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Biomedical subjects

J Lundberg

Publications and source records attributed to J Lundberg.

At least 19 recordsLinked to original sources

[Belching, flatus, breath. Measurements of airborne nitric oxide in the non-invasive diagnosis of inflammation].

Enzymatic and non-enzymatic production of nitric oxide in humans: role in inflammation and host defence. Recent studies indicate that nitric oxide (NO) may play an important role in first line of defense in the airways and the stomach, since bacteriostatic concentrations of this gas has been found in the lumen of these organs. Airway NO synthesis is mostly carried out by a high producing "inducible like" NO synthase constantly present in the epithelium of the paranasal sinuses. Stomach NO synthesis, on the other hand, is non-enzymatic and results from acidification of salivary derived nitrite. Excess NO production has been implicated in the pathogenesis of inflammation although the exact role of NO is still unclear. NO production is enhanced in the mucosa of inflammatory diseases such as asthma and ulcerative colitis. Measurements of local NO production may be done in an easy way in the airways and the gastrointestinal tract by simply analyzing the concentrations of NO gas in luminal air of these hollow organs. Such non-invasive methods may be useful not only to explore what role NO plays in inflammation and host defence but possibly also in the diagnosis and monitoring of inflammatory mucosal diseases in the airways and gastrointestinal tract.

Gastroenteritis

Are the cardiovascular actions of dopamine altered by isoflurane?

Dopamine seems theoretically to be a rationale choice when adrenergic support is needed to counter undesired cardiovascular depressant effects of isoflurane. Although the cardiovascular effects of isoflurane (ISO) and exogenous dopamine (DA) are well documented, there are no reports on their pharmacological interaction. The effects of ISO 1.4% (MAC 1.0) on the cardiovascular response to exogenous DA were studied in dogs during chloralose anesthesia. Instrumentation included catheterizations of the femoral artery (for aortic pressures and heart rate, HR), the pulmonary artery (for thermodilution cardiac output, CO, and pulmonary arterial pressures) and the left ventricle (for tip-manometer measured left ventricular end-diastolic pressure, LVEDP). ISO per se decreased HR (-16%), mean arterial pressure (MAP; -33%), CO (-29%), left ventricular dP/dt (LV dP/dt; -51%), and increased pulmonary artery occlusion (PAOP; +64%) and LVEDP (+28%). Prior to ISO, DA increased MAP, CO stroke volume (SV), LV dP/dt and LV dP/dt/SAP (systolic arterial pressure) at the dose 10 micrograms.kg-1.min-1. At the dose 20 micrograms.kg-1.min-1 DA, besides these effects, increased PAOP and mean pulmonary artery pressure (MPAP). During ISO, DA at the dose 10 micrograms.kg-1.min-1 restored MAP, CO, and SV to pre-ISO control levels, while LV dP/dt was increased to +96% above the pre-ISO control level. At the dose 20 micrograms.kg-1.min-1, DA increased MAP (+33%), LV dP/dt (+172%), PAOP (+132%) and MPAP (+50%) above pre-ISO control levels. The cardiac effects of DA were similar to when it was given alone.(ABSTRACT TRUNCATED AT 250 WORDS)

Anesthetics, Inhalation

Metabolic and vascular effects of circulating endothelin-1 during moderately heavy prolonged exercise.

The aims were to investigate 1) the effects of endothelin-1 (ET-1) during exercise and 2) the influence of exercise on arterial ET-1 levels. Six healthy subjects performed two exercises of 2 h duration at 50% of peak oxygen uptake preceded by intravenous infusion of physiological saline or ET-1 (4 pmol.kg-1.min-1). Blood specimens were taken from arterial and hepatic vein catheters. Arterial ET-1 rose 15-fold during the infusion. Splanchnic blood flow fell after ET-1 and remained lower than in control subjects during exercise (P < 0.001). Splanchnic glucose production was approximately 25% lower compared with control values during the whole exercise period (P < 0.01). Neither heart rate, arterial glucagon, insulin, catecholamines, renin, glucose, lactate, nor glycerol levels differed from control exercise values. The calculated gluconeogenesis from glycerol and lactate did not differ from the control values. ET-1 levels rose approximately twofold in the control exercise (P < 0.01) and in another group of seven subjects performing 1 h of exercise at 70% of peak oxygen uptake (P < 0.001). In conclusion, ET-1 levels increased during exercise without ET-1 administration. In addition, circulating ET-1 has a (direct or indirect) regulatory action on splanchnic blood flow and glucose metabolism during exercise (and possibly under pathophysiological conditions) in humans.

