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Biomedical subjects

A Banerjee

Publications and source records attributed to A Banerjee.

At least 235 records · Page 13Linked to original sources

Pulmonary vascular smooth muscle contraction.

The purpose of this study was to determine the response of pulmonary vascular smooth muscle to (1) cellular depolarization (response to KC1), (2) alpha 1-adrenergic receptor stimulation (response to phenylephrine, epinephrine, and norepinephrine), and (3) eicosinoid receptor stimulation (response to prostaglandin F 2 alpha, serotonin, and U46619). Isolated rat pulmonary artery rings were suspended on a fine wire tensiometer in individual organ chambers. After confirming endothelial integrity (response to acetylcholine), dose-response curves were constructed for each vasoactive agonist. The maximal developed tension as well as the dose required to produce 50% of maximal contraction (EC50) was determined for each agonist. The U46619, a stable thromboxane A2 mimetic, and prostaglandin F 2 alpha, (PGF 2 alpha) produced the greatest maximal developed tension in pulmonary vascular smooth muscle. This maximal contraction to U46619 and PGF 2 alpha, was the same as the maximal tension in response to cellular depolarization (KCI). The maximal tension developed to KCI and U46619 was significantly greater than to alpha 1-adrenergic receptor stimulation and serotonin, 5HT. The maximal tension developed to PGF 2 alpha was greater than the developed tension to 5HT. The dose response curves of alpha 1-adrenergic receptor stimulation and U46619 were shifted to the left compared to PGF 2 alpha and 5HT. This study demonstrates that U46619, and PGF 2 alpha produce the greatest maximal developed tension in pulmonary vascular smooth muscle. Furthermore, U46619 has the same potency as alpha 1-adrenergic receptor stimulation, which is significantly greater than 5HT and PGF 2 alpha. These data may be helpful in the delineation of the pathophysiology of pulmonary hypertension due to adult respiratory distress syndrome.

Adrenergic alpha-Agonists↗

Neutrophils are required for endotoxin-induced myocardial cross-tolerance to ischemia-reperfusion injury.

BACKGROUND: Although polymorphonuclear neutrophilic leukocytes (PMNs) contribute to oxidative stress after endotoxemia, it is unknown whether preischemic PMN induction is required for endotoxin-mediated myocardial resistance to ischemia-reperfusion (I/R). OBJECTIVE: To determine whether neutrophils mediate endotoxin-induced myocardial cross-tolerance to I/R. DESIGN AND INTERVENTIONS: Rats received sublethal endotoxin (0.5 mg/kg intraperitoneally) with and without rabbit anti-rat PMN antibody (anti-PMN antibody, 0.15 mL intravenously, to achieve an absolute neutrophil count of < 200/microL) or antibody alone, 24 hours prior to global myocardial I/R (20-40 minutes, Langendorff mode). SETTING: The University of Colorado Surgical Research Laboratories, Denver. MAIN OUTCOME MEASURES: Myocardial developed pressure, coronary flow, end diastolic pressure, and time to ischemic contracture were recorded with a pressure amplifier-digitizer (MacLab, AD Instruments Inc, Milford, Mass). Myocyte damage was assessed by determining creatine kinase leakage in the coronary flow effluent by creatine kinase assay. RESULTS: Sublethal endotoxin induced cross-tolerance to I/R, as demonstrated by improved recovered developed pressure and coronary flow, and decreased time to ischemic contracture, end diastolic pressure, and creatine kinase leak (P < .05, analysis of variance and Bonferroni-Dunn). Anti-PMN antibody administered prior to sublethal endotoxin abolished these protective effects (P < .05). Polymorphonuclear neutrophil leukocyte depletion alone failed to abrogate the deleterious effects of I/R. CONCLUSIONS: (1) Sublethal endotoxin induces myocardial cross-tolerance to I/R; (2) PMN induction is required for endotoxin-mediated myocardial resistance to I/R; and (3) while myocardial I/R injury is equally severe after antibody-mediated PMN depletion, endotoxin-induced tolerance to I/R does not occur in the neutropenic host.

Animals↗

Solid state and solution conformations of a helical peptide with a central Gly-Gly segment.

