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N Haugaard

Publications and source records attributed to N Haugaard.

At least 37 records · Page 2Linked to original sources

Partial outlet obstruction of the rabbit bladder results in changes in the mitochondrial genetic system.

In the rabbit, partial outlet obstruction of the urinary bladder results in significant changes in the physiology, cellular structure, and cellular metabolism of that organ. One of the most striking changes observed is a 50% decrease in oxidative metabolism. Here we investigate whether the function of the mitochondrial (mt) genetic system is altered in rabbit bladder tissue following partial outlet obstruction. Southern analyses of total DNA prepared from bladder tissue excised as a function of time after initiation of partial outlet obstruction showed that the relative number of copies of the mt genome decreases as much as 10-fold during the first 7 d after obstruction, and that this attenuated mt genome copy number is maintained until at least 14 d post-obstruction. Northern analyses, in contrast, showed that mt COII and cytochrome b transcript levels initially decrease but recover to control levels by about 5 d after obstruction; that level is maintained through 14 d post-obstruction. Enzymatic analysis of cytochrome oxidase and NADH cytochrome c reductase activities in obstructed bladder tissue gave results which paralleled the pattern in the mt RNA analyses. Surprisingly, transcript levels for the mt-related nuclear COIV gene rapidly decreased to about 50% of control levels following obstruction and remained there until 14 d post-obstruction. These results indicate that partial outlet obstruction of the rabbit bladder leads to significant changes in the status and expression of the mt genetic system in bladder tissue.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Comparative biochemical characteristics of the cat and rabbit urinary bladder.

The cat and the rabbit are two of the most popular models for the study of lower urinary bladder function. The cat has been used extensively for in vivo studies of spinal and supra-spinal micturition reflexes. In contrast, the rabbit has been used extensively for the in vitro study of bladder function. Although the cat and rabbit bladders are approximately the same mass, the cat bladder can generate approximately 6 times the intravesical pressure than the rabbit bladder at the same volume (in vitro response to field stimulation). In order to determine if the increased pressure generation is related to increased cellular energetics, we compared the intracellular concentrations of ATP and creatine phosphate (CP), and the enzyme activities of three enzymes which have important functions in cellular energetics: creatine kinase, citrate synthase, and malic dehydrogenase between the cat and rabbit urinary bladder. The results can be summarized as follows: (1) The bladder weight of the cat and rabbit are similar. (2) The isolated cat bladder can generate approximately 6 times the intravesical pressure of the isolated rabbit bladder. (3) The ATP and CP concentrations of the rabbit are significantly greater than the concentrations in the cat bladder. (4) The hydroxyproline concentration is significantly greater in the cat than the rabbit. (5) The maximum activities of creatine kinase, citrate synthase, and malic dehydrogenase are significantly lower in the cat than the rabbit. In general, it is clear that the ability of the cat to generate high intravesical pressures is not correlated with increased tissue high energy phosphate concentrations, or high enzymatic activities of three specific cytosolic or mitochondrial enzymes.

Adenosine Triphosphate↗

Effect of partial outlet obstruction on choline acetyltransferase activity in the rat and rabbit.

Partial outlet obstruction of the rabbit bladder induces a rapid and significant increase in bladder mass. This increase in mass is associated with a variety of specific contractile dysfunctions, characterized by a marked decrease in the response to field stimulation (acting through the release of neurogenic transmitters). There is histological evidence indicating that the decrease in the contractile response of isolated strips of rabbit urinary bladder to field stimulation is associated with a degeneration of synaptic membranes within the bladder detrusor (neuropathy). In the current experiments, the effect of partial outlet obstruction in rabbit and rat urinary bladders on choline acetyltransferase activity (ChAT) were determined and correlated with both the level of bladder hypertrophy (increase in mass) and the contractile response to field stimulation. The results can be summarized as follows: In the rabbit, partial outlet obstruction induced a rapid 5-fold increase in bladder mass over the 7 day period of study. This increase in mass was associated with a decrease in the contractile response of isolated strips of bladder body and base to field stimulation and a decrease in ChAT activity. Interestingly, the rabbit bladder base showed a significantly higher ChAT activity than the bladder body, although the contractile response to muscarinic stimulation was significantly greater in the bladder body than in the base. In the rat, partial outlet obstruction induced a mild 2-fold increase in bladder mass.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effect of partial urinary outlet obstruction in the rabbit on the incorporation of adenine into adenine nucleotides in bladder smooth muscle.