Adult

Cardiovascular depression by isoflurane and concomitant thoracic epidural anesthesia is reversed by dopamine.

Interactive effects between exogenous dopamine (DA) and isoflurane (I) combined with thoracic epidural blockade (TEA) were studied in dogs during chloralose anesthesia. The I-TEA intervention per se decreased heart rate (HR; 28%), mean arterial pressure (MAP; 63%), cardiac output (CO; 54%), left ventricular dP/dt (LVdP/dt; 75%) and LVdP/dt/systolic arterial pressure (SAP; 42%). Prior to the I-TEA intervention, dopamine increased MAP, CO, LVdP/dt, LVdP/dt/SAP and stroke volume (SV) already at the dose 10 micrograms.kg-1.min-1 and, additionally, increased mean pulmonary artery pressure (MPAP) at the dose 20 micrograms.kg-1.min-1. During the I-TEA intervention, the DA-induced increases in MAP and systemic vascular resistance (SVR) were significantly higher than prior to I-TEA, as indicated by significant ANOVA interactive effects. At the dose 10 micrograms.kg-1.min-1, DA restored MAP, CO, LVdP/dt, LVdP/dt/SAP and SV to levels found before the I-TEA intervention, while HR was restored first at the dose 20 micrograms.kg-1.min-1. At the dose 20 micrograms.kg-1.min-1, DA also increased MAP (39%), LVdP/dt (119%), LVdP/dt/SAP (73%), SVR (28%) and MPAP (70%) above levels prior to I-TEA. To conclude, exogenous dopamine effectively and dose-dependently counters cardiovascular depression induced by the anesthetic technique of combining I and TEA. The pressor and systemic vasoconstrictor actions of dopamine are potentiated by conjoint administration of I and TEA.

Anesthesia, Epidural

Inhaled nitric oxide selectively reverses human hypoxic pulmonary vasoconstriction without causing systemic vasodilation.

BACKGROUND: Nitric oxide (NO), an endothelium-derived relaxing factor, acts as a local vasodilator. The authors examined the effects of NO on pulmonary and systemic circulation in human volunteers. METHODS: Nine healthy adults were studied awake while breathing 1) air, 2) 12% O2 in N2, 3) followed by the same mixture of O2 and N2 containing 40 ppm of NO. Pulmonary artery and radial artery pressures were monitored. RESULTS: The PaO2 decreased from 106 +/- 4 (mean +/- standard error of the mean) while breathing air (21% O2) to 47 +/- 2 mmHg after 6 min of breathing 12% O2. Concomitantly, the pulmonary artery mean pressure (PAP) increased from 14.7 +/- 0.8 mmHg to 19.8 +/- 0.9 mmHg, and the cardiac output (CO) increased from 6.1 +/- 0.4 to 7.7 +/- 0.6 L/min. After adding 40 ppm NO to the inspired gas while maintaining the FIO2 at 0.12, the PAP decreased (P < 0.01, by analysis of variance) to the level when breathing air while the PaO2 and PaCO2 were unchanged. The dilation (or recruitment) of pulmonary vessels produced by inhaling NO during hypoxia was not accompanied by any alteration in the systemic vascular resistance or mean arterial pressure (MAP). The authors also examined the effects of inhaling NO while breathing air. Breathing 40 ppm NO in 21% O2 for 6 min produced no significant changes of PAP, CO, PaO2, MAP, or central venous pressure. Plasma endothelinlike immunoreactivity concentrations did not change either during hypoxia or hypoxia with NO inhalation. CONCLUSIONS: Inhalation of 40 ppm NO selectively induced pulmonary vasodilation and reversed hypoxic pulmonary vasoconstriction in healthy humans without causing systemic vasodilation.

Administration, Inhalation

Rapidly progressive sacroiliitis in a patient with lymphocytic lymphoma.

Rheumatological manifestations may develop as paraneoplastic syndromes in patients with malignancy. Sacroiliitis and spondyloarthropathy have not, however, been previously associated with cancer. The case is described of a patient with a stage IV diffuse well differentiated lymphocytic lymphoma who developed concomitant sacroiliitis and enthesopathies with rapid progression following the diagnosis of malignancy.

Arthritis

Hemodynamic effects of the use of oral snuff.