The influence of amino acids with contrasting conformational tendencies on the stereochemistry of oligopeptides has been investigated using an octapeptide Boc-Leu-Aib-Val-Gly-Gly-Leu-Aib-Val-OMe, which contains two helix-promoting Aib residues and a central helix-destabilizing Gly-Gly segment. Single crystal x-ray diffraction studies reveal that a 3(10)-helix is formed up to the penultimate Aib residue, at which point there is a helix reversal in the backbone, reminiscent of a C-terminal 6-->1 hydrogen bond. The curious feature in the crystal is the solvation of the possible 6-->1 bond by a CH3OH molecule, where the OH is inserted between O(3) and N(8) and participates in hydrogen bonds with both. The cell parameters are as follows: space group P2(1)2(1)2(1), a = 10.649 (4) A, b = 15.694 (5) A, c = 30.181 (8) A, R = 6.7% for 3427 data (magnitude of F0 > 3 sigma F) observed to 0.9 A. Nuclear magnetic resonance studies in CDCl3 using NH group solvent accessibility and nuclear Overhauser effects as probes are consistent with a 3(10)-helical conformation. In contrast, in (CD3)2SO, unfolding of the central segment results in a multiple beta-turn structure, with beta-turn conformations populated at residues 1-2, 3-4, and 6-7. CD studies in methanol-2,2,2-trifluoroethanol (TFE) mixtures also provide evidence for a solvent-dependent structural transition. Helical conformations are populated in TFE, while type II beta-turn structures are favored in methanol.

Chemical Phenomena↗

Omega amino acids in peptide design: incorporation into helices.

Incorporation of easily available achiral omega-amino acid residues into an oligopeptide results in substitution of amide bonds by polymethylene units of an aliphatic chain, thereby providing a convenient strategy for constructing a peptidomimetic. The central Gly-Gly segment of the helical octapeptide Boc-Leu-Aib-Val-Gly-Gly-Leu-Aib-Val-OMe(1) has been replaced by delta-amino-valeric acid (delta-Ava) residue in the newly designed peptide Boc-Leu-Aib-Val-delta-Ava-Leu-Aib-Val-OMe(2). 1H-nmr results clearly suggest that in the apolar solvent CDCl3, the delta-Ava residue is accommodated into a folded helical conformation, stabilized by successive hydrogen bonds involving the NH groups of Val(3), delta-Ava(4), and Leu(5). The delta-Ava residue must adopt a gauche-gauche-trans-gauche-gauche conformation along the central polymethylene unit of the aliphatic segment, a feature seen in an energy-minimized model conformation based on nmr parameters. The absence of hydrogen bonding functionalities, however, limits the elongation of the helix. In fact, in CDCl3, the folded conformation consists of an N-terminal helix spanning residues 1-4, followed by a Type II beta-turn at residues 5 and 6, whereas in strongly solvating media like (CD3)2SO, the unfolding of the N-terminal helix results in beta-turn conformations at Leu(1)-Aib(2). The Type II beta-turn at the Leu(5)-Aib(6) segment remains intact even in (CD3)2SO.CD comparisons of peptides 1 and 2 reveal a "nonhelical" spectrum for 2 in 2,2,2-trifluoroethanol.

Amino Acids↗

Predictors of successful pulmonary balloon valvuloplasty: 10-year experience.

