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J N Diana

Publications and source records attributed to J N Diana.

At least 19 recordsLinked to original sources

Hypoxemia and elevated tachykinins in rat monocrotaline pneumotoxicity.

This study was performed to test whether monocrotaline (MCT)-induced early airway dysfunction and gas exchange abnormalities result in arterial hypoxemia. Thirty young male Sprague-Dawley rats were divided into four groups: control, MCT1, MCT2, and MCT3. Each of the control animals was injected (subcutaneously) with saline; each of the MCT rats was injected with MCT (60 mg/kg, subcutaneously). The rats were tested 1 (MCT1), 2 (MCT2), or 3 (MCT3) weeks after MCT injection. Two days before each animal was tested, it was anesthetized with sodium pentobarbital, and its carotid artery was chronically cannulated. Blood was sampled from the arterial catheter of the conscious rat, and blood gases and pH were measured. Pulmonary arterial pressure (Ppa) was determined in the anesthetized, open chest animal. Heart weight was measured and a weight ratio obtained of right ventricle (RV) to left ventricle plus septum (LV+S). The amount of lung substance P and airway neutral endopeptidase (NEP) activity were also measured. MCT significantly decreased arterial oxygen tension (Pao2) and increased the RV/(LV+S) weight ratio 2 and 3 weeks after administration, whereas it did not significantly increase Ppa until 3 weeks after injection. MCT significantly increased lung substance P levels and decreased airway NEP activities 1-3 weeks after administration. These data suggest that tachykinins cause hypoxemia and RV hypertrophy; then hypoxia may augment the development of pulmonary hypertension.

Animals↗

delta Opioid extends hypothermic preservation time of the lung.

To test the hypothesis that a delta opioid, DADLE ([D-Ala2, D-Leu5]-enkephalin), could protect tissue from ischemic damage during hypothermic lung preservation, we studied three groups of rats. In group 1 (n = 8), lung function was studied immediately after harvesting. In group 2 (n = 8), the lung was flushed with 4 degrees C Euro-Collins solution and preserved for 24 hours. In group 3 (n = 8), the lung was flushed with 4 degrees C Euro-Collins solution plus DADLE (1 mg/kg) and preserved for 24 hours. Lung function was studied by using a living rat perfusion model. Venous blood from the host rat perfused the pulmonary artery of the isolated lung. Blood from the isolated lung was returned to the carotid artery of the host rat with a roller pump. Severe pulmonary edema, hemorrhage, and occlusive pulmonary artery resistance occurred in group 2 within 30 minutes of perfusion. Perfusion studies were carried out for more than 60 minutes in groups 1 and 3. Pulmonary blood flow was lower in group 2 than in either group 1 or group 3. Pulmonary vascular resistance was much higher in group 2 than in groups 1 and 3 (p < 0.05). Airway pressure and airway resistance were much higher in group 2 than in groups 1 and 3 (p < 0.05). Airway resistance was also higher in group 3 than in group 1 after 20 minutes of perfusion (p < 0.05). Oxygen tensions from the pulmonary vein of the isolated lung in group 2 were lower than those in groups 1 and 3 (p < 0.05). Alveolar-arterial oxygen difference was much higher in group 2 than in groups 1 and 3 (p < 0.05). Lung tissue wet/dry weight ratio after perfusion was much higher in group 2 than in groups 1 and 3. The results clearly show, for the first time, that DADLE can effectively enhance hypothermic lung preservation in rats.

Airway Resistance↗

Nutritional implications in vascular endothelial cell metabolism.

Endothelial cells interact with blood components and the abluminal tissues, thus playing an active role in many aspects of vascular function. Numerous physiologic and pathophysiologic stimuli are often mediated by nutrients that can contribute to the overall functions of endothelial cells in the regulation of vascular tone, coagulation, cellular growth, immune and inflammatory responses. Therefore, nutrient-mediated functional changes of the endothelium and the underlying tissues may be significantly involved in disease processes such as atherosclerosis. There is evidence that individual nutrients or nutrient derivatives may either provoke or prevent metabolic and physiologic perturbations of the vascular endothelium. Diets high in fat and/or calories are considered a risk factor for the development of atherosclerosis. Our research has shown that certain diet-derived lipids and their derivatives can disrupt normal endothelial integrity, thus reducing the ability of the endothelium to act as a selectively permeable barrier to blood components. Mechanisms underlying fatty acid-mediated endothelial cell dysfunction may be related to changes in fatty acid composition as well as to an increase in cellular oxidative stress. Selective lipid accumulation and fatty acid changes in endothelial cells can modulate membrane fluidity, proteoglycan metabolism and signal transduction mechanisms. Most importantly, dietary fats rich in certain unsaturated fatty acids, may be atherogenic by enhancing the formation of reactive oxygen intermediates. A subsequent imbalance in cellular oxidative stress/antioxidant status can activate oxidative stress-responsive transcription factors, which in turn may promote cytokine production, expression of adhesion molecules on the surface of endothelial cells, and thus intensify an inflammatory response in atherosclerosis. Our data also suggest that certain nutrients, which have antioxidant and/or membrane stabilizing properties, can protect endothelial cells by interfering with lipid/cytokine-mediated endothelial cell dysfunction. These findings contribute to the understanding of the interactive role of dietary fats with inflammatory components, as well as with nutrients that exhibit antiatherogenic properties, in the development of atherosclerosis.

