide dismutase in 1969, the role of this enzyme in modulating cellular toxicity of superoxide has been well established. Experimentally, cellular damage from compounds or exposures which produce superoxide extracellularly can be prevented or modified by pretreating a cell or organ system with SOD. Likewise, induction of intracellular SOD by exposing the cell system to various types of nonlethal stress will impart resistance or tolerance to further exposures to oxidant and nonoxidant stresses which would normally be toxic. The differences in intracellular SOD activity based on species, age, and organ variability can have a major impact on the interpretation of toxicology data, particularly extrapolation to human toxicology. An awareness of the importance of SOD to the toxicity of xenobiotics which produce superoxide, either directly or indirectly, will enable those conducting toxicology studies to better understand and interpret their results.

Animals

Catalase: its role in xenobiotic detoxification.

Catalase activity is found primarily in peroxisomes although in some species and in some organ systems, cytosolic catalase also may be involved in intracellular oxidant stress protection. Toxicology studies with repeat exposures to xenobiotics producing hydrogen peroxide either directly or indirectly generally indicate that the organisms develop resistance to the toxin (adaptation). This adaptation would result from induction of catalase activity in most target organs. The induction of hepatic peroxisomes accompanied by less than compensatory increase in catalase activity is now recognized as suggesting a potential for hepatotoxic and hepatocarcinogenic effects. Although these effects seem to also require mobilization of fatty acids, it is not clear if such mobilization is an absolute requirement. As would be expected, there are great differences among species in catalase activity thus making animal-human extrapolations difficult. Finally, with the exception of premature and neonatal animals, age-related variations in catalase activity do not seem to be large enough to have toxicological relevance. However, in old animals, their apparent inability to replace lost catalase activity after repeated stress may have major significance in explaining observed young-old differences in toxicity resulting from oxidant stress.

Aging

Some analysis strategies for three-period changeover designs with two treatments.

Alternative analysis strategies for the three-period crossover design with two treatments are discussed in this paper. One analysis strategy involves a parametric model that incorporates the effects of interest. To implement this method, one usually assumes that the covariance structure for the data has the sphericity, or circularity, property. Alternative approaches that do not require this assumption are described. They are based on the parametric and non-parametric analysis of appropriate within-subject linear functions of the data. The advantage of these methods is that one only needs the assumption that the resulting linear functions for the respective subjects are independent and have a common distribution. The parametric approach also requires normality of the resulting within-subject linear functions for small sample situations. An extension of the non-parametric method is considered for cases in which the treatment sequences are randomly assigned within strata. The various methods are illustrated for a three-period crossover design involving two strata with randomly assigned treatment sequences of the form A:B:A and B:A:B.

Animals