At our institution, 55 infants and children (ages 0.3-21 yr, median 2.5 yr) underwent pulmonary balloon valvuloplasty between August 1983 and May 1993. Systolic pressure gradients fell acutely following balloon valvuloplasty from 63.5 +/- 24.8 mmHg (mean +/- standard deviation) to 26.7 +/- 12.9 mmHg (P < 0.001) with a decrease in systolic pressure ratio from 0.81 +/- 0.25 to 0.42 +/- 0.12 (P < 0.0001). Fifty of the 55 patients had long-term echocardiographic evaluation performed > 2 yr following balloon valvuloplasty. Thirty-four of the 50 patients (Group A; 68%) were classified as having successful (residual systolic gradients < 25 mmHg, ventricular systolic pressure ratios < 0.6) long-term outcomes. Their peak systolic gradients fell acutely from 58.8 +/- 16.6 mmHg to 22.7 +/- 11.2 mmHg (P < 0.001). At 4.6 +/- 2.3 yr postvalvuloplasty, peak instantaneous pressure gradients were 17.8 +/- 5.7 mmHg (P = ns vs. acute postvalvuloplasty). Fifteen of the 50 patients (Group B; 30%) had unsuccessful (residual systolic gradients > or = 25 mmHg and/or ventricular systolic pressure ratios > 0.6) long-term outcomes. Their peak instantaneous systolic gradients fell acutely from 76.5 +/- 33.1 mmHg to 36.6 +/- 11.4 mmHg (P < 0.05). At 3.8 +/- 1.7 yr postvalvuloplasty, peak instantaneous pressure gradients were 35.1 +/- 9.1 mmHg (P = ns vs. acute postvalvuloplasty). One 3-yr-old patient (Group C, 2%) required repeat balloon valvuloplasty on two separate occasions for recurrent stenosis. There was no significant prevalvuloplasty difference between Groups A and B with regard to age, weight, or Z scores of the pulmonary annuli or balloon/annulus ratio; however, patients in Group A had significantly lower prevalvuloplasty gradients and lower systolic pressure ratios than patients in Group B. Total systolic gradient reduction between patients with successful and unsuccessful outcomes was not significantly different (Group A: 36.1 +/- 16.6 mmHg; Group B: 41 +/- 22.3 mmHg). At long-term follow-up, patients in Group A had fewer symptoms and a significantly lower rate of electrocardiographic right ventricular hypertrophy than Group B patients. Successful outcomes defined by our criteria following balloon valvuloplasty were achieved in 68% of patients with greatest long-term success in patients with prevalvuloplasty systolic gradients < 60 mmHg and systolic pressure ratios < 0.8. Intervention at lesser systolic gradients (40-60 mmHg) appears indicated to achieve lower long-term gradients and fewer symptoms as total systolic gradient reduction by this technique is limited.

Adolescent↗

Brief communication: coaxial lines for multiphase power distribution.

A coaxial cable can be used to reduce the magnetic and electric fields that extend into environments in the vicinity of transmission lines and distribution lines and in-house or building wiring for power distribution systems. The use of the coaxial geometry may prove useful in cases where there are environmental concerns with respect to health effects and in cases where there is a need to run high-speed data communications in close proximity to power distribution systems.

Computer Systems↗

Norepinephrine-induced sustained myocardial adaptation to ischemia is dependent on alpha 1-adrenoceptors and protein synthesis.

The authors have shown that stimulation of cardiac alpha 1-adrenoceptors confers immediate cardioprotection in the isolated rat heart against post-ischemic dysfunction, and have recently demonstrated that in vivo treatment of rats with norepinephrine (NE) induces cardiac heat shock protein 72 and myocardial adaptation to ischemia 24 h after treatment. To characterize the delayed myocardial adaptive response induced by NE further, the present study examined its time course and effects of adrenoceptor antagonism and protein synthesis inhibition on this adaptive response during optimal myocardial protection. Rats were treated with NE (3.1 mumol/kg, i.p.) or normal saline (0.4 ml, i.p.), and hearts isolated at 2, 4, 24, 72 and 168 h after injection. Isolated hearts were subjected to 25 min of normothermic global ischemia and 40 min of reperfusion by the Langendorff technique, and left ventricular developed pressure (LVDP) was assessed. There was no difference in baseline LVDP among groups. Post-ischemic LVDP recovered to 44.7 +/- 2.1 mmHg in pooled saline control. LVDP was significantly improved in hearts isolated at 4, 24 and 72 h after injection of NE (66.3 +/- 3.8, 68.6 +/- 2.7 and 72.6 +/- 8.3 mmHg, respectively, P < 0.05 v control) but not in hearts isolated at 2 or 168 h. Effects of antecedent adrenoceptor antagonism and protein synthesis inhibition were examined in hearts isolated at 72 h after NE treatment. Prazosin pretreatment (2.4 mumol/kg, i.p.) abolished the delayed myocardial adaptive response induced by NE at 72 h (post-ischemic LVDP 48.3 +/- 6.1 mmHg, P > 0.05 v control) while propranolol pretreatment (3.4 mumol/kg, i.p.) had no effect (post-ischemic LVDP 67.3 +/- 3.7 mmHg, P < 0.05 v control). Cycloheximide pretreatment (3.6 mumol/kg, i.p.) also abolished the beneficial effect of NE at 72 h (post-ischemic LVDP 50.2 +/- 6.0 mmHg, P > 0.05 v control). In conclusion, administration of NE to rats can induce delayed and sustained cardioprotection against post-ischemic myocardial dysfunction. NE-induced myocardial adaptation to ischemia at 72 h is mediated by alpha 1-adrenoceptors and appears to require protein synthesis.