Antioxidants↗

Cardiovascular responses to cigarette smoke exposure in restrained conscious rats.

The effect of exposure to cigarette smoke on cardiovascular function was examined in conscious, restrained Sprague-Dawley rats. Rats were exposed to 3, 6 and 9 puffs of either air or cigarette smoke during the "break in" period and to 10 puffs on the day of the experiment (day 4). HR, cardiac output and mean arterial pressure were recorded continuously throughout the experimental period. Rats exposed previously to cigarette smoke generated from either low-nicotine (0.16 mg/cig.) or high-nicotine (2.45 mg/cig.) cigarettes showed a dose-related decrease in HR in response to restraint stress. In addition, exposure to cigarette smoke produced a further decrease in HR and cardiac output and an increase in mean arterial pressure. This effect by cigarette smoke was dose-dependent (dependent on the cigarette nicotine content) and was antagonized by intra-arterial pretreatment with the nicotinic antagonists mecamylamine and hexamethonium and also with the ganglionic blocker chlorisondamine. Intra-arterial pretreatment with atropine methyl bromide blocked the bradycardia in response to both restraint stress and cigarette smoke. Furthermore, pretreatment with an arginine vasopressin antagonist, d(CH2)5Tyr(Me)arginine vasopressin, significantly attenuated the increase in mean arterial pressure and total peripheral resistance and the decrease in HR and cardiac output due to cigarette smoke. On the other hand, pretreatment with the opioid receptor antagonist naloxone had no effect on cardiovascular parameters in response parameters in response to cigarette smoke. These results implicate arginine vasopressin, in addition to the activation of both sympathetic and parasympathetic systems, in mediating cardiovascular responses to cigarette smoke.

Animals↗

N omega-nitro-L-arginine inhibits vasodilations and elevations of both cyclic AMP and cyclic GMP levels in rat aorta induced by calcitonin gene-related peptide (CGRP).

Our previous studies showed that vasodilations and elevations of both cyclic AMP and cyclic GMP levels in rat aorta induced by rat calcitonin gene-related peptide (rCGRP) are inhibited by hemoglobin and methylene blue, blockers of the endothelium-derived relaxant factor (EDRF, now recognized as nitric oxide [NO]). In the present study, we used N omega-nitro-L-arginine (L-NNA), a selective inhibitor of nitric oxide synthase, to test whether rCGRP-induced relaxations and cyclic AMP and cyclic GMP responses in rat aorta require de novo synthesis of NO. L-NNA (30 microM, 15 min) inhibited by 84, 76 and 73% the relaxations induced by rCGRP at 1, 10 and 100 nM, respectively. D-NNA (30 microM), which does not inhibit nitric oxide synthase, did not block rCGRP-induced vasorelaxations. Addition of L-arginine (3 mM) 5 min before L-NNA completely prevented the L-NNA-inhibition of CGRP-induced relaxations. L-NNA (30 microM, 15 min) also inhibited the elevations of both cyclic AMP and cyclic GMP levels caused by CGRP (100 nM). The data suggest that de novo synthesis of nitric oxide from its precursor L-arginine is required for rCGRP to induce vasodilations and elevations of both cyclic AMP and cyclic GMP levels in rat aorta.

Amino Acid Oxidoreductases↗

Nitroglycerin (exogenous nitric oxide) substitutes for endothelium-derived nitric oxide in potentiating vasorelaxations and cyclic AMP elevations induced by calcitonin gene-related peptide (CGRP) in rat aorta.