The hemodynamic effects during rest and exercise of oral snuff were investigated in an open, placebo-controlled study of nine habitual users of oral snuff. Blood pressure, heart rate, and central hemodynamics were measured noninvasively. Plasma concentrations of nicotine, cotinine, norepinephrine, and epinephrine, as well as neuropeptide Y-like immunoreactivity were measured before and after snuff intake during rest and exercise. Snuff intake induced a significant increase in heart rate and blood pressure and a decrease in stroke volume during rest. Hemodynamic changes were unrelated to nicotine or cotinine concentrations. Resting levels of norepinephrine and neuropeptide Y-like immunoreactivity were similar with or without snuff, whereas epinephrine was slightly increased 30 minutes after snuff intake. The exercise-induced increase in norepinephrine and neuropeptide Y-like immunoreactivity did not differ between the days subjects received snuff and the days they received placebo. In contrast, maximum work load was associated with a slight increase in circulating epinephrine after snuff intake. The findings suggest that snuff intake is associated with significant hemodynamic effects during rest but not during exercise. These effects could not be readily explained by activation of the sympathetic nervous system.

Adult

Radiation therapy in a case of systemic mastocytosis: evaluation of histamine levels and mucosal effects.

Plasma histamine levels were obtained during palliative radiation therapy of the spine involved with systemic mastocytosis in a 68-year-old woman. Baseline plasma histamine levels were obtained before irradiation and compared to levels obtained on the third, fifth, eighth, and tenth treatment days. Despite concerns regarding histamine release with mast cell destruction following irradiation, plasma histamine levels remained within normal limits. No change in dermatologic or other systemic manifestations were observed. No untoward systemic or localized sequelae associated with mast cell degranulation in response to the administered large field of radiation was observed. Effective palliation was accomplished, and it was concluded that radiation therapy can effectively be applied in treatment of systemic mast cell disease without significant morbidity.

Aged

Effects of thoracic epidural anesthesia and adrenoceptor blockade on the cardiovascular response to dopamine in the dog.

The cardiovascular effects of dopamine are different before and during thoracic epidural anesthesia (TEA). To evaluate underlying adrenoceptor-mediated mechanisms, dopamine effects were investigated in nine chloralose-anesthetized dogs. The circulatory response to dopamine (0-40 micrograms.kg-1.min-1) was studied before and during TEA, and during TEA after introducing the alpha 1-antagonist prazosin (0.3 mg.kg-1), the alpha 2-antagonist rauwolscine (0.3 mg.kg-1), and the beta 1-antagonist metoprolol (0.5 mg.kg-1). TEA decreased mean arterial pressure (MAP) by 29%, cardiac output (CO) by 36%, heart rate (HR) by 27%, and the maximum rate of change of left ventricular pressure (LVdP/dt) by 52%. Systemic vascular resistance, pulmonary vascular resistance and mean pulmonary artery pressure (MPAP) remained unaltered by TEA. Dopamine-induced increases in MAP and HR were augmented by TEA. Both MAP and LVdP/dt increased above pre-TEA levels at 10 micrograms.kg-1.min-1. Prazosin attenuated the increases in MAP and MPAP by dopamine. Adding rauwolscine almost abolished the dopamine response in MAP and MPAP. Metoprolol almost eliminated the dopamine effects on CO and LVdP/dt. Only minor alterations in cardiac filling pressures were observed during the study. Plasma norepinephrine (NE) concentration was lower during than before TEA at corresponding dopamine infusion rates. NE was reduced by the beta 1-blockade. During TEA, the plasma dopamine levels were generally higher, and they were further increased by adding beta 1-blockade. In conclusion, myocardial contractility and arterial pressure were restored to pre-TEA values by dopamine at 5-10 micrograms.kg-1.min-1.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenergic alpha-Antagonists

Release of endothelial mediators and sympathetic transmitters at different coronary flow rates in rabbit hearts.

