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J C Cleveland

Publications and source records attributed to J C Cleveland.

At least 55 records · Page 3Linked to original sources

Antibody-mediated neutrophil depletion preserves pulmonary vasomotor function.

Neutrophil depletion is commonly used to examine the role of neutrophils in lung injury. However, the effect of neutrophil depletion per se on mechanisms of pulmonary vascular smooth muscle relaxation is unknown. The purpose of this study was to examine the effect of neutropenia on the following mechanisms of cGMP-mediated pulmonary vasorelaxation: (1) receptor-dependent endothelium-dependent relaxation (response to acetylcholine (ACh)), (2) receptor-independent endothelium-dependent relaxation (response to the calcium ionophore A23187), and (3) endothelium-independent relaxation (response to sodium nitroprusside (SNP)). Neutropenia (<75 neutrophils/mu l) was induced with anti-neutrophil antibody serum 24 hr prior to lung harvest in five rats. Saline-injected rats were controls (n = 5). Dose-response curves to ACh, A23187, and SNP were generated in isolated pulmonary artery rings preconstricted with phenylepherine. Statistical comparison was performed using one-way ANOVA with post-hoc Bonferroni-Dunn, and P < 0.05 was accepted as significant. Relaxation to ACh, A23187, and SNP was complete in both control and neutropenic rats. Thus, antibody-mediated depletion does not impair endothelial-dependent or -independent cGMP-mediated pulmonary vasorelaxation.

Acetylcholine↗

Microtubules regulate pulmonary vascular smooth muscle contraction.

Microtubules are ubiquitous in eukaryotic cells. However, the role of microtubules in the mechanisms of pulmonary vascular smooth contraction has not previously been described. The purpose of this study was to examine the effect of microtubular inhibition (vinblastine) on the following mechanisms of pulmonary vascular smooth muscle contraction in rats using isolated pulmonary artery rings: (1) receptor-independent, calcium-dependent contraction via smooth muscle cell depolarization (response to KCl); (2) receptor-dependent, calcium-dependent contraction via alpha 1-adrenergic receptor stimulation (response to phenylephrine, PE); (3) receptor-dependent, calcium-independent contraction via thromboxane A2 receptor stimulation (response to the thromboxane mimetic, U-46619). Rats were studied 4 days after administration of vinblastine (750 micrograms/kg i.v.). Concentration-response curves were generated for KCl (5 mM to 100 mM) and for PE and U-46619 (10(-9) to 10(-4) M) (n = 8 rings/4 rats per group). Saline injected rats were controls. Pulmonary vascular smooth muscle contraction by calcium-dependent and -independent mechanisms was significantly increased following microtubular inhibition. These findings suggest that microtubules have an important role in the response of pulmonary vascular smooth muscle to vasoconstricting agonists.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

A single endotoxin challenge induces delayed myocardial protection against infarcation.

Sublethal endotoxemia attenuates cardiac functional injury from global ischemia but it is unknown whether endotoxemia can protect myocardium against infarction. Furthermore, increases in myocardial catalase and heat shock protein (HSP) following endotoxemia have been associated with cardiac ischemic protection. We therefore hypothesized that a 72-hr pretreatment with endotoxin (ETX) would reduce myocardial tissue necrosis in association with augmented catalase activity and stress protein expression. Rabbits were treated with normal saline or lipopolysaccharide (Salmonella typhimurium) at 10, 5, and 1 microgram/kg doses. Three days after saline or ETX injection they were subjected to 45 min of coronary artery occlusion followed by 3 hr of reperfusion. Area of necrosis (tetrazolium staining) was normalized to anatomic risk zone size (Evans blue staining). Catalase activity was measured by a standard assay and HSP 72 was assessed by immunohistochemistry. During regional ischemia and reperfusion there were no differences in heart rate or mean arterial blood pressure between groups. ETX treated rabbits had the same risk zone size as controls. Infarct size was reduced in the ETX treated rabbits at the 10 and 5 microgram/kg doses compared with control rabbits (17.5 +/- 1.5% and 22.2 +/- 3.1% vs 45.3 +/- 2.5%; P < 0.05) but no protective effect was observed at the 1.0 micrograms/kg dose (38.0 +/- 4.6%; P > 0.05 vs control). Catalase activity was not different between control and ETX (5 microgram/kg) treated groups (997.8 +/- 59.1 U/g vs 1099.6 +/- 69.3 U/g myocardium; P > 0.05) but endotoxin induced expression of myocardial HSP 72. We conclude that a single challenge with endotoxin can induce delayed myocardial protection against infarction in vivo. This delayed cardioprotective response involves enhanced stress protein expression without changes in myocellular catalase activity.