Adaptation, Physiological↗

Clinically accessible cell signaling: second messengers in sepsis and trauma.

Inflammatory mediators of trauma and sepsis transduce cellular events through cell surface receptors initiating intricate membrane and cytosolic reaction cascades that funnel through surprisingly few checkpoints in order to provoke a cellular response. As critical care surgeons, we can explore these cell signalling systems. The purpose of this article is to delineate the six known second messenger pathways relevant to surgical sepsis and trauma. Our comprehension of these signaling systems may offer us an opportunity to blunt post-traumatic cellular injury and promote a constructive response.

Animals↗

Hypoxia/reoxygenation of human endothelium activates PMNs to detach endothelial cells via a PAF mechanism.

Our previous in vivo studies have implicated phospholipase A2 activation and platelet-activating factor (PAF) production as an important mediator of neutrophil (PMN) priming after mesenteric ischemia/reperfusion. Furthermore, our in vitro studies demonstrate that PAF priming of PMN enhances PMN respiratory burst and increases PMN adherence to human umbilical vein endothelial cell cultures (HUVEC). Others have shown that cytokine stimulated HUVEC can activate quiescent PMNs to provoke endothelial cell (EC) monolayer disruption via EC detachment by a noncytolytic PMN protease mechanism. Hypoxia and reoxygenation (H/R) of HUVEC can also directly stimulate PAF production. Consequently, we hypothesized that HUVEC H/R can activate quiescent PMNs to disrupt the EC monolayer (detachment) through a PAF mediated mechanism. HUVEC were labeled with 51 chromium (51Cr) and subjected to 45 min hypoxia (95% N2/5% CO2). PMNs freshly isolated by Percoll gradient centrifugation were added to HUVEC and reoxygenated for 120 min. Additionally, H/R HUVEC with PMN pretreated with WEB2170 (a PAF receptor antagonist) was compared to control (non-H/R HUVEC incubated with PMNs). Wells were washed at end incubation, and adherent ECs counted. Detachment = [total counts - sample counts]/total counts X 100. H/R HUVEC plus PMN provoked a 29.3 +/- 1.6% detachment of EC compared to 9.3 +/- 2.9% detachment in control (non-H/R HUVEC with PMNs). In contrast, H/R HUVEC with PMNs preincubated with WEB2170 had 9.9 +/- 3.8% detachment of EC. In summary, HUVEC H/R activated quiescent PMNs to disrupt an EC monolayer (detachment) via a PAF mechanism.

Cell Adhesion↗

Reversible injury: creatinine kinase recovery restores bioenergetics and function.

In postischemia hearts, cytoplasmic creatinine kinase (CK) inactivation resulting from toxic oxygen metabolite injury may lead to bioenergetic and mechanical dysfunction. This study determines the relationship between CK activity, mechanical function, and bioenergetics during reperfusion (RP) after a reversible ischemic injury. Rat hearts pretreated after 12 hr without (CTRL) or with myristic acid (MA) underwent 10 min global, 37 degrees C ischemia followed by 10 or 40 min RP while developed pressure (DP) was monitored. Catalase and CK were assayed at preischemia. CK was also assayed at end ischemia and 10 and 40 min RP. 31 P nuclear magnetic resonance spectra assessed changes in phosphocreatinine (PCr) and adenosine triphosphate (ATP) concentration. Preischemic DP was 95 +/- 5 mm Hg. CTRL DP returned to 84 +/- 3 by RP10 and 88 +/- 6 by RP40 while MA hearts recovered fully by RP10 (90 +/- 2). Preischemic catalase activity was significantly increased in MA hearts (1217 +/- 36 U/g left ventricular tissue (LV) vs 1007 +/- 40 U/g LV, P < 0.01, MA vs CTRL). CTRL CK activity fell from 1870 +/- 75 to 1103 +/- 11 U/g LV at RP10, but rose to 1272 +/- 13 by RP40 (P < 0.01, RP10 vs RP40). MA hearts lost no CK activity during RP. By RP10, CTRL PCr/ATP ratio was elevated to 2.2 +/- 0.2 (P < 0.001) from a preischemic level of 1.7 +/- 0.4 and normalized by RP40, while MA hearts had a normal PCr/ATP throughout RP. Reversible RP injury transiently depresses mechanical function. Cytoplasmic CK damage during RP impairs PCr utilization, leading to a PCr overshoot. Functional recovery and metabolic recovery follow return of CK activity. Increased endogenous catalase preserves CK during RP, resulting in normal function and bioenergetics.