Bladder outlet obstruction induces marked morphological, functional, and metabolic changes within the urinary bladder. Recent studies indicate that there is a close correlation between the contractile dysfunction induced by partial outlet obstruction and a marked decrease in mitochondrial oxidative activity of the hypertrophied bladder tissue. The current study investigates the effect of partial outlet obstruction on adenine metabolism within the bladder tissue. After transport into the cell, adenine becomes available as a substrate for adenine phosphoribosyl transferase (APRT), the enzyme that catalyses the non-mitochondrial conversion of adenine into AMP. Subsequently, AMP is phosphorylated to ADP, the phosphate acceptor in mitochondrial oxidative phosphorylation. The results of these studies demonstrate that partial outlet obstruction induces a significant increase in 14C-adenine uptake into the urinary bladder smooth muscle which in turn provides substrate for APRT and results in an increase in 14C-AMP synthesis. In contrast, the rate of incorporation of adenine into ATP+ADP was similar for both control and obstructed tissue. The activity of APRT was not significantly different in control and obstructed tissue.

Adenine↗

Effect of outlet obstruction on pyruvate metabolism of the rabbit urinary bladder.

Bladder function is dependent upon cellular metabolism of substrates and the adequate generation of high-energy phosphate compounds. Partial outlet obstruction induces a marked decrease in bladder function which is associated with a significant decrease in the oxidative metabolism of glucose. The current investigation was designed to determine whether the time course of the decrease in mitochondrial oxidation in the hypertrophied urinary bladder is similar to the time course of the contractile dysfunction observed. In these studies we determined: 1) the rate of 14C-pyruvate metabolism to 14CO2 in control and obstructed tissue (1, 3, 5 and 7 days), and 2) the mitochondrial enzymatic activities of malate dehydrogenase and citrate synthase. The results can be summarized as follows: 1) The rate of pyruvate metabolism decreases by over 50% within one day following partial outlet obstruction, and remains at this level for the seven day period of study. 2) Kinetic analysis demonstrates that the change in enzymatic activity is related to a decrease in Vmax; the Kd for pyruvate is similar for control and after all time periods of obstruction. 3) The enzymatic activity of malate dehydrogenase and citrate synthase is reduced by over 50% within one day following partial obstruction, and remains at this level throughout the 7 day study period. These metabolic results correlate in time and duration with the decreased ability of the bladder to empty following partial outlet obstruction.

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Effect of partial obstruction of the rabbit urinary bladder on malate dehydrogenase and citrate synthase activity.

Previous studies have demonstrated that partial outlet obstruction in rabbits induced a significant decrease in oxidative metabolism in urinary bladder smooth muscle. The current experiments were designed to determine whether the decreased oxidative metabolism of obstructed bladder tissue is associated with alterations in the activities of specific mitochondrial enzymes. The activities of two important enzymes in the tricarboxylic acid cycle, malate dehydrogenase and citrate synthase, were measured in samples of bladder body and base from normal bladders and in bladders from rabbits in which partial outlet obstruction had been produced seven days prior to the experiments. The results can be summarized as follows: malate dehydrogenase activity was similar in bladder body and base isolated from control rabbits; and decreased by approximately 40% in both segments of the bladder isolated from obstructed rabbits. In contrast to malate dehydrogenase, citrate synthase activity was significantly higher in the bladder body than in the base of normal rabbits. Outlet obstruction caused about a 50% decrease in activity of this enzyme in the bladder body, but had no significant effect on citrate synthase activity of the bladder base. These findings demonstrate that the deficiency in bladder function following partial outlet obstruction is associated with a marked decrease in the activities of two essential enzymes in oxidative metabolism: malate dehydrogenase and citrate synthase. This decrease in enzyme activity is consistent with the previously observed decrease in oxidative metabolism and would be expected to lead to an inability of the tissue to supply sufficient metabolic energy for proper contractile function.

Animals↗

Effect of ryanodine on mitochondrial respiration.

Ryanodine is a pharmacological agent that stimulates calcium leakage into the cytoplasm resulting in an increase in tension. In skeletal muscle, ryanodine acts primarily on the sarcoplasmic reticulum whereas in smooth muscle, the sites of action are less clear. Visually, the increase in tension is slow and the time course can be mimicked by mitochondrial poisoning and the resultant leak of mitochondrial calcium into the cytoplasm. Although it has been reported that ryanodine has no effect on calcium flow into or from mitochondria, the effect of ryanodine on mitochondrial oxidative function was not studied. In the current investigation direct measurements of the effect of ryanodine on mitochondrial oxygen utilization were made. The results demonstrate that ryanodine, even at high concentrations, has no effect (stimulatory or inhibitory) on mitochondrial oxidation.

