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Pulmonary artery occlusion and lung collapse depletes rabbit lung adenosine triphosphate.

BACKGROUND: Although the bronchial circulation has traditionally been thought to provide adequate blood flow for the lung when the pulmonary artery is obstructed, recent studies have demonstrated that pulmonary artery occlusion results in lung injury. We hypothesized that after pulmonary artery occlusion, aerobic lung metabolic function is altered. We studied the changes in the concentration of adenine nucleotides as markers of injury in the intact rabbit lung after pulmonary artery occlusion in the presence and absence of pneumothorax. METHODS: A thoracotomy was performed on the rabbits, and on occlusive microvascular clamp was placed on the left pulmonary artery. The rabbit lungs were studied after 24 h of in vivo left pulmonary artery occlusion (n = 5), 24 h of left pulmonary artery occlusion with the lung collapsed by pneumothorax (n = 6), or 24 h of lung collapse alone (n = 5). RESULTS: Adenosine triphosphate concentrations of the occluded left lung decreased dramatically at 24 h in the group with pulmonary artery occlusion and collapse (adenosine triphosphate concentration 196 +/- 32 ng/g for the left lung and 1,479 +/- 197 ng/g for the right lung; P < 0.001). There were no differences between the lungs in the rabbits undergoing occlusion alone or collapse alone. CONCLUSIONS: After pulmonary artery occlusion or lung collapse, adenine nucleotides are preserved if ventilation is continued. The increased permeability of rabbit lungs after 24 h of left pulmonary artery occlusion alone cannot be explained on the basis of depletion of high-energy phosphates. In the absence of ventilation due to lung collapse, pulmonary artery occlusion results in decreased adenosine triphosphate concentrations, demonstrating that the residual circulations (bronchial and pulmonary venous flow) are inadequate to support normal lung aerobic metabolism.

Adenosine Triphosphate↗

Efficacy of lateral ventricular injection of epinephrine, cyproheptadine, or adenosine triphosphate on feed intake in thiamin-deficient turkeys.

In previous work, thiamin deficiency (TD) resulted in decreased brain levels of adenosine triphosphate (ATP) and epinephrine, but serotonin (5-HT) was increased in the turkey. The goal of the present study was to determine whether the introduction of calculated levels of epinephrine, ATP, or cyproheptadine into the lateral ventricle could affect feed intake of TD birds. Adenosine triphosphate, epinephrine, and cyproheptadine (5-HT antagonist) were injected into the lateral ventricle of TD and control birds. These injections did not alter feed intake in the control birds. Cyproheptadine and ATP decreased feed intake in the 1st h in the TD birds as compared with sham-injected TD birds (P less than .05), but epinephrine had no effect. The results indicate replacement or inhibition of a single altered neurochemical does not increase short-term feed intake in TD birds.

Adenosine Triphosphate↗

[Adenosine triphosphate loading thallium-201 myocardial scintigraphy: optimal dose and diagnostic accuracy].

Adenosine triphosphate (ATP) is an alternative to dipyridamole or adenosine in thallium-201 myocardial scintigraphy. However, the optimal dose of ATP has not been determined. A Doppler guide wire study showed the coronary flow velocity at a dose of 0.15 mg/kg of ATP was equal or higher than that at 0.14 mg/kg of adenosine or 0.56 mg/kg of dipyridamole. ATP was given intravenously to 67 patients with coronary artery disease at 0.15 mg/kg/min for 6 min. Thallium-201 was injected at 3 min, followed by immediate and delayed (3 hrs) tomographic imaging. There was no serious side effect during examination, although chest pain (26%), dyspnea (17%), and flushing (33%) were common. The sensitivity and specificity to detect coronary artery disease were 98 and 100%, respectively. The sensitivity to detect left anterior descending artery, left circumflex artery, and right coronary artery lesions was 94, 59 and 77%, respectively. ATP loading thallium-201 scintigraphy provides an accurate diagnosis of coronary artery disease. The optimal dose of ATP is 0.15 mg/kg/min for 6 min.

Adenosine Triphosphate↗

Selective enhancement of intratumoral blood flow in malignant gliomas using intra-arterial adenosine triphosphate.

The effect of intravenous and intracarotid administration of adenosine triphosphate (ATP) on the regional blood flow of glioma patients has been examined by means of positron emission tomography. Intracarotid administration of ATP at a dose of 0.52 to 1.3 micrograms/kg/min selectively increased the blood flow in the tumor by 26.2% +/- 10.5% (mean +/- standard deviation). The side effects observed were tolerable. In contrast, intravenous administration of ATP failed to increase tumor blood flow. It is suggested that intracarotid administration of ATP may serve to selectively enhance the delivery of anticancer agents to malignant brain tumors.