1. The release of three endothelial mediators, namely, endothelial-derived relaxing factor (EDRF), prostacyclin (PGI2) and endothelin, and of two sympathetic neurotransmitters, noradrenaline and neuropeptide Y (NPY), from resting or sympathetically stimulated rabbit Langendorff hearts was investigated at normal or elevated coronary flow. The sympathetic nerves to the hearts were stimulated at 5 Hz for 30 s and the cardiac effluent was analysed for nitrite (metabolite of EDRF) with electron paramagnetic resonance spectrometry, for 6-keto-PGF1 alpha (metabolite of PGI2) with gas chromatography/mass spectrometry, for endothelin- and NPY-like immunoreactivity with radioimmunoassay, and for noradrenaline and purines with liquid chromatography. 2. During perfusion of the hearts at normal flow (35 +/- 1.4 ml min-1) the effluent concentration of nitrite was 0.15 +/- 0.02 microM, that of 6-keto-PGF1 alpha 0.74 +/- 0.08 nM, and that of endothelin-like immunoreactivity 0.18 +/- 0.01 pM. Nerve stimulation augmented the release of 6-keto-PGF1 alpha from 76 +/- 8 to 99 +/- 10 pmol (3 min)-1 (P less than 0.05), but did not affect the release of nitrite or endothelin-like immunoreactivity. Nerve stimulation also facilitated the outflow of noradrenaline and of NPY-like immunoreactivity by 52 +/- 11 pmol (3 min)-1 and 19 +/- 7 fmol (3 min)-1, respectively. 3. Elevation of the coronary flow to 79 +/- 3.2 ml min-1 did not affect the effluent concentrations of nitrite, 6-keto-PGF1 alpha and endothelin-like immunoreactivity, implying that their outflows were augmented. Sympathetic stimulation at elevated coronary flow did not further augment the outflow of endothelial mediators or of NPY-like immunoreactivity, but increased the outflow of noradrenaline by 62 +/- 12%, in comparison to stimulation at normal flow. Perfusion of the heart with the noradrenaline uptake blocker desipramine (5 microM) completely abolished the promoting effecting of elevated coronary flow on noradrenaline outflow during sympathetic stimulation. 4. These data indicate that an increase in coronary flow in perfused rabbit hearts is paralleled by a corresponding facilitation of the formation of the endothelial mediators, EDRF, prostacyclin and endothelin. Such an elevation of mediator formation does not affect nerve stimulation-induced release of sympathetic transmitters in the heart.

Animals

Dopamine counteracts hypertension during general anesthesia and hypotension during combined thoracic epidural anesthesia for abdominal aortic surgery.

The influence of the degree of sympathetic nervous system activation on the cardiovascular effects of dopamine was studied during abdominal aortic surgery in 13 patients. The arterial plasma norepinephrine concentration (NE) was used as an index of sympathetic nervous system activity. During anesthesia with nitrous oxide and fentanyl, 7 patients (group 1) had a NE above 700 pg/mL and an increased mean arterial pressure (MAP) compared with the preanesthetic level (150 +/- 6 v 117 +/- 10 mm Hg; p less than 0.01, mean +/- SEM). The other 6 patients (group 2) had no significant change in MAP compared with the preanesthetic MAP (119 +/- 7 v 105 +/- 4 mm Hg). Dopamine, 4 micrograms/kg/min, decreased MAP in group 1 by 19% (150 +/- 6 to 121 +/- 8 mm Hg; P less than 0.05) because of a 32% +/- 9% decrease (P less than 0.05) in systemic vascular resistance. MAP was not altered by dopamine in group 2 (119 +/- 7 v 123 +/- 6 mm Hg; not significant). Following termination of dopamine, the anesthetic was supplemented with thoracic epidural anesthesia (TEA). This reduced MAP to 65 +/- 7 mm Hg (P less than 0.01) and 56 +/- 3 mm Hg (P less than 0.01), and NE to 441 +/- 76 (P less than 0.05) and 235 +/- 45 pg/mL (P less than 0.05) in groups 1 and 2, respectively. During TEA, dopamine increased MAP similarly in both groups, to 85 +/- 7 mm Hg (P less than 0.01) and 82 +/- 9 mm Hg (P less than 0.05), respectively. In conclusion, dopamine, at the same dosages, counteracted hypertension during general anesthesia and counteracted hypotension during general anesthesia combined with TEA.

Analysis of Variance

Intestinal hemodynamics during laparotomy: effects of thoracic epidural anesthesia and dopamine in humans.

The effects of thoracic epidural anesthesia (TEA) and dopamine infusion (4 micrograms.kg-1.min-1) on superior mesenteric artery blood flow (SMABF), the mesenteric arteriovenous oxygen difference (AVDO2), and the mesenteric venous lactate concentration were studied in nine patients before abdominal aortic reconstruction. Thoracic epidural anesthesia reduced SMABF, as measured by electromagnetic flowmetry, to 77% +/- 8% (mean +/- SEM) of control (P less than 0.05), and mean arterial pressure to 46% +/- 4% of control (P less than 0.01). The mesenteric AVDO2 increased from 27 +/- 3 to 39 +/- 6 mL/L (P less than 0.05) and superior mesenteric venous lactate from 1.03 +/- 0.11 to 1.60 +/- 0.38 mmol/kg (P less than 0.05); systemic AVDO2 and lactate did not change. Dopamine had no significant effect on SMABF and mean arterial pressure before TEA. However, dopamine increased SMABF during TEA (from 77% +/- 8% to 137% +/- 21% of control; P less than 0.01), returned mesenteric AVDO2 to 27 +/- 3 mL/L (P less than 0.05), and elevated mean arterial pressure to 62% +/- 4% of control (P less than 0.05). It is concluded that the decrease in perfusion pressure during TEA reduces SMABF with resultant evidence of intestinal reductive metabolism. The intestinal blood flow during TEA was improved by dopamine.

