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P Glynn

Publications and source records attributed to P Glynn.

At least 19 recordsLinked to original sources

The catalytic domain of human neuropathy target esterase mediates an organophosphate-sensitive ionic conductance across liposome membranes.

In humans and other vertebrates, reaction of organophosphates with a neuronal membrane protein, neuropathy target esterase (NTE), initiates events which culminate in axonal degeneration. The initiation process appears to involve modification of a property of the protein distinct from its esterase activity, subsequent to formation of a negatively charged adduct with the active site serine residue. Here, we show that membrane patches from liposomes containing NEST, a recombinant hydrophobic polypeptide comprising the esterase domain of human NTE, display a transmembrane ionic conductance with both stable and high-frequency flickering components. An asymmetric current-voltage relationship suggested that ion flow was favoured in one direction relative to the membrane and its associated NEST molecules. Flow of anions was slightly favoured compared with cations. The flickering current formed a much larger proportion of the overall conductance in patches containing wild-type NEST compared with the catalytically inactive S966A mutant form of the protein. The conductance across patches containing NEST, but not those with the S966A mutant, was significantly reduced after adding neuropathic organophosphates to the bathing medium. By contrast, non-neuropathic covalent inhibitors of the catalytic activity of NEST did not reduce NEST-mediated conductance. Future work may establish whether NTE itself mediates an organophosphate-sensitive ion flux across intracellular membranes within intact cells.

Carboxylic Ester Hydrolases↗

Membrane association of and critical residues in the catalytic domain of human neuropathy target esterase.

Neuropathy target esterase (NTE) is an integral membrane protein in vertebrate neurons and a member of a novel family of putative serine hydrolases. Here we show that NEST, a recombinant polypeptide expressed in Escherichia coli, reacts with an ester substrate and covalent inhibitors in a manner very similar to NTE. NEST comprises residues 727-1216 of human NTE, and site-directed mutagenesis revealed that serine 966 and two aspartate residues, Asp(1086) and Asp(960), are critical for catalysis. The results of mutating the 11 histidines in NEST suggest that NTE does not use a conventional catalytic triad. By reacting NEST with [(3)H]diisopropyl fluorophosphate, Ser(966) was confirmed as the active-site serine, and evidence was obtained that an isopropyl group is transferred from the Ser(966) adduct to an aspartate residue. Detergent was required both for solubilization of NEST from lysates of E. coli and during purification procedures. Catalytic activity was lost in detergent extracts, but was restored when purified NEST was incorporated into dioleoylphosphatidylcholine liposomes. Hydropathy analysis did not indicate the presence of membrane-spanning segments within the NEST sequence. However, biochemical evidence including detergent-phase separation experiments and the resistance of liposome-incorporated NEST to proteolysis indicated that, unlike most eukaryotic serine hydrolases, the catalytic domain of NTE has integral membrane protein properties.

Amino Acid Sequence↗

Neural development and neurodegeneration: two faces of neuropathy target esterase.

Neuropathy target esterase (NTE) is an integral membrane protein in vertebrate neurons. Recent evidence suggests that NTE plays an important role in neural development, possibly via involvement in a signalling pathway between neurons and glial cells. NTE is a member of a novel protein family, represented in organisms from bacteria to man. NTE comprises an N-terminal regulatory domain (with some sequence similarity to cyclic nucleotide-binding proteins) and a C-terminal catalytic domain: the latter has three predicted transmembrane segments and requires membrane-association for activity. In vitro, NTE potently catalyses hydrolysis of phenyl valerate: however, its physiological substrate is likely to be a metabolite of a much longer chain carboxylic acid, possibly associated with cell membranes. NTE was discovered originally as the primary target for those organophosphorus esters (OPs) which cause a delayed neuropathy with degeneration of long axons in peripheral nerves and spinal cord. Paradoxically, NTE's catalytic activity appears redundant in adult vertebrates. Neuropathic OPs react covalently with NTE in a rapid two-step process which not only inhibits catalytic activity but also leaves a negatively-charged OP group attached to the active site serine. The latter event is proposed to induce a toxic gain of function in NTE. OP-modified NTE somehow engenders a "chemical transection of the axon". In turn, this leads to calcium entry, elevation of axonal calpain activity and Wallerian-type degeneration. The net damage to peripheral nerve axons is a balance between ongoing degenerative and repair processes: the latter involve serine hydrolases which can be inhibited by the same OPs used to modify NTE.