Animals↗

Alpha-adrenergic preservation of myocardial pH during ischemia is PKC isoform dependent.

alpha-adrenergic stimulation of patients with ischemic heart disease should intuitively impose a destructive stress. However, therapeutic alpha1-adrenergic receptor mediated cardioadaptation prior to myocardial ischemia protects ventricular mechanical function, promotes electrophysiologic stability, and preserves myocyte viability. Prior to an anticipated cardiac ischemic insult, alpha1-adrenergic preconditioning attenuates ischemic myocardial acidosis by a protein kinase C-(PKC) dependent mechanism. The alpha1-adrenoceptor can directly stimulate calcium-independent nPKC isoforms via diacylglycerol (DAG) or indirectly stimulate calcium-dependent cPKC isoforms through the release of intracellular calcium via inositol triphosphate, (IP3). We hypothesized that alpha1-adrenergic limitation of ischemic acidosis is mediated by the family of calcium-dependent PKC isoforms. [31P]NMR spectra were obtained in isolated, buffer perfused rat hearts treated with alpha1-adrenergic stimulation [phenylephrine (PE) 50 microM, 2 min]; PKC blockade [chelerythrine chloride, (Chel) 20 microM]; or stearoyl-arachidonoyl glycerol (SAG, a DAG analogue, 100 microM, 2 min) administered 10 min prior to ischemia. Control hearts were perfused under normoxic conditions for 20 min. All hearts were then subjected to global ischemia (20 min, 37.5 degrees C). Developed pressure (DP) and heart rate were recorded continuously. pHi was obtained from chemical shift of inorganic phosphate. Immunohistochemical staining was utilized to delineate the translocation and activation profiles of specific PKC profiles established with each stimulus. Pre-ischemic alpha1-adrenergic stimulation did attenuate the myocellular hydrogen ion accumulation during sustained normothermic ischemia (6.90 +/- 0.13 vs control 6.54 +/- 0.10; P < 0.05). General PKC inhibition abrogated this effect (end-ischemic pH 6.17 +/- 0.10; P < 0.05 vs control and PE). Ischemic acidosis was not attenuated following selective nPKC stimulation (SAG, 6.48 +/- 0.08; NS vs control). Myocellular immunohistochemical staining revealed translocation of the calcium-independent PKC-epsilon isoform in the calcium-dependent PKC (SAG) group, but not in response to alpha1-adrenergic stimulation. The results suggest that (1) alpha1-adrenoceptor stimulation limits ischemic acidosis, (2) alpha1-adrenergic stimulated attenuation of ischemic acidosis is PKC dependent, (3) direct nPKC stimulation with SAG does not limit ischemic acidosis, and (4) SAG stimulates nPKC-epsilon isoform activation where alpha1-adrenergic stimulation does not. We conclude that alpha1-adrenergic stimulation limits ischemic acidosis by a cPKC-dependent mechanism and that the mobilization of the IP3 arm by receptor stimuli suppresses PKC-epsilon thus permitting the limitation of ischemic acidosis.

Alkaloids↗

Differential effects of adenosine preconditioning on the postischemic rat myocardium.