Animals↗

Creatine kinase activity in normal and hypertrophied rabbit urinary bladder tissue (following partial outlet obstruction).

The urinary bladder depends on intracellular ATP to support a number of essential intracellular processes including contraction. The concentration of ATP is maintained by mitochondrial oxidative phosphorylation, cytosolic glycolysis and the cytosolic activity of creatine kinase, the enzyme that catalysis the rapid transfer of a phosphate from creatine phosphate (CP) to ADP resulting in the formation of ATP. Prior studies in this lab and others have demonstrated that mitochondrial respiration is significantly lower in hypertrophied bladder tissue (induced by partial outlet obstruction of the white New Zealand Rabbit). In addition to decreased mitochondrial respiration, there are significant increases in glycolysis and lactic acid formation in the hypertrophied tissue. In view of the increased glycolysis and decreased mitochondrial function in the hypertrophied tissue, and the importance in creatine kinase in maintaining cytosolic levels of ATP, the current study was designed to determine if outlet obstruction induces any changes in the activity of creatine kinase. The following is a summary of the results: 1) The bladder mass increased from 2.2 +/- 0.2 gm to 11.5 +/- 1.6 gm at 7 days following outlet obstruction. 2) The intracellular concentrations of both ATP and CP were significantly reduced in the bladder tissue following 7 days of obstruction. 3) The percent of protein (per tissue mass) was significantly lower in the obstructed bladders, although the percent of soluble protein was similar. 4) Creatine kinase activity of control bladders showed linear kinetics with a Vmax = 1120 nmoles/mg protein/4 min and Km = 147 microM CP.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Triphosphate↗

Role of substrates in the maintenance of contractility of the rabbit urinary bladder.

Recent studies have shown that muscarinic stimulation causes an increase in the breakdown of glucose and glycogen leading to an increase in lactate and CO2 production and a decrease in the ratio of NADH/NAD. Similar studies using palmitate as substrate showed that bethanechol did not change the rate of palmitate oxidation. Using both isolated strips of rabbit bladder dome, and the rabbit in vitro whole-bladder model, the present study compares the ability of glucose, pyruvate, palmitate, succinate and malate to support contraction and correlates the results with the intracellular concentration of high-energy phosphates. The results can be summarized as follows. In the absence of substrate, the peak response of muscle strips to field stimulation (32 Hz, 80 V, 1 ms) decreased progressively with time to 85% of the initial response at 60 min and 72% at 160 min. In contrast, the plateau phase of the response decreased to 45 and 23% of the initial response at 60 and 160 min, respectively. When glucose was present in the incubation medium, the peak and plateau tensions were 86 and 73% of the initial values at 160 min. Similar experiments with pyruvate as substrate showed that at 160 min both peak and plateau were elevated above initial values (peak = 119%; plateau = 123%). In the presence of palmitate, succinate or malate, the peak and plateau tensions decreased with time at a similar rate as in the absence of substrate. The reduction in tissue content of pre-formed high energy phosphates was similar for zero substrate and when palmitate, succinate or malate were present in the bath.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Triphosphate↗

Creatine kinase activity of urinary bladder and skeletal muscle from control and streptozotocin-diabetic rats.

The urinary bladder depends on intracellular ATP for the support of a number of essential intracellular processes including contraction. The concentration of ATP is maintained constant primarily via the rapid transfer of a phosphate from creatine phosphate (CP) to ADP catalyzed by the enzyme creatine kinase (CK). Since muscular pathologies associated with diabetes are in part related to intracellular alterations in metabolism, we have characterized the CK activity in both skeletal muscle and urinary bladder from control and streptozotocin-diabetic rats. The following is a summary of the results: 1) Bladder tissue from control rats showed linear kinetics with a Vmax = 390 nmoles/mg protein/min, and a Km = 275 microM. 2) Urinary bladder tissue isolated from diabetic rats displayed biphasic kinetics with Vmax = 65 and 324 nmoles/mg protein/min, and Km's = 10 microM and 190 microM respectively. 3) Skeletal muscle isolated from control rats showed linear kinetics with an approximate Vmax of 800 nmoles/mg protein/min and a Km of 280 microM CP. 4) Homogenates of skeletal muscle from diabetic rats showed complex kinetics not separable into distinct component forms. 5) The Km for ADP for both skeletal muscle and bladder was approximately 10 microM. These studies demonstrate that whereas bladders isolated from both control and diabetic rats possess a low-affinity isomer(s) of CK with similar maximum enzymatic activity, there is a high affinity isomer present within the urinary bladder muscle of diabetic rats that is not present in bladder tissue isolated from control rats. Skeletal muscle isolated from both diabetic and control rats exhibited a maximal activity 2 to 3 times higher than that of the bladder.