Rat calcitonin gene-related peptide (rCGRP) causes endothelium-dependent vasorelaxations via a dual signal transduction mechanism involving elevations of both cyclic AMP and cyclic GMP levels in rat aorta. These responses are all dependent on de novo synthesis of nitric oxide (NO) in endothelial cells and appear to involve a mechanistic link between cyclic GMP and cyclic AMP responses in smooth muscle cells. The present study determined whether NO from an exogenous source (i.e. added nitroglycerin) could substitute for endogenous NO in rCGRP-induced responses in endothelium-denuded aorta. Nitroglycerin (1 microM) significantly elevated cyclic GMP levels by 20-fold and 3.3-fold and cyclic AMP levels by 26% and 22% at 1 and 2 min, respectively. By itself, rCGRP (100 nM) did not significantly elevate cyclic AMP levels. In combination, however, nitroglycerin and rCGRP caused more-than-additive cyclic AMP elevations (41% above basal at 1 and 2 min). Nitroglycerin also potentiated rCGRP-induced vasorelaxations in endothelium-denuded rings, thus uncovering a direct (endothelium-independent) relaxant effect of rCGRP in rat aorta. The data indicate that exogenous NO can substitute for endogenous NO in rCGRP-induced relaxant and cyclic AMP responses in aorta. This nitroglycerin-induced potentiation of CGRP effects likely involves inhibition of cyclic-GMP-inhibited-phosphodiesterase in smooth muscle cells, thus allowing cyclic AMP to accumulate and mediate the direct vasodilator effects of rCGRP.

Animals↗

Influence of nutrients and cytokines on endothelial cell metabolism.

The vascular endothelium plays an active role in physiological processes such as hemostasis, regulation of vessel tone and vascular permeability. Cell injury, or any event which disrupts endothelial integrity and thus endothelial permeability properties, may be involved in the early events leading to atherosclerotic lesion formation. Because of its constant exposure to blood components, including prooxidants, diet-derived fats and their derivatives, the endothelium is susceptible to oxidative stress and to injury mediated by blood lipid components. It is likely that these events potentiate the overall inflammatory response to injury by increasing cytokine release in proximity to the endothelium, which then could further disrupt endothelial barrier function. Even though mechanisms associated with lipid/cytokine-mediated endothelial cell dysfunction are unclear, our data suggest that they may be both oxidative and non-oxidative in nature. We suggest that dietary fats, rich in certain unsaturated fatty acids are atherogenic by enhancing the formation of reactive oxygen intermediates. These intermediates can activate oxidative stress-responsive transcription factors, such as NF-kappa B, which in turn may promote cytokine production, adhesion molecule expression and ultimately endothelial barrier dysfunction. The resulting disturbances in endothelial integrity possibly allow increased penetration of cholesterol-rich lipoprotein remnants into the arterial wall, a critical event in the etiology of atherosclerosis. Data suggest that certain nutrients, which have antioxidant and/or membrane stabilizing properties, protect endothelial cells by interfering with the above proposed mechanisms of endothelial cell dysfunction.

Arteriosclerosis↗

Autoperfused heart-lung preparation: one reason for unsuccessful lung preservation.

Normothermic autoperfused heart-lung preparation has the advantages of avoiding ischemic time and allowing continuous monitoring of organ function during preservation. When this technique is used, the lungs deteriorate quickly, but the reasons for this deterioration have not been investigated. This study was designed to explore the possible cause of rapid lung deterioration. Three groups of mongrel dogs were used. In Group 1 (N = 5), a buffer bag was used in the heart-lung preparation. In Group 2 (N = 6), a 20 mu filter was incorporated between the buffer bag and the right atrium. In Group 3 (N = 5), no buffer bag was used. Average survival time was 15.0 +/- 3.1 hours in Group 1, 13.5 +/- 0.7 hours in Group 2, and 21.6 +/- 2.3 hours in Group 3. Heart function was comparable among the three groups, but the arterial pulse pressure was lower and the heart rate higher in Group 3. Both white blood cell and platelet counts decreased contonuously during the preservation period. Examination of the filters in Group 2 revealed numerous aggregates consisting of platelets, white blood cells, red blood cells, and fibrin. Small thrombi were also found in the lungs in Groups 1 and 2. The results indicated that one important reason for quick lung deterioration was numerous aggregates, which were formed in the buffer bag, returned from the venous line, and trapped in the lungs. Removal of the buffer bag reduced the production of aggregates but tended to de-stabilize the hemodynamics of the preparation.

Animals↗

Mainstream and sidestream cigarette smoke-induced DNA adducts in C7Bl and DBA mice.