Aged

Effects of dopamine on intestinal hemodynamics and motility during epidural analgesia in the cat.

The effects of dopamine on intestinal blood flow (IBF) and intestinal contraction rate (ICR), and on mean arterial pressure (MAP) and heart rate (HR) were studied in eight cats before and during epidural analgesia (EDA). Before EDA, dopamine 5 and 10 micrograms.kg-1.min-1 had no effect on IBF, MAP and HR, but the higher infusion rate decreased ICR by 71 +/- 19% (mean +/- 1 s.e.mean) (P less than 0.01). EDA significantly increased IBF when intestinal arterial pressure was maintained at an unchanged level by means of a pump, and transiently increased ICR and intestinal tone, but reduced MAP by 46 +/- 8% (139 +/- 11 to 75 +/- 9 mmHg, P less than 0.01) and HR by 26 +/- 3% (248 +/- 7 to 184 +/- 8 beats.min-1, P less than 0.01). During EDA, dopamine increased IBF further, the response being similar at both infusion rates. 5 micrograms.kg-1.min-1 increased HR by 26 +/- 7 beats.min-1 (P less than 0.01) and MAP by 19 +/- 9 mmHg (ns). The corresponding values at 10 micrograms.kg-1.min-1 were 65 +/- 14 beats.min-1 (P less than 0.01) and 35 +/- 8 mmHg (P less than 0.01), respectively, Vascular autoregulation appeared to be unaffected by dopamine and EDA. The effect of dopamine on ICR was not significantly different to what was seen before EDA. It is concluded that the effects of dopamine on IBF, MAP and HR were markedly different during EDA as compared to before the block and that ICR was reduced by dopamine, while it was transiently increased by EDA.(ABSTRACT TRUNCATED AT 250 WORDS)

Analgesia, Epidural

Direct evidence of active sympathetic vasodilatation in the skin of the human foot.

1. During operative aorto-femoral vascular reconstructions on sixteen patients, the sympathetic chain was stimulated electrically between the L2 and L4 ganglia while blood flow was monitored by laser doppler flowmeters from the skin on the sole of the foot and the ankle and by an electromagnetic flowmeter from the deep femoral artery. Epidural anaesthesia to at least the T6 level was used which excluded reflex effects. 2. Stimulation (10 Hz) at 1-12 mA current strengths for 30 s evoked both reductions and increases of blood flow in glabrous and hairy skin. Initial short-lasting flow increases (durations 9-19 s) followed by sustained decreases were common: sometimes there were sustained flow increases at low and decreases at high current strengths. 3. In the deep femoral artery (supplying predominantly muscle) only flow reductions were evoked. 4. The results provide evidence for sympathetically mediated vasodilatation in the skin of the human foot whereas leg muscles may be supplied by vasoconstrictor nerves only.

Aged

Hemodynamic effects of dopamine during thoracic epidural analgesia in man.

The cardiovascular effects of dopamine were studied before and during thoracic epidural analgesia (TEA) in eight patients prior to abdominal aortic surgery. Dopamine was infused at rates of 2, 4, and 8 micrograms X kg-1 X min-1. Mean plasma dopamine concentration increased proportionally to the infusion rate. Before TEA, dopamine 8 micrograms X kg-1 X min-1 decreased systemic vascular resistance 4 +/- 4 mmHg min X 1-1 (m +/- SD) (P less than 0.05), but increased mean arterial pressure 15 +/- 12 mmHg (P less than 0.01), cardiac output 1.9 +/- 1.0 1 X min-1 (P less than 0.01), heart rate 10 +/- 9 beats X min-1 (P less than 0.05), and plasma norepinephrine concentration 544 +/- 252 pg X ml-1 (P less than 0.01). After the induction of TEA, which extended above the T2 dermatome and below the L2 dermatome, saline and albumin were infused to maintain central venous and pulmonary capillary wedge pressures. TEA reduced mean arterial pressure from 96 +/- 18 to 55 +/- 8 mmHg (P less than 0.01), cardiac output from 4.7 +/- 0.9 to 3.9 +/- 0.9 1 X min-1 (P = 0.05), systemic vascular resistance from 21 +/- 6 to 14 +/- 3 mmHg min X 1-1 (P less than 0.05), and plasma norepinephrine concentration from 394 +/- 141 to 207 +/- 73 pg X ml-1 (P less than 0.01). The plasma epinephrine concentration was reduced 49% after the induction of TEA.(ABSTRACT TRUNCATED AT 250 WORDS)

Aged