Animals↗

Cloning and expression of the murine sws/NTE gene.

The Drosophila neurodegeneration gene swiss-cheese encodes a neuronal protein apparently involved in glia-neuron interaction and is homologous to human NTE, the molecular target of organophosphate-induced neuropathy. The isolated Msws/NTE gene is 96% identical to NTE. During development the Msws transcript is expressed in the embryonic respiratory system, different epithelial structures and strongly in the spinal ganglia. Postnatally, Msws mRNA is expressed in all brain areas, with an increasingly restrictive pattern. In adult mice expression is most prominent in Purkinje cells, granule cells and pyramidal neurons of the hippocampus and some large neurons in the medulla oblongata, nucleus dentatus and pons.

Amino Acid Sequence↗

Neuropathy target esterase.

Neuropathy target esterase (NTE) is an integral membrane protein present in all neurons and in some non-neural-cell types of vertebrates. Recent data indicate that NTE is involved in a cell-signalling pathway controlling interactions between neurons and accessory glial cells in the developing nervous system. NTE has serine esterase activity and efficiently catalyses the hydrolysis of phenyl valerate (PV) in vitro, but its physiological substrate is unknown. By sequence analysis NTE has been found to be related neither to the major serine esterase family, which includes acetylcholinesterase, nor to any other known serine hydrolases. NTE comprises at least two functional domains: an N-terminal putative regulatory domain and a C-terminal effector domain which contains the esterase activity and is, in part, conserved in proteins found in bacteria, yeast, nematodes and insects. NTE's effector domain contains three predicted transmembrane segments, and the active-site serine residue lies at the centre of one of these segments. The isolated recombinant domain shows PV hydrolase activity only when incorporated into phospholipid liposomes. NTE's esterase activity appears to be largely redundant in adult vertebrates, but organophosphates which react with NTE in vivo initiate unknown events which lead, after a delay of 1-3 weeks, to a neuropathy with degeneration of long axons. These neuropathic organophosphates leave a negatively charged group covalently attached to the active-site serine residue, and it is suggested that this may cause a toxic gain of function in NTE.

Amino Acid Sequence↗

Molecular cloning of neuropathy target esterase (NTE).

Covalent modification of NTE, a neuronal protein with serine esterase activity, by certain organophosphates (OP) initiates degeneration of long axons in the peripheral and central nervous system. Simple inhibition of NTE esterase activity does not initiate neuropathy; the latter requires aging of the OP bound to the catalytic serine residue so that a negatively-charged species is left attached to the active site. This may indicate that a non-esterase function of NTE is important for axonal maintenance. We have recently cloned NTE and shown that it is unrelated to any known serine hydrolases but contains a novel C-terminal domain which is conserved from bacteria to man. Furthermore, the catalytic serine is located within this domain at the centre of a helical hydrophobic segment of the polypeptide's secondary structure. The integrity of NTE would be severely compromised by the presence of a negatively-charged organophosphate moiety at this site. Implications for possible higher-order structures and functions for NTE are discussed.

Binding Sites↗

Expression of MMP-2 and MMP-9, their inhibitors, and the activator MT1-MMP in primary breast carcinomas.