Exposure to environmental tobacco smoke (ETS), which is largely composed of the sidestream cigarette smoke, has been implicated in increased incidence of cancer among nonsmokers. The present study was conducted to compare the potential of mainstream and sidestream cigarette smoke to induce DNA adducts in mice. Groups of female C57Bl and DBA mice were exposed twice daily for 65-70 weeks to mainstream or sidestream smoke from the University of Kentucky reference cigarettes (2R1) in a nose-only exposure system. Animals received a total particulate matter dose of about 16 and 6 mg/kg body weight/exposure and exhibited blood carboxyhemoglobin levels of about 16 and 34%, for mainstream and sidestream smoke-exposed groups, respectively. Pulmonary aryl hydrocarbon hydroxylase (AHH) activity was induced by about 2- to 3-fold in both mainstream and sidestream groups of C57Bl and in mainstream smoke-exposed group of DBA mice, but not in sidestream smoke-exposed DBA mice. An analysis of total DNA adduct levels by the 32P-postlabeling assay showed a significant (12- to 25-fold) increase in the magnitude of preexisting lung DNA adducts in both mainstream and sidestream smoke-exposed C57Bl and DBA mice. Smoke exposures did not affect the total preexisting DNA adducts in liver of either strain. It is concluded that both mainstream and sidestream smoke are capable of enhancing preexisting DNA adducts in the lungs of chronically smoke-exposed mice.

Animals↗

Reproductive organ blood flow measured using radioactive microspheres in diestrous and estrous mice.

Blood flow is a primary mechanism controlling reproductive organ functions. In the present study, radioactive microsphere techniques were adapted to measure ovarian, uterine, and vaginal blood flow levels in C57BL mice. Anesthetized animals were tracheostomized and the left carotid artery was cannulated. The heart was exposed and 113Sn-labeled spheres (15 microns size, 2 microCi, 0.1 ml) were injected via the left ventricle. Reference sample was obtained by carotid artery blood "free flowing" into a tared microfuge tube for 1 min. The animal was killed, and selected tissues were excised for weighing and radioactivity measurement to determine flow. Absence of differences in flow levels (ml.min-1.g-1) to paired nonreproductive organs (adrenals and kidneys) validated the procedure. Blood flow levels were significantly higher in the ovaries, but not in the uterus and vagina of estrous mice vs. diestrous mice. Comparison of left vs. right ovaries suggested consistent blood flow distribution during diestrus. Ovarian blood flow level is enhanced during estrus and, in addition, is highly nonuniform regarding right-left flow distribution. Nonuniform ovarian blood flow distribution in estrous mice leads us to speculate that alternating right-left (i.e. nonuniform) ovulation predominates during each murine estrous cycle.

Animals↗

Two-day preservation of major organs with autoperfusion multiorgan preparation and hibernation induction trigger. A preliminary report.

A new autoperfusion multiorgan preparation was studied in which the heart and lungs were removed with the liver, pancreas, duodenum, and both kidneys en bloc while being perfused by the heart and oxygenated by the lungs. A respirator with 50% oxygen was used for ventilation. Fresh blood, glucose, electrolytes, mannitol, and antibiotics were given through the portal vein. Fifteen mongrel dogs were used. In the study group (seven dogs), 10 ml of plasma containing hibernation induction trigger, obtained from deeply hibernating woodchucks, was given intravenously 2 hours before the operation, and 4 ml was given every 4 hours during the preservation period. In the control group (eight dogs), no hibernation induction trigger was used. Survival time in the study group ranged from 33 to 56 hours (mean 43.4 +/- 4.1 hours), longer than that of the control group, which was 9 to 31 hours (mean 16.2 +/- 2.6 hours, p less than 0.001). In the study group aortic systolic pressure ranged from 64 +/- 5 to 92 +/- 7 mm Hg, arterial oxygen tension from 180 +/- 35 to 285 +/- 66 mm Hg. Urine output ranged from 15 to 70 ml/hour. Blood urea nitrogen declined from 15.6 +/- 2.5 to 6.6 +/- 1.3 mg/dl (p less than 0.01); creatinine declined from 0.8 +/- 0.03 to 0.3 +/- 0.01 mg/dl (p less than 0.01). Severe liver congestion and premature renal failure occurred in the control group but did not occur in the study group. In the study group one lung was transplanted after 33 hours of preservation with simultaneous contralateral pulmonary artery ligation. Good lung function was maintained after transplantation. Although the exact mechanism by which hibernation induction trigger extends tissue survival time is still not clear, its effect on organ preservation is profound. This study also produced one of the longest average survival times for organ preservation.

Animals↗

Nicotine-induced skeletal muscle vasodilation is mediated by release of epinephrine from nerve terminals.