Adenosine Triphosphate↗

Energy metabolism in fracture healing. Measurement of adenosine triphosphate in callus to monitor progress.

We measured the adenosine triphosphate (ATP) content of callus at various intervals during healing in 78 fractured tibiae in 10- to 12-week-old rabbits. The results, compared with the level in normal tissues, showed a high rate of energy metabolism in the early phase of fracture healing, which persisted until the callus was corticalised and remodelling had started. The ATP content could provide a more sensitive index to monitor fracture healing in animal studies. Our findings lend support to the need for nutritional supplements for patients with multiple fractures.

Adenosine Triphosphate↗

A unique reactive residue in adenosine triphosphate phosphoribosyltransferase sensitive to five conformation and dissociation states.

Adenosine triphosphate phosphoribosyltransferase is inactivated rapidly by bulky alkylating reagents in a biphasic reaction. The initial inactivation rate is dependent upon an optimal concentration of histidine and is more rapid at low enzyme concentrations and low ionic strength. A histidine-free dimer form of the enzyme is the proposed reactive species. The dimer is shown by ultraviolet difference spectroscopy to bind histidine about 1 order of magnitude more weakly than the hexameric form of the enzyme. Alkylated enzyme is similar to native enzyme in dissociation and histidine-binding properties. Native enzyme must exist at significant levels in at least five different conformational and dissociative states to account for the inactivation behavior.

Acetamides↗

Detection of bacteriuria by luciferase assay of adenosine triphosphate.

A selective method for distinguishing bacterial and nonbacterial adenosine triphosphate (ATP) in clinical bacteriological specimens was studied. The method involved incubation of samples with the detergent Triton X-100 and the ATP-hydrolyzing enzyme apyrase. The incubation selectively destroyed ATP in suspensions of various human cells while not affecting the ATP content in microbial cells. ATP remaining in the sample after incubation was extracted in boiling buffer and assayed by the firefly luciferase assay. Application of the method to 469 clinical urine specimens showed that the ATP level after treatment with Triton/apyrase was correlated to bacterial counts and that the sensitivity of the assay was sufficient for the detection of 10(5) bacteria/ml. The ATP levels per bacterial cell remaining in the urine specimen after treatment with Triton/apyrase were close to values observed in laboratory-grown cultures. The specificity and sensitivity of the luciferase assay for the detection of urinary bacteria and its possible use as a bacteriuria screening method are discussed.

Adenosine Triphosphate↗

Effect of gossypol on boar spermatozoal adenosine triphosphate metabolism.

The effect of gossypol on boar spermatozoal adenosine triphosphate (ATP) metabolism was investigated. Gossypol has little effect on the activities of the total spermatozoal ATPase, the spermatozoal flagellar ATPase, and the mitochondrial fragment ATPase. The membrane ATPase, being exceedingly low, has not been considered for its susceptibility toward gossypol. Gossypol uncouples spermatozoal oxidative phosphorylation. A biphasic response (stimulation at low concentration and inhibition at high concentration) has been noticed in anaerobic lactate production and hypotonically treated spermatozoal mitochondrial ATPase activity. The ATP content, either under aerobic or anaerobic condition was reduced by gossypol with the reduction threshold of ATP more sensitive in the latter. The reduction of ATP follows two different reaction kinetics in which it is stabilized at moderate gossypol concentrations but progresses along with time at high concentrations. Since the drop in motility is more sensitive than the drop in ATP content and since the flagellar ATPase is not significantly inhibited by gossypol, a motility controlling component that is more sensitive to gossypol antimotility inhibition is proposed.

Adenosine Triphosphatases↗

Ca-releasing action of beta, gamma-methylene adenosine triphosphate on fragmented sarcoplasmic reticulum.

beta,gamma-Methylene adenosine triphosphate (AMPOPCP) has two effects on fragmented sarcoplasmic reticulum (FSR), i.e., inhibition of the rate of Ca uptake and the induction of Ca release from FSR filled with Ca. The Ca release brought about by AMPOPCP has many features in common with the mechanism of Ca-induced Ca release: i) it is inhibited by 10 mM procaine; ii) the amount of Ca release increases with increase in the extent of saturation of FSR with Ca; iii) increase of the Ca concentration in the extent of saturation of FSR with Ca; iii) increase of the Ca concentration in the medium facilitates the release of Ca. However, no facilitation of Ca release upon decrease of Mg concentration in the medium is observable. AMPOPCP and caffeine potentiate each other remarkably in their Ca-releasing action, irrespective of the kind of substrate. From the mode of action of AMPOPCP on the rate of Ca uptake, the amount of phosphorylated intermediate (EP), and the effect on Sr release, it is suggested that the state of the FSR-ATP complex is crucial for Ca-induced Ca release.

Adenosine Triphosphate↗

Adenosine triphosphate levels in human plasma.

OBJECTIVE: To quantify extracellular adenosine triphosphate (ATP) levels in human platelet-poor plasma as a potential source of synovial fluid ATP, and to determine variables affecting these levels. METHODS: ATP was measured by the specific luciferase method; platelet beta thromboglobulin was determined by radioimmunoassay. The effects of fasting, feeding, venipuncture, and muscular exercise were determined by serial venipuncture in healthy subjects. Diurnal variation was determined by serial sampling through indwelling venous catheters in 3 healthy subjects and 3 women with knee osteoarthritis. RESULTS: Unlike beta thromboglobulin levels, which did not change, an invariable marked (mean 58%) fall in plasma ATP was noted 15 min after the first venipuncture, whether the subject had eaten or not. Indomethacin treatment had no effect on this phenomenon. Exercise of forearm muscles had no effect on plasma ATP. The drop in plasma ATP occurred between 3 and 15 min, with recovery at about 90 min. A diurnal variation in plasma ATP was found with trough levels at noon and at night during sleep. CONCLUSION: The predictable sharp fall in plasma ATP levels induced by venipuncture and the clear diurnal variation suggest that plasma contains ATP independent of platelet dense body release and endothelial cell needle trauma. Synovial plasma flow at peak (600 nM) levels is insufficient to provide more than one-third of the extracellular ATP needed to generate inorganic pyrophosphate in articular tissues.

Adenosine Triphosphate↗

Cardiovascular effects of hypotension induced by adenosine triphosphate and sodium nitroprusside on dogs with denervated hearts.

Adenosine triphosphate (ATP) and sodium nitroprusside (SNP) are administered to patients to induce and control hypotension during anesthesia. SNP is authorized for clinical use in USA and UK, and ATP is clinically used in other countries such as Japan. We investigated how these two drugs act on the cardiovascular systems of 20 dogs whose hearts had been denervated by a procedure we had devised. ATP (10 dogs) or SNP (10 dogs) was administered to reduce mean arterial pressure by 30% to 70% of control. Before, during and after induced hypotension, we measured major cardiovascular parameters. Hypotension induced by ATP was accompanied by significant decreases in mean pulmonary arterial pressure (p less than 0.001), central venous pressure (p less than 0.001), left ventricular end-diastolic pressure (p less than 0.001), total peripheral resistance (p less than 0.001), rate pressure product (p less than 0.001), total body oxygen consumption (p less than 0.05), and heart rate (p less than 0.001); all these variables returned normal within 30 min after ATP was stopped. Cardiac output did not change. During hypotension produced by SNP similar decreases were observed in mean pulmonary arterial pressure (p less than 0.01), central venous pressure (p less than 0.001), left ventricular end-diastolic pressure (p less than 0.01), total peripheral resistance (p less than 0.001), rate pressure product (p less than 0.001), and oxygen content difference between arterial and mixed venous blood (p less than 0.05), while heart rate (p less than 0.001) and cardiac output (p less than 0.05) were increased. Recoveries of heart rate and left ventricular end-diastolic pressure were not shown within 60 min after SNP had been stopped. Both ATP and SNP should act on the pacemaker tissue of the heart.

Adenosine Triphosphate↗

Halothane attenuates endothelium-dependent pulmonary vasorelaxant response to lemakalim, an adenosine triphosphate (ATP)-sensitive potassium channel agonist.