Enhanced expression of the type IV collagenases MMP-2 and MMP-9, or lack of their inhibitors TIMP-1 and TIMP-2, has been associated with tumour invasion and metastatic potential in several experimental models. Regulation of enzyme activity is clearly a key step in tumour invasion, and recently a potent activator of MMP-2, the membrane-associated MT1-MMP, has been described and characterized. Using an immunohistochemical approach, this study has examined the expression and distribution of the type IV collagenases, their inhibitors, and the activator MT1-MMP, in a series of 79 infiltrating ductal carcinomas (IDCs), 8 tubular carcinomas, and 27 infiltrating lobular carcinomas (ILCs). MMP-2 and MT1-MMP were expressed in more than 90 per cent of all carcinomas, with predominantly stromal and tumour cell cytoplasmic staining. However, reactivity localized on tumour cell membranes was recorded for MMP-2 in 34 per cent of cases with a monoclonal antibody and 55 per cent of cases with a polyclonal antibody, and for MT1-MMP in 68 per cent of tumours. In each case, this pattern of staining was significantly associated with the presence of lymph node metastasis (p=0.001, p=0. 008, and p=0.1, respectively). Both tumour cell and stromal staining was observed for TIMP-2, but there was no correlation with metastatic status. The 92 kD gelatinase MMP-9 was expressed by 68 per cent of carcinomas, either in the stromal compartment or by tumour cells. There was a highly significant correlation between the expression pattern of MMP-9 and tumour type, with ILCs displaying greater frequency and more homogeneous cytoplasmic staining than IDCs (p=0.0004). Staining for TIMP-1 was seen in the stroma and also in relation to small blood vessels, with more than 90 per cent of tumours showing this staining pattern using a polyclonal antibody. This study indicates distinct patterns of expression for different MMPs and demonstrates the potential importance of the MMP-2/MT1-MMP system in breast tumour progression. The association of MMP-9 with the infiltrating lobular phenotype may reveal novel mechanisms of control for this metalloproteinase.

Analysis of Variance↗

Vesnarinone and amrinone reduce the systemic inflammatory response syndrome.

OBJECTIVE: The systemic inflammatory response is an important cause of organ dysfunction. The present study tested the hypothesis that 2 clinically used agents, amrinone and vesnarinone, would decrease inflammation and cardiac dysfunction in a relevant model of systemic inflammatory response activation. METHODS: Rabbits received intravenous endotoxin, alone or in conjunction with amrinone or vesnarinone. Systemic effects were assessed by death, fever, behavior, and acidosis. Measures of inflammatory signaling were (1) plasma tumor necrosis factor-alpha and interleukin-1 beta production, (2) lung tissue myeloperoxidase activity, and (3) myocardial inducible nitric oxide synthase activity. Indices of systolic and diastolic myocardial function were measured in Langendorff-perfused hearts. RESULTS: Vesnarinone, in particular, reduced mortality rates (19% vs 61% for lipopolysaccharide alone, P =.01) and acidosis in lipopolysaccharide-treated rabbits. Both agents markedly reduced systemic tumor necrosis factor and interleukin-1 concentrations, lipopolysaccharide-mediated effects on myocardial systolic and diastolic function and on myocardial inducible nitric oxide synthase activity. Vesnarinone, but not amrinone, (1) decreased fever and lethargy, consistent with decreased central nervous system effects of endotoxin, and (2) decreased lung leukocyte infiltration. CONCLUSIONS: Vesnarinone and amrinone, which are used clinically for their inotropic and vasodilating properties, may be useful to limit inflammatory activation and consequent organ dysfunction. Structure-activity and/or pharmacokinetic between the compounds may be important, particularly in preventing inflammatory signaling within certain tissues.

Adjuvants, Immunologic↗

Circulating interleukin 6 and interleukin 10 in community acquired pneumonia.

BACKGROUND: Inflammatory cytokine concentrations correlate with severity of sepsis. We hypothesised that patients with community acquired pneumonia (CAP) associated with systemic inflammatory response syndrome (SIRS) would have greater interleukin 6 (IL-6) production due to activation of the inflammatory cytokine cascade, matched by a significant anti-inflammatory cytokine response. Interleukin 10 (IL-10) was evaluated as a potential surrogate marker of severity of sepsis in CAP and age related impairment of the cytokine response was studied in elderly patients with CAP. METHODS: Circulating immunoreactive IL-6 and IL-10 levels were measured in 38 patients with CAP subdivided into a group fulfilling the criteria for SIRS (n = 28) and a non-SIRS group (n = 10) in a variety of age groups and correlated with APACHE II scores. RESULTS: 80% had circulating IL-6 levels (median 46.7 pg/ml, range 4.6-27,000) and 60% had circulating IL-10 levels (median 15.5 pg/ml, range 2.5-765). Concentrations of both were significantly increased in patients with SIRS compared with non-SIRS patients. Those with activation of the inflammatory cytokine cascade (IL-6 positive) produced more IL-10 than IL-6 negative patients. Older patients had a similar cytokine response. Both cytokines correlated positively with APACHE II scores. CONCLUSIONS: This is the first demonstration of circulating IL-10 in CAP. A greater counter-inflammatory response in patients with SIRS and in IL-6 positive patients suggests a potential immunomodulatory role for IL-10 in controlling the inflammatory cytokine response in CAP. IL-10 concentrations correlate with severity of illness in CAP and may be of prognostic importance. There is no age related impairment in the cytokine response.