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Adverse effects of hyperbaric oxygen on [3H]uridine incorporation and uridine kinase activity in B104 rat neuroblastoma cells.

The effects of hyperbaric oxygen on uracil nucleotide metabolism in B104 rat neuroblastoma cells were investigated. Cells exposed to 10 atm O2 for 4 h incorporated markedly less [3H]uridine into the acid-soluble fraction and RNA compared to cells kept in ambient air. The acid-soluble fraction of the oxygen-treated cells contained less total [3H]uridine phosphates ([3H]UMP + [3H]UDP + [3H]UTP) than air-treated cells. Uridine kinase activity, assayed in cytosolic extracts from cells exposed to 10 atm O2 for 4 h, was decreased by 46% compared to the air controls. The reduced enzyme activity which appears to account for the depressed [3H]uridine incorporation, may contribute to the lethal effects of oxygen in these cells.

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Stimulation of the phosphorylation of uridine in skeletal muscle by insulin and vanadate.

The action of insulin and sodium vanadate on the phosphorylation of uridine by skeletal muscle was studied in vitro. Insulin significantly increased the incorporation of 3H-uridine into uracil nucleotides by pieces of rat diaphragm incubated for 15 min in a phosphate-buffered medium. This action of the hormone was exceptionally consistent when MgATP was added to the incubation medium. In experiments in which pieces of psoas muscle were incubated in TRIS buffer in the presence and absence of insulin, the hormone caused a significant activation of uridine kinase measured in cytosolic extracts of the incubated tissue. In experiments with rat diaphragm similar to those with insulin, the vanadate ion caused a significant increase in phosphorylation of uridine. The results of these experiments provide preliminary support for the proposal that uracil nucleotide metabolism is regulated by insulin and that insulin activates uridine kinase, the limiting enzyme in the synthesis of uracil nucleotides from uridine by the salvage pathway.

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The functional effects of long-term outlet obstruction on the rabbit urinary bladder.

The current study investigated the relationship between duration of outlet obstruction, magnitude of bladder mass, and functional dysfunction on the rabbit urinary bladder. Following the production of obstruction with the "cuff model", bladder wet weight increased to twice control weight within one week, and then slowly to four times control weight by one month, and remained at this level for the six month period. Bladder capacity decreased significantly by one week but returned to control volumes by one month. The in vitro ability of the bladder to empty in response to field stimulation and bethanechol decreased significantly in the one and two week obstructed bladders and remained decreased for six months. One of the major observations of this study was the relatively large variation of bladder weight and histology observed for the one to six month obstructed rabbits. Although the bladders with mild mass increase (less than 3 gm./kg. body weight) had normal distribution of urothelium and muscular elements, the bladders with moderate mass increase (3 to 6 gm./kg.) had thick extrinsic connective tissue deposits and the bladders with severe mass increase (greater than 6 gm./kg.) had thick extrinsic and intrinsic connective tissue deposits and muscular degeneration. The percentage occurrence of mild, moderate and severe mass increase was approximately the same (58%, 30% and 12%, respectively) for the one, three, and six month groups. The bladders with mild mass increase had normal bladder capacities and increased pressure responses to field stimulation and bethanechol. The bladders with moderate-to-severe mass increase showed enlarged bladder capacities and had progressively smaller pressure responses. As the magnitude of bladder mass increased, the ability of the bladder to empty in response to field stimulation and bethanechol decreased proportionally. We conclude that the functional impairment of the bladder is related to the amount of extrinsic and intrinsic connective tissue and the degree of muscle degeneration.

Adenosine Triphosphate↗

Effects of outlet obstruction on glucose metabolism of the rabbit urinary bladder.

Bladder outlet obstruction has been shown to cause detrusor contractile dysfunction. To determine if alterations in bladder metabolism may in part underlie these functional defects, we investigated the effects of mild outlet obstruction on the glucose metabolism of the rabbit urinary bladder. Mild outlet obstruction was created in mature male rabbits by the surgical placement of a silicon sleeve around the bladder neck. Two weeks after surgery, the in vitro ability of the obstructed bladder tissues to metabolize glucose was compared to that of the controls. The results can be summarized as follows: 1) The bladder wet weight increased 2.3-fold following two weeks of obstruction. 2) Obstructed bladder tissues had a reduced glucose consumption as compared to the controls. 3) CO2 generation was significantly reduced by 31% in obstructed bladder tissues whereas lactate formation increased significantly by 22%. 4) Tissue concentrations of ATP, creatine phosphate, and glycogen before incubation showed no significant differences between control and obstructed bladder tissues. In summary, bladder tissues following two weeks obstruction showed a decrease in aerobic metabolism and an increase in anaerobic metabolism. Previous studies have indicated that the ability of the bladder to maintain a contraction and empty may be directly related to aerobic metabolism. Therefore, the decrease in aerobic metabolism (even in the presence of increased anaerobic metabolism) may in part explain the decreased ability of the obstructed bladder to empty.