BACKGROUND: Lemakalim, an adenosine triphosphate (ATP)-sensitive potassium (K+(ATP)) channel agonist, causes profound pulmonary vasodilation in conscious dogs, which is attenuated during halothane anesthesia. The goal of the present study was to investigate the mechanism responsible for this attenuating effect of halothane. METHODS: Isolated canine pulmonary arterial rings were suspended for isometric tension recording in 25 ml organ baths. Rings with and without endothelium were contracted to 50% of their maximal response to phenylephrine, followed by the cumulative administration of lemakalim with or without exposure to halothane (0.5-1.5 minimum alveolar concentration [MAC] in dogs). Lemakalim dose-response curves were also generated in rings pretreated with the nitric oxide synthase inhibitor, Nw-nitro-L-arginine methyl ester (L-NAME); the cyclooxygenase inhibitor, indomethacin; or the K+(ATP) channel antagonist, glybenclamide. RESULTS: Compared with intact rings, the pulmonary vasorelaxant response to lemakalim was attenuated (P < 0.05) in endothelium-denuded rings. Halothane at 0.5 MAC had no effect on the vasorelaxant response to lemakalim. Halothane at 1 MAC attenuated (P < 0.05) the vasorelaxant response to lemakalim in intact rings, but not in endothelium-denuded rings. Halothane at 1.5 MAC attenuated (P < 0.05) the vasorelaxant response to lemakalim in both intact and endothelium-denuded rings. In endothelium-intact rings, indomethacin attenuated (P < 0.05) the vasorelaxant response to lemakalim, whereas L-NAME had no effect. Further, indomethacin, but not L-NAME, abolished the endothelium-dependent, halothane-induced attenuation of the lemakalim vasorelaxation response. Glybenclamide markedly attenuated (P < 0.05) lemakalim vasorelaxation at lemakalim doses less than 10(-6) M. CONCLUSIONS: Lemakalim-induced pulmonary vasorelaxation involves an endothelium-dependent and vascular smooth muscle component. Further, halothane attenuates the endothelium-dependent pulmonary vasorelaxant response to lemakalim via an inhibitory effect on vasodilator metabolites of the cyclooxygenase pathway.

Adenosine Triphosphate↗

Expression of adenosine triphosphate P2X3 receptors in rat molar pulp and trigeminal ganglia.

OBJECTIVE: The objective of this study was to investigate the expression of adenosine triphosphate P2X3 receptor subunits in rat molar pulp and trigeminal ganglia and their relationship to substance P. STUDY DESIGN: Rat molar pulp and trigeminal ganglia were fixed and sectioned. Double immunostaining with anti-P2X3 and anti-substance P were used to localize P2X3 and substance P expression simultaneously with different stains. RESULTS: P2X3 immunoreactivity (IR) fibers were present in root and coronal pulp. P2X3-IR fibers formed subodontoblastic plexus and advanced into the predentin and dentin. P2X3-IR neurons were localized in small and medium-sized cells in trigeminal ganglia. Colocalization of P2X3 and substance P was not found in either molar pulp or trigeminal ganglia. CONCLUSION: The results of this study indicated that adenosine triphosphate in pulp tissues may stimulate a subpopulation of non-substance P trigeminal afferent fibers through activation of P2X3 receptors.

Adenosine Triphosphate↗

Purine-enriched asanguineous cardioplegia retards adenosine triphosphate degradation during ischemia and improves postischemic ventricular function.

Myocardial dysfunction after induced ischemic arrest is an important problem in cardiac surgery. Adenosine-5'-triphosphate content in myocardial tissue remains depressed for days after ischemia, perhaps because of reperfusion washout of diffusable purine substrates. Left ventricular function is also depressed after ischemia, but its relationship to absolute tissue adenosine triphosphate content is unclear. We tested the hypothesis that arresting hearts with a cardioplegic solution containing adenosine, hypoxanthine, and ribose would result in improved tissue adenosine triphosphate content and left ventricular function after 1 hour of normothermic global ischemia in dogs supported by cardiopulmonary bypass. Animals with ischemic arrest initiated with a crystalloid cardioplegic solution containing adenosine 100 mumol/L, hypoxanthine 100 mumol/L, and ribose 2 mmol/L demonstrated significant improvement (p less than 0.05) during postischemic reperfusion. A significant correlation (p less than 0.05) existed between myocardial adenosine triphosphate content and the recovery of left ventricular function. These experiments demonstrate that an asanguineous cardioplegic solution containing adenosine, hypoxanthine, and ribose maintains myocardial adenosine triphosphate content during ischemia and reperfusion and enhances functional recovery during the postischemic period.

Adenosine↗

[Initial experience with adenosine triphosphate in supraventricular arrhythmia].

The author presents data from the literature pertaining to the possible use of adenine nucleosides in recent years. The main action of adenosine or adenosine triphosphate is focused above all on influencing supraventricular tachycardia which developed as a result of the reentry mechanism. Based on his own observation, the author presents his initial experience with adenosine triphosphate (ATP, Spofa) in different indications: interference with supraventricular tachycardia with slim QRS complexes, interference of tachycardia with wide QRS complexes, termination of atrial flutter in digitalis intoxication and finally induction of an electrocardiographic tracing of latent ventricular preexcitation of the Wolf-Parkinson-White syndrome type.

Adenosine Triphosphate↗

The effect of adenosine triphosphate on sevoflurane requirements for minimum alveolar anesthetic concentration and minimum alveolar anesthetic concentration-awake.