Adenosine Triphosphate↗

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↗

NO prevents neutrophil-mediated pulmonary vasomotor dysfunction in acute lung injury.

The purpose of this study was to examine the effect of administration of inhaled nitric oxide (NO) on lung neutrophil accumulation and pulmonary vascular endothelial cell function in endotoxin-induced acute lung injury. Mechanically ventilated rats were studied 4 hr after endotoxin (0.5 mg/kg IP). Inhaled NO (20 ppm) was administered for either the entire 4 hr after endotoxin (continuous group) or for only the first 2 of 4 hr after endotoxin (abbreviated group). Endothelial-dependent (acetylcholine, ACh) and -independent cGMP-mediated relaxation (nitroprusside, SNP) pulmonary vasorelaxation were studied in isolated pulmonary arterial rings. Lung neutrophil accumulation was determined by myeloperoxidase assay (MPO). Inhaled NO prevented endotoxin-induced lung neutrophil accumulation as well as pulmonary endothelial cell dysfunction. However, this protection required continuous administration of inhaled NO. We conclude that inhaled NO prevents neutrophil-mediated pulmonary vascular endothelial cell dysfunction in acute lung injury.

Acetylcholine↗

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↗

Norepinephrine induces cardiac heat shock protein 70 and delayed cardioprotection in the rat through alpha 1 adrenoceptors.

OBJECTIVE: Previous studies have demonstrated that norepinephrine (NE) confers immediate cardioprotection against ischemia and reperfusion injuries. The present study tests the hypothesis that in vivo treatment with NE induces delayed cardioprotection against postischemic dysfunction in the rat heart which is associated with expression of c-fos and heat shock protein (HSP) 70 in the myocardium. METHODS: Rats were treated with NE (3.1 mumol/kg, ip) and hearts isolated and perfused with a modified Langendorff technique 2 or 24 h after injection. Left ventricular developed pressure (LVDP) and left ventricular end-diastolic pressure (LVEDP) were recorded during 25 min normothermic global ischemia and 40 min reperfusion. Total RNA was extracted from left ventricular tissue at various time points and Northern hybridization was applied to detect c-fos and HSP70 mRNAs. Expression and distribution of c-fos and HSP72 proteins in the myocardium were examined by immunohistochemical staining. RESULTS: In vivo NE treatment improved postischemic recovery of both LVDP and LVEDP in the hearts isolated at 24 h after treatment but not in those isolated at 2 h. LVDP was 68.9 +/- 4.8 mmHg in NE 24 h group at the end of reperfusion in comparison to 43.6 +/- 2.9 mmHg in saline control group (P < 0.01). Pretreatment with prazosin abolished NE-induced cardioprotection while propranolol pretreatment had no effect. Northern analysis demonstrated rapid and transient increases in c-fos and HSP70 mRNAs in the myocardium after NE treatment. Accumulation of c-fos protein was observed at 3 h and increased amount of HSP72 protein was demonstrated at 24 h in the myocardium. Pretreatment of rats with prazosin eliminated NE-induced increase in cardiac HSP70 mRNA. CONCLUSIONS: The results suggest that in vivo treatment with NE upregulates the expression of c-fos and HSP70 in the myocardium and induces delayed protection against postischemic myocardial dysfunction in the isolated rat heart. Induction of both the expression of cardiac HSP70 and the delayed cardioprotection by NE appears to be mediated by alpha 1 adrenoceptors.

Adrenergic alpha-Antagonists↗

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↗