APACHE↗

Neutrophil CD11b and soluble ICAM-1 and E-selectin in community acquired pneumonia.

It was hypothesized that there would be an upregulation of systemic neutrophil CD11b expression in pneumonia. Expression of CD11b and concentrations of soluble intercellular adhesion molecule (ICAM)-1 and E-selectin were evaluated as potential surrogate markers of the severity of pneumonia. Possible age-related immunosenescence in relation to neutrophil CD11b expression in elderly patients with pneumonia was examined for. In patients with community-acquired pneumonia (n = 36) neutrophil CD11b expression was measured by flow cytometry and soluble ICAM-1 and E-selectin concentrations by enzyme-linked immunosorbent assay. An upregulation of neutrophil CD11b expression and increased soluble adhesion molecule concentrations on admission were confirmed, but the concentrations did not correlate with patient Acute Physiology and Chronic Health Evaluation II scores. Neutrophil CD11b expression was similar between elderly (age range 70-100 yrs) and younger (age range 18-70 yrs) patients with pneumonia. In conclusion, there is evidence of neutrophil and endothelial cell activation in pneumonia as indicated by upregulation of CD11b and increased soluble intercellular adhesion molecule and E-selectin, however, they do not appear to be good surrogate markers of severity of infection. Advanced age does not influence adhesion molecule expression in pneumonia.

APACHE↗

Increased myocardial calcium cycling and reduced myofilament calcium sensitivity in early endotoxemia.

BACKGROUND: Mechanisms of cardiac dysfunction during endotoxemia are multiple and their targets uncertain. This study tested the hypothesis that endotoxin (LPS) induces abnormal calcium-activated contractile force in the heart. METHODS: Adult rabbits were given LPS intravenously; 2 hours later hearts were studied in the Langendorff mode. Measurements included peak developed pressure (PDP), myocardial oxygen consumption (MVO2), high-energy phosphates by 31P-NMR, and beat-to-beat intracellular calcium (Cai) by fluorescence spectroscopy. Myofibrillar calcium sensitivity was assessed from the relationship of PDP to Cai and the rate of diastolic Cai removal (tau Ca) was quantified. RESULTS: Force-calcium relationships were markedly depressed in LPS hearts despite increased Cai. MVO2 was increased in parallel with increased Cai. Taken together, these data denote myofilament calcium insensitivity and mechanical inefficiency. tau Ca was markedly prolonged in LPS hearts, indicating impaired calcium reuptake and/or extrusion. High-energy phosphates and intracellular pH were unaffected by LPS; however, inorganic phosphate (Pi) was significantly increased. Dobutamine further increased Cai and MVO2 in LPS hearts without significantly improving calcium-activated force. Pyruvate, an inotrope that reduces Pi, significantly improved contractility in LPS hearts. CONCLUSIONS: Endotoxemia rapidly induced futile calcium cycling and reduced myofibrillar calcium sensitivity. This state was resistant to beta-agonist inotropic stimulation; inotropes that normalize the calcium-force relationship may be more effective.

Actin Cytoskeleton↗

Glucose transporter upregulation improves ischemic tolerance in hypertrophied failing heart.