UNLABELLED: We evaluated the effects of i.v. adenosine triphosphate (ATP) on sevoflurane minimum alveolar anesthetic concentration (MAC) and MAC-Awake. The study group included healthy patients 20-60 yr of age. The study groups for MAC-Awake determination included 49 patients who were scheduled for elective surgery. The study groups for MAC determination included 53 patients scheduled for elective surgery involving a skin incision. These patients were randomly assigned to two groups, an ATP group and a control group. The ATP group received 100 micrograms.kg-1.min-1 ATP i.v., and the control group received no medication. The ATP group and the control group were compared with regard to MAC-Awake (anesthetic concentration achieving 50% probability of eye opening in response to a verbal command) and MAC (anesthetic concentration achieving 50% probability of no movement in response to skin incision). The MAC-Awake was 0.7% +/- 0.1% in the control group (mean +/- SD) and 0.7% +/- 0.1% in the ATP group. MAC was 1.9% +/- 0.1% in the control group and 2.1% +/- 0.2% in the ATP group. The differences in MAC and MAC-Awake between the two groups were not statistically significant. We conclude that ATP infusion (100 micrograms.kg-1.min-1) has no effect on sevoflurane MAC and MAC-Awake. IMPLICATIONS: We found that an i.v. adenosine triphosphate infusion (100 micrograms.kg-1.min-1) has no effect on sevoflurane minimum alveolar anesthetic concentration (anesthetic concentration achieving 50% probability of no movement in response to skin incision) and minimum alveolar anesthetic concentration-Awake (anesthetic concentration achieving 50% probability of eye opening in response to a verbal command) in humans.

Adenosine Triphosphate↗

Calcium and the action of adrenaline, adenosine triphosphate and carbachol on guinea-pig taenia caeci.

1. The action of adrenaline (in the presence of propranolol; 3 x 10(-6) M), adenosine triphosphate (ATP) and carbachol on guinea-pig taenia caeci, and the interaction between these agonists, was studied by measuring changes in membrane potential using the sucrose-gap method in quiescent preparations at 22 degrees C.2. A sustained hyperpolarization was caused by addition of adrenaline (3 x 10(-6) M) and by applying adenosine triphosphate (ATP; 4 x 10(-4) M) for 5 min in Krebs solution. In calcium-free medium containing EGTA (0.4 mM) and high magnesium (6.2 mM), both the alpha-agonist and ATP caused a transient hyperpolarization which passed off within 5 min, although the agonist was still present.3. The transient hyperpolarization evoked by these agonists in the absence of calcium could be evoked only once. The response was restored after exposure to high calcium, (40 mM for 2 s, or 10 mM for 30 s). The maximum amplitudes of the hyperpolarization caused by adrenaline or ATP after exposure to high calcium (40 mM or 10 mM) were similar, while the maximum hyperpolarization after application of 2.5 mM-calcium was smaller.4. The area of the maximal response evoked by adrenaline or ATP was independent of the exposure time to calcium-free solution after removal of the extracellular calcium (20 min). The sum of the areas of a first submaximal response, obtained by applying adrenaline for less than 5 min to the calcium-free solution (20 min), and of the second response (5 min application) elicited after continuing in calcium-free medium for another 8 min, was constant.5. In the presence of the bee toxin apamin (10(-7) M), addition of ATP (4 x 10(-4) M) caused depolarization of the membrane both in the presence and absence of external calcium. These responses were not blocked in low sodium solution (22.7 mM) but were reduced by the calcium antagonist D600 (2 x 10(-5) M).6. In calcium-free conditions the alpha-response to adrenaline was decreased by a preceding addition of ATP and vice versa. Abolition of the ATP response (4 x 10(-4) M) by adrenaline (10(-5) M) was prevented by blocking the alpha-receptors with phentolamine (2 x 10(-5) M).7. Carbachol (5 x 10(-7)-5 x 10(-5) M) depolarized the muscle cells in calcium-free medium; a second addition of carbachol also caused depolarization, the amplitude being lower. The carbachol depolarization was dependent on the exposure time to calcium-free solution.8. The adrenaline response was reduced by about 25% by carbachol if applied previously, independent of the carbachol concentration (5 x 10(-7)-5 x 10(-5) M). The carbachol response, however, was not affected if preceded by the alpha-response.9. It is concluded that ATP and the alpha-agonist, after binding to their receptor sites, activate the same mechanism, which is mobilization of calcium from the same membrane compartment to open potassium channels, causing hyperpolarization of the muscle cell membrane; the hyperpolarization is transient or sustained in nature depending on the availability of external calcium to replenish the calcium compartment localized in the membrane. This adrenaline and ATP-sensitive calcium compartment is distinct from that which is sensitive to carbachol.

Adenosine Triphosphate↗