Adenosine Triphosphate↗

Effect of chronic ischemia on glucose metabolism of rabbit urinary bladder.

The effect of chronic ischemia on glucose metabolism of the rabbit urinary bladder was studied. Unilateral ischemia was produced by ligation of one of the two vesical arteries which supply the rabbit bladder. Two weeks after the operation, the in vitro glucose metabolism of normal bladder tissue was compared to the glucose metabolism of tissue isolated from both the ischemic side and contralateral (non-ischemic) side of the ischemic bladder. The results can be summarized as follows: 1) ischemic and contralateral side bladder tissues contained less glycogen than normal; 2) glucose utilization was higher in the ischemic and contralateral side tissues; 3) ischemic and contralateral side tissues incorporated more glucose into lactate and produced more total lactate than normal tissues; 4) whereas contralateral side tissue produced more 14CO2 than ischemic side tissue, the ability of normal bladder tissue to form 14CO2 is significantly higher than both ischemic and contralateral side tissues; 5) the degree of reduced CO2 production correlated well with previous studies on the contractile response of smooth muscle strips isolated from the ischemic and contralateral sides, and the reduced functional ability of the in vitro whole bladder to empty; 6) histologically, smooth muscle degeneration and necrosis is only present on the ischemic side of the bladder although the contralateral side shows signs of generalized degeneration and edema. In general, we conclude that although only the ischemic tissue demonstrated major smooth muscle degeneration and necrosis, unilateral ischemia resulted in marked alterations in glucose metabolism on both the ischemic and contralateral sides.

Animals↗

The functional effect of mild outlet obstruction on the rabbit urinary bladder.

Bladder outlet obstruction has been the subject of numerous studies. In previous studies on severe obstruction, the initial response of the bladder has been to produce an acute overdistension of the bladder resulting in severe tissue damage and functional disorders. This is quite different from the slow onset of outlet obstruction seen in association with benign prostatic hypertrophy (BPH). The present study describes the functional effect of mild outlet obstruction created in a rabbit model, and compares it to a previously described model of severe obstruction. Mild bladder outlet obstruction was created by placing a silicon sleeve (inner circumference 30 mm.) around the bladder neck of mature male NZW rabbits. Individual groups of rabbits were studied at one, seven, and 14 days following the creation of the outlet obstruction. The following studies were performed on each group of rabbits: in vivo and in vitro cystometry, field stimulation and cholinergic stimulation using the in vitro whole bladder model. In addition, the tissue concentration of ATP (adenosine triphosphate) and CP (creatine phosphate) and the muscarinic receptor density were determined. The obstructed bladders showed no significant cystometric difference at one day, but revealed a marked decrease of compliance and capacity at one and two weeks. Unlike the response to severe outlet obstruction, there was no initial acute overdistension of the bladder wall. Although the ability of the obstructed bladders to generate intravesical pressure in response to both field stimulation and bethanechol did not decrease, the ability of both forms of stimulation to empty the obstructed bladders was markedly impaired. The response to field stimulation was reduced to a significantly greater extent than the response to bethanechol, indicating neuronal damage. The muscarinic receptor number per bladder was increased above control at all time periods. The intracellular concentration of ATP and CP in the obstructed bladders was similar to that of control. Our present model of mild obstruction was not accompanied by a massive increase in tissue mass nor was there an overdistension of the detrusor; thus, this model would be a more suitable model for the study of clinical outlet obstruction.

Adenosine Triphosphate↗

Effect of bethanechol on glycolysis and high energy phosphate metabolism of the rabbit urinary bladder.

The urinary bladder, similar to other smooth muscles, utilizes glucose as one of its primary sources of metabolic energy. We have studied the effect of bethanechol on both glycolysis and high energy phosphate metabolism. The results can be summarized as follows: bethanechol administration in vitro stimulates a 30% decrease in intracellular glycogen, a 100% increase in lactic acid production, and an 80% increase in CO2 generation. Although there was a rapid and sustained decrease in the intracellular concentration of creatine phosphate, there was only a minor decrease in the intracellular concentration of ATP. There were no changes in adenine uptake or de novo ATP synthesis.

Adenine↗