Ischemic preconditioning describes the phenomenon of endogenous myocardial protection against sustained ischemia-reperfusion injury (I/R). Although the complex stimulus of transient ischemia induces global myocardial protection against acidosis, infarction, and stunning, it is unknown whether select components of transient ischemia (e.g., adenosine) are responsible for different aspects of protection. To study this, isolated rat hearts were treated with adenosine (125 microM coronary concentration) or vehicle 10 min prior (preconditioning) to global myocardial I/R (20 min/40 min; 37 degrees C). To determine whether adenosine affects stunning, continuous functional data (rate pressure product and coronary flow) were obtained. To determine whether adenosine affects necrosis, creatine kinase (CK) loss into the coronary effluent was determined during postischemic reflow. To determine whether adenosine affects pH, continuous pH measurements were made using NMR. Results indicate that adenosine protects against stunning but provides only minimal protection against acidosis. Adenosine's protection of function occurs despite severe acidosis. Adenosine does not limit CK loss. We conclude that (1) adenosine preconditioning, a component of ischemic preconditioning, protects myocardial function following I/R, but does not provide global myocardial protection against I/R in the rat; (2) protection of function can occur despite severe ischemic acidosis; and (3) protection of function occurs despite equivalent postischemic CK loss. These results suggest that pharmacologic preconditioning may require multiple agents in order to provide global myocardial protection.

Acidosis↗

Cardiac surgical implications of calcium dyshomeostasis in the heart.

The prevalence of coronary artery disease renders myocardial ischemia a leading cause of morbidity and mortality. Both cardiac bypass operations and cardiac transplantation cause myocardial ischemia and reperfusion injury. Intracellular calcium transport and regulation are of paramount importance in both normal and pathologic myocardial states. Calcium regulation is integral to nearly every myocyte function, from early development to senescence. Normal intracellular calcium-mediated excitation-contraction coupling and abnormal patterns of calcium regulation leading to systolic/diastolic dysfunction are now therapeutically accessible to the cardiac surgeon. Additionally, altered Ca2+ transport protein gene expression is a mechanism of myocardial dysfunction. Therapeutic strategies involve receptor-mediated transduction of signals to intracellular metabolic sites. Evidence implicates protein kinase C as well as a potential therapeutic role for Ca2+. The potential for pharmacologic access to this protective state has abundant clinical appeal. The protective state (cardiac "preconditioning") is transient but is amenable as therapy against operation-related ischemic events.

Action Potentials↗

Optimal myocardial preservation: cooling, cardioplegia, and conditioning.

Myocardial preservation techniques have evolved in conjunction with cardiac surgery and currently offer substantial protection against myocardial injury. We propose that cardiac preconditioning, a robust, endogenous mechanism of cardioprotection, is emerging as an important adjunct to current cardioplegic techniques. By reviewing the physiologic basis for current cardioplegic strategies, and understanding the cardioprotective benefits of preconditioning, we postulate that cardiac preconditioning may represent an important, clinically accessible component of myocardial protection.

Animals↗

Cardiac preconditioning with calcium: clinically accessible myocardial protection.

Cardiac preconditioning is mediated by protein kinase C. Although endogenous calcium is a potent stimulus of protein kinase C, it remains unknown whether preischemic administration of exogenous calcium can induce protein kinase C-mediated myocardial protection against ischemia-reperfusion injury. To study this, calcium chloride was administered retrogradely through the aorta at a rate 5 nmol/min for 2 minutes to isolated perfused rat hearts 10 minutes before a 20-minute ischemia and 40-minute reperfusion insult. Calcium-mediated cardioadaptation was then linked to protein kinase C by means of the protein kinase C inhibitor chelerythrine (20 mumol.L-1.2 min-1). To determine whether exogenous calcium administration induces protein kinase C translocation and activation, immunohistochemical staining for the calcium-dependent protein kinase C isoform alpha was performed on adjacent 5 microns myocardial sections with and without calcium chloride treatment. Results indicated that preischemic calcium chloride administration improved myocardial functional recovery, as determined by enhanced developed pressure, improved coronary flow, reduced end-diastolic pressure, and decreased creatine kinase leakage during reperfusion. Beneficial effects of calcium chloride were eliminated by concurrent protein kinase C inhibition. Immunohistochemical staining for the alpha isoform of protein kinase C demonstrated that calcium chloride induces translocation of this isoform from the cytoplasm to the sarcolemma, indicating that exogenous calcium administration activates this isoform. These results suggest that calcium chloride, a safe and routinely administered agent, can induce protein kinase C-mediated cardiac preconditioning. Calcium-induced cardioadaptation to ischemia-reperfusion injury may be promising as a clinically feasible therapy before planned ischemic events such as cardiac allograft preservation and elective cardiac operations.

Alkaloids↗

The obligate role of protein kinase C in mediating clinically accessible cardiac preconditioning.

BACKGROUND: Cardiac preconditioning is an adaptation of cardiomyocytes that promotes tolerance to a subsequent ischemic insult. Adenosine receptor signaling is proposed as a mediator of preconditioning, but its mechanism of protection remains unknown. We hypothesized that protection against hypoxia-reoxygenation (H/R) injury could be conferred in a rat ventricle by adenosine-mediated protein kinase C (PKC) activation and that adenosine-mediated cardioprotection could be extended to human ventricular muscle. METHODS: Isolated rat and human ventricular muscle (VM) strips were subjected to 30 minutes of hypoxia and 60 minutes of reoxygenation (H/R control). The VM was pretreated with 125 mumol/L adenosine, an adenosine antagonist ((p-Sulfophenyl) theophylline [SPT] 50 mumol/L) and adenosine (adenosine + SPT), or with a PKC inhibitor (chelerythrine, 10 mumol/L) and adenosine (adenosine + chelerythrine) before H/R Developed force (DF) and tissue creatine kinase (CK) activity were assessed at end reoxygenation. Human trabeculae were obtained from diseased explanted hearts at cardiac transplantation and were also subjected to H/R injury. Human VM was pretreated with adenosine (125 mumol/L) before H/R injury. Results are expressed as mean +/- standard error of mean. RESULTS: In the rat, adenosine pretreatment conferred protection of DF against H/R injury (adenosine, 62% +/- 6%; H/R control, 27% +/- 2%, p < 0.05). Adenosine + SPT or adenosine + chelerythrine eliminated the functional recovery conferred by adenosine. This recovery of contractile function was associated with greater tissue CK activity (adenosine, 415 +/- 40 units/gm; H/R control, 78 +/- 13 units/gm, p < 0.05). The protective effects of adenosine against H/R were present in the human ventricle and with recovery of DF in adenosine (66% +/- 5%) and H/R control (24% +/- 4%), p < 0.05. CONCLUSIONS: Adenosine, a clinically accessible agonist, induces protection against H/R injury through a PKC-mediated mechanism in the rat ventricle. Further, the protection conferred by adenosine against H/R extends to the human ventricle.

Animals↗

Vinblastine attenuates endotoxin-induced impairment of CGMP-mediated pulmonary vasorelaxation.

We tested the hypothesis that neutrophils contribute to endotoxin-induced impairment of endothelium-dependent and -independent cyclic guanosine monophosphate (cGMP)-mediated pulmonary vascular smooth muscle relaxation. Rats were studied 6 h after endotoxin (20 mg/kg, intraperitoneal) or saline (1 cc, intraperitoneal). Neutrophil-depleted rats were studied 4 days after administration of vinblastine (750 micrograms/kg, intravenous). Concentration-response curves were generated for acetylcholine and sodium nitroprusside in isolated pulmonary arterial rings (10(-9) M to 10(-6) M). The absolute neutrophil count of controls was 1050 +/- 206 neutrophils/mL, and the absolute neutrophil count of vinblastine-treated rats was 100 +/- 41 neutrophils/mL (p < .05 versus controls) and 25 +/- 25 neutrophils/mL in vinblastine-treated rats receiving endotoxin (p < .05 versus control and endotoxin). Endotoxin-induced impairment of endothelium-dependent and -independent cGMP-mediated pulmonary vasorelaxation was significantly attenuated by prior treatment with vinblastine. We conclude that neutrophils contribute to the pathogenesis of endotoxin-induced impairment of cGMP-mediated pulmonary vascular smooth muscle relaxation.

Acetylcholine↗

Constructive priming of myocardium against ischemia-reperfusion injury.

Ischemia and ischemic stress hormones induce endogenous cardiac protection against ischemia-reperfusion (I/R) injury. Although ischemia and ischemic stress hormones are accompanied by increased [Ca2+], it is unknown whether either opening of the sarcoplasmic reticular ryanodine Ca2+ channel (SR RyR) or inhibition of Ca2+ uptake by the sarcoendoplasmic reticular Ca(2+)-ATPase (SERCA) prior to I/R can similarly induce post-I/R functional protection. To study this, isolated, crystalloid perfused Sprague-Dawley rat hearts were used to assess the effects of inducing a pre-ischemic [Ca2+]i load by either priming the SR RyR with ryanodine (Ry, 5 nM/2 min) or by transient blockade of the SERCA 10 min prior to global I/R (20 min). A pre-ischemic Ca2+ load by either SR RyR activation or SERCA blockade improved post-ischemic myocardial functional recovery (developed pressure, end diastolic pressure, coronary flow, heart rate, and left ventricular creatine kinase activity). We conclude that 1) Ca(2+)-induced myocardial functional protection involves the SR Ca2+ source, 2) a pre-ischemic Ca2+ load induced with either Ry or thapsigargin constructively primes against myocardial I/R injury, and 3) Ca(2+)-induced cardioadaptation to I/R injury may have important therapeutic implications prior to planned ischemic events such as cardiac allograft preservation and cardiac bypass surgery.

Animals↗

Ischemic preconditioning in human and rat ventricle.

The signal transduction of ischemic preconditioning involves activation of endogenous receptor-based systems, including alpha 1-adrenoceptors and adenosine receptors. Whereas preconditioning protects against ischemia-reperfusion injury, it is unknown whether this protective strategy might be useful clinically. Furthermore, human atrium has been successfully preconditioned, but it is unknown whether human ventricle can be functionally protected against hypoxia-reoxygenation. To study these questions, isolated rat ventricle and human ventricular trabeculae were suspended in an organ bath and subjected to 30 min of hypoxia and 60 min of reoxygenation. In the rat ventricle, preconditioning was induced by 5 min of rapid pacing at 3 Hz in hypoxic buffer without glucose (simulated ischemia), alpha 1-adrenoceptor stimulation (phenylephrine), or adenosine receptor stimulation (adenosine). In the human trabeculae the effects of preceding simulated ischemia and alpha 1-adrenoceptor and adenosine receptor stimulation were examined against hypoxia-reoxygenation. In the rat, pretreatment with simulated ischemia and alpha 1-adrenoceptor and adenosine receptor stimulation improved recovery of developed tension (56 +/- 3, 56 +/- 4, and 58 +/- 2%, respectively) compared with control trabeculae (25 +/- 2%) after hypoxia-reoxygenation (P < 0.05). In human trabeculae, simulated ischemic preconditioning and alpha 1-adrenoceptor and adenosine receptor stimulation augmented recovery of developed tension (65 +/- 5, 59 +/- 6, and 60 +/- 3%, respectively) compared with control (29 +/- 2%) after hypoxia-reoxygenation (P < 0.05). We conclude that functional cardioadaptation (preconditioning) against hypoxia-reoxygenation injury in rat and human myocardium exists and that alpha 1-adrenergic and adenosine receptor signaling participate in conferring this protection.

Adenosine↗

Protein kinase C mediates Ca2(+)-induced cardioadaptation to ischemia-reperfusion injury.

Although protein kinase C (PKC)-mediated cardioadaptation to ischemia-reperfusion (IR) is accompanied by increased intracellular Ca2+ concentration, it is unknown whether a preischemia sarcoplasmic reticulum (SR) Ca2+ release affects PKC-mediated post-IR functional protection. To study this, crystalloid-perfused (Langendorff) Sprague-Dawley rat hearts were used to assess the effects of a ryanodine (Ry)-induced preischemia Ca2+ load (Ry, 5 nM/2 min, retrograde coronary) 10 min before global IR (20 min). Ry was administered with and without each of two different PKC inhibitors (20 microM chelerythrine and 150 nM bisindolylmaleimide I-HCl). Ry improved myocardial functional recovery (developed pressure, end-diastolic pressure, coronary flow, and creatine kinase activity), which was eliminated after PKC inhibition. Immunohistochemical staining for PKC isoforms demonstrated that Ry induces specific PKC translocation of alpha-, delta-, and zeta-isoforms. We conclude that 1) a preischemia Ca2+ load from the SR results in post-IR myocardial functional protection 2) Ca(2+)-induced functional protection is PKC regulated via the translocation of specific isoforms, and 3) Ca(2+)-induced cardioadaptation to IR injury may have important therapeutic implications prior to planned ischemic events such as cardiac allograft preservation and cardiac bypass surgery.

Adaptation, Physiological↗

Potential gene therapy strategies in the treatment of cardiovascular disease.

Gene therapy is the introduction of new genetic material into somatic cells to synthesize missing or defective proteins. Efficient methods for the introduction of genetic material into cells are available, both in vitro and in vivo. These strategies involve chemical, physical, and viral-mediated mechanisms of gene transfer. Application of these gene transfer techniques has led to the development of potential gene-based treatment strategies that could combat vascular and myocardial disease. Gene therapy in the treatment of cardiovascular disease promises to alter atherosclerotic risk factors, prevent vascular thrombotic disease, retard progression of disease in the peripheral vasculature, provide drug delivery systems, and prevent myocardial infarction in patients with coronary artery disease. This exciting technology will eventually become the ultimate intervention in the treatment of cardiovascular disease.

Arteriosclerosis↗

Ischemic mitral valve disease: classification and systemic approach to management.

One hundred sixty-nine consecutive patients with coronary artery disease and mitral valve pathology operated during the past 5 years were reviewed (98% follow-up). Eighty-seven patients underwent mitral valve repair and 82 mitral valve replacement with concomitant coronary artery bypass grafting (number of AV grafts = 3). An analysis of these patients (age range 48 to 92 [mean 69]) and a classification based on anatomic pathology of the mitral apparatus is presented. Flexible ring annuloplasty was utilized in all repairs and chordal-sparing techniques in all valve replacements. There was equal mortality for replacement and repair in this subset of high risk patients. Structural valve dysfunction of repaired valves was more common (5/81 [6.0]) than primary tissue valve failure after mitral valve replacement (0 patients).

Aged↗

Identification of candidate genes for a factor regulating body weight in primates.

A weight gain of 20-30% above baseline, induced by gastrostomy overfeeding of subhuman primates or gavage overfeeding of rats, was found to completely suppress voluntary food consumption. When overfeeding was discontinued, body weight and oral intake returned in a coordinated fashion to baseline or "set point" values. This regulatory response could have been due to a circulating peptide that was secreted by adipocytes in proportion to the total body energy store and that mediated satiety at the level of the central nervous system. To search for this factor, a subtractive cDNA cloning strategy was developed, permitting the isolation of primate adipocyte genes with augmented expression in the overfed state. A 1.8-kb cDNA clone prepared by subtraction was found to hybridize to a 5-kb message expressed preferentially in the adipose tissue of overfed macaques and rats. This message, which was restricted in distribution among nonadipose tissues, was also detected in human subcutaneous fat. Candidate genes for satiety factors identified by this approach could be used in further studies of body weight regulation and obesity.

Adipose Tissue↗