To determine the role of sympathetic innervation on nicotine-induced alterations in peripheral (hindlimb) blood flow in the pentobarbital-anesthetized dog, one hindlimb was acutely denervated and remained attached to the body by only the femoral artery and vein, whereas the contralateral limb remained innervated and intact. Measurements were made of aortic pressure, femoral artery and venous pressures, femoral artery flow, and plasma catecholamine levels during intravenous systemic infusion of nicotine. The response to nicotine (9-36 micrograms.kg-1.min-1) on the denervated side was a transient increase followed by a persistent decrease in flow and increase in vascular resistance. The response in the innervated limb was a large increase in blood flow and decrease in vascular resistance. The vasoconstrictor and vasodilator responses could be abolished by pretreatment with both propranolol and phentolamine. The vasodilator response could not be abolished by cholinergic or histaminergic receptor antagonism. Hexamethonium abolished all systemic and peripheral responses to nicotine. Desipramine selectively abolished the vasodilator response in the innervated hindlimb. The vasodilator and vasoconstrictor responses could be mimicked with systemic or local administration of epinephrine. We conclude that, in the hindlimbs of dogs, nicotine stimulates the release of epinephrine from nerve terminals and/or tissue stores to activate beta 2-adrenoceptors and promote vasodilation in skeletal muscle of innervated preparations.

Adrenalectomy↗

Eighteen to 37 hours' preservation of major organs using a new autoperfusion multiorgan preparation.

A new autoperfusion preparation was used to preserve six major organs simultaneously. In 7 Yorkshire white swine, the heart and lungs were separated and removed with the liver, pancreas, duodenum, and both kidneys en bloc while they were self-perfused. Fresh blood, glucose, electrolytes, heparin sodium, methylprednisolone, and a fat emulsion (Soyacal) were infused through the portal vein. No inotropic drugs were necessary. The organs survived for 18 to 37 hours (average survival, 24.6 +/- 2.7 hours [+/- standard error of the mean]). Aortic systolic pressure ranged from 78.5 +/- 5.5 to 98.7 +/- 11.8 mm Hg. Arterial oxygen tension ranged from 206 +/- 23 to 266 +/- 15 mm Hg and arterial carbon dioxide tension, from 20.1 +/- 2.7 to 32.1 +/- 4.9 mm Hg. Blood lactic acid levels decreased from 8.75 +/- 2.06 to 5.50 +/- 2.45 mmol/L at 24 hours. Urine output ranged from 25 to 82 mL/h. Blood urea nitrogen levels decreased from 9.17 +/- 0.59 to 4.67 +/- 1.08 mg/dL. Blood creatinine levels decreased from 1.34 +/- 0.10 to 0.57 +/- 0.22 mg/dL. Serum glutamicoxaloacetic transaminase levels increased from 73.4 +/- 26.3 to 194 +/- 179.5 U/L and serum glutamic-pyruvic transaminase levels, from 44.8 +/- 5.7 to 91 +/- 66.4 U/L. Red blood cell count ranged from 6.94 +/- 0.58 to 13.23 +/- 2.30 x 10(6)/microliters. Lung wet/dry weight ratios changed from 5.79 +/- 0.17 at the beginning to 6.25 +/- 0.16 at 24 hours. The technique for simultaneous multiorgan preservation presented here is simple, effective, and highly reproducible. This study appears to have produced one of the longest average survival times for autoperfusion.

Animals↗

Response of the arteriolar network in rat cremaster muscle to intraarterial infusion of nicotine.

The response of the arteriolar network in rat cremaster muscle to continuous intraarterial infusion of nicotine was studied. Measurements were made of mean femoral arterial pressure, inside vessel diameter, red blood cell velocity and volumetric flow rate in each of four series-coupled arteriolar segments. Nicotine was continuously infused in a cumulative fashion in doses of 12.5, 25, 50 and 100 micrograms/kg/min. After a 10 min infusion of each dose, measurements were made again in each arteriole and compared with the values obtained prior to infusion of nicotine. Arterial pressure increased in a graded fashion with increasing dose of nicotine up to 50 micrograms/kg/min. The smaller arterioles demonstrated a dose dependent vasoconstriction and reduction in flow rate which were maximal at a dose of 50 micrograms/kg/min. In another series of experiments, the microvascular responses to nicotine infusion were obtained in the acutely denervated microvasculatured. The nicotine-induced flow reduction was significantly diminished by denervation. In a separate series of experiments nicotine was infused at doses of 25 and 50 micrograms/kg/min, and plasma catecholamine concentrations were determined. Plasma norepinephrine and epinephrine were significantly elevated at only the higher dose. Responses in denervated tissues suggest that plasma catecholamine concentrations were approximately threshold for arteriolar responses. It is concluded that the nicotine-induced flow reduction in rat skeletal muscle is due primarily to enhanced release of norepinephrine from vasomotor nerves with little or no influence from circulating catecholamines.

Animals↗