BACKGROUND: Achieving successful myocardial preservation of hypertrophied hearts remains a difficult problem. Despite reportedly higher glycolytic potential, we have achieved limited benefit in hypertrophied hearts with strategies that successfully promote anaerobic glycolysis and long-term ischemic preservation in nonhypertrophied models. We therefore tested the hypotheses that (l) glucose transport into myocytes is a critical limiting factor in hypertrophied heart and (2) stimulation of glucose transport with vanadyl sulfate would improve postischemic recovery. METHODS AND RESULTS: Left ventricular hypertrophy in rabbits was created by aortic banding of 7- to 10-day-old rabbits. At 4 weeks of age, 1 group of animals received oral vanadyl sulfate for 3 to 4 weeks. Glucose transport (measured by the conversion of 2-deoxyglucose to 2-deoxyglucose-6-phosphate; 31P-nuclear magnetic resonance), myocardial glucose transporter content (GLUT-1 and GLUT-4 by immunoblotting), and functional recovery from ischemia-reperfusion (isolated perfused Langendorff model) were measured. Myocardial glucose transport rate was significantly reduced in hypertrophied hearts without significant reductions in glucose transporter content; these hearts were significantly less tolerant of ischemia-reperfusion than age-matched controls. Vanadyl sulfate normalized glucose transport rate and improved tolerance to ischemia-reperfusion so that postischemic function equaled that seen in controls. Lactate production during ischemia, an indication of anaerobic glycolysis, was significantly higher in hearts from vanadate-treated animals. CONCLUSIONS: Despite reportedly higher glycolytic enzyme activities, maximal glucose transport appears to be reduced and is rate limiting in hypertrophied heart. Stimulation of membrane glucose transport with vanadyl sulfate significantly improved glycolytic flux and ischemic preservation in hypertrophied hearts.

Adaptation, Physiological↗

Neuropathy target esterase and a homologous Drosophila neurodegeneration-associated mutant protein contain a novel domain conserved from bacteria to man.

The N-terminal amino acid sequences of proteolytic fragments of neuropathy target esterase (NTE), covalently labelled on its active-site serine by a biotinylated organophosphorus ester, were determined and used to deduce the location of this serine residue and to initiate cloning of its cDNA. A putative NTE clone, isolated from a human foetal brain cDNA library, encoded a 1327 residue polypeptide with no homology to any known serine esterases or proteases. The active-site serine of NTE (Ser-966) lay in the centre of a predicted hydrophobic helix within a 200-amino-acid C-terminal domain with marked similarity to conceptual proteins in bacteria, yeast and nematodes; these proteins may comprise a novel family of potential serine hydrolases. The Swiss Cheese protein which, when mutated, leads to widespread cell death in Drosophila brain [Kretzschmar, Hasan, Sharma, Heisenberg and Benzer (1997) J. Neurosci. 17, 7425-7432], was strikingly homologous to NTE, suggesting that genetically altered NTE may be involved in human neurodegenerative disease.

Amino Acid Sequence↗

Administration of fructose 1,6-diphosphate during early reperfusion significantly improves recovery of contractile function in the postischemic heart.

OBJECTIVES: Fructose-1,6-diphosphate is a glycolytic intermediate that has been shown experimentally to cross the cell membrane and lead to increased glycolytic flux. Because glycolysis is an important energy source for myocardium during early reperfusion, we sought to determine the effects of fructose-1,6-diphosphate on recovery of postischemic contractile function. METHODS: Langendorff-perfused rabbit hearts were infused with fructose-1,6-diphosphate (5 and 10 mmol/L, n = 5 per group) in a nonischemic model. In a second group of hearts subjected to 35 minutes of ischemia at 37 degrees C followed by reperfusion (n = 6 per group), a 5 mmol/L concentration of fructose-1,6-diphosphate was infused during the first 30 minutes of reperfusion. We measured contractile function, glucose uptake, lactate production, and adenosine triphosphate and phosphocreatine levels by phosphorus 31-nuclear magnetic resonance spectroscopy. RESULTS: In the nonischemic hearts, fructose-1,6-diphosphate resulted in a dose-dependent increase in glucose uptake, adenosine triphosphate, phosphocreatine, and inorganic phosphate levels. During the infusion of fructose-1,6-diphosphate, developed pressure and extracellular calcium levels decreased. Developed pressure was restored to near control values by normalizing extracellular calcium. In the ischemia/reperfusion model, after 60 minutes of reperfusion the hearts that received fructose-1,6-diphosphate during the first 30 minutes of reperfusion had higher developed pressures (83 +/- 2 vs 70 +/- 4 mm Hg, p < 0.05), lower diastolic pressures (7 +/- 1 vs 12 +/- 2 mm Hg, p < 0.05), and higher phosphocreatine levels than control untreated hearts. Glucose uptake was also greater after ischemia in the hearts treated with fructose-1,6-diphosphate. CONCLUSIONS: We conclude that fructose-1,6-diphosphate, when given during early reperfusion, significantly improves recovery of both diastolic and systolic function in association with increased glucose uptake and higher phosphocreatine levels during reperfusion.

Adenosine Triphosphate↗

Neuropathy target esterase: immunolocalization to neuronal cell bodies and axons.

Determination of the molecular mechanisms involved in organophosphate-induced axonopathy may help to elucidate those involved in normal axonal maintenance and in other neurodegenerative conditions. In this study we aimed to define the cellular distribution of neuropathy target esterase, the primary target protein for neuropathic organophosphates. A synthetic peptide corresponding to the sequence of a proteolytic fragment of neuropathy target esterase purified from chicken brain was used to raise a rabbit antiserum designated R28. The antiserum was shown by immunoprecipitation and western blotting of brain extracts to react with a polypeptide of the expected molecular size (155,000 mol. wt); this reaction was blocked by preincubating the antiserum with the immunizing peptide. Prominent intracellular immunostaining by R28 was seen in neuronal cell bodies and, in some cases, proximal axon segments in frozen sections of chicken brain cortex, optic tectum, cerebellum, spinal cord, and dorsal root ganglia. Cells with glial morphology were not immunostained, neither were normal sciatic nerve or motor end plates. However, 8-12 h following sciatic nerve ligation, immunoreactive material was seen to accumulate both proximal and, to a lesser extent, distal to the ligature, indicating that neuropathy target esterase undergoes fast axonal transport. No gross qualitative or quantitative changes in the above pattern of neuropathy target esterase immunoreactivity were detected in tissue obtained from chickens one or three days following treatment with a neuropathic organophosphate. The presence of neuropathy target esterase in essentially all neurons indicates that the selective vulnerability of long axons to neuropathic organophosphates is dependent on factors additional to the presence of the target protein.

Amino Acid Sequence↗

Fluorescence measurement of calcium transients in perfused rabbit heart using rhod 2.

Surface fluorescence spectroscopy of the beating heart to measure cytosolic calcium has been limited by the need to use ultraviolet excitation light for many of the commonly used calcium indicators. Ultraviolet light in the heart produces a high level of background fluorescence and is highly absorbed, limiting tissue penetration. Visible wave-length fluorescence dyes such as rhod 2 are available; however, the lack of spectral shift with calcium binding precludes the use of ratio techniques to account for changes in cytosolic dye concentration. We have developed a method for in vivo quantitation of cytosolic rhod 2 concentration that in conjunction with calcium-dependent fluorescence measurements permits estimation of cytosolic calcium levels in perfused rabbit hearts. Reflective absorbance of excitation light by rhod 2 loaded into myocardium was used as an index of dye concentration and the ratio of fluorescence intensity to absorbance as a measure of cytosolic calcium concentration. Endothelial cell loading of rhod 2 was found to be minimal (< 5%), and dye leak rate out of the cytosol was slow, with approximately 5% loss of dye fluorescence occurring between 10 and 30 min after dye loading. Rhod 2 loading into subcellular compartments, determined by manganese quenching, was also minimal (< 5%). The dissociation constant of rhod 2 for calcium was measured in vitro to be 500 nM, and this value increased to 710 nM in the presence of 0.5 mM myoglobin. On the basis of this value and in vivo fluorescence measurements, cytosolic calcium concentration in the rabbit heart was found to be 229 +/- 90 nM at end diastole and 930 +/- 130 nM at peak systole, with peak fluorescence preceding peak ventricular pressure by approximately 40 ms. This technique should facilitate detailed analysis of calcium transients from the whole heart.

Animals↗

Adenosine prevents protein kinase C activation during hypothermic ischemia.

BACKGROUND: The cardioprotective properties of exogenous and endogenously produced adenosine during ischemia have been shown previously. The models used to demonstrate the efficacy and mechanism of effect have been primarily of normothermic ischemia where adenosine was given pre-ischemia in an effort to mimic the preconditioning phenomena. The proposed mechanisms responsible for the protective effects of adenosine include A2-receptor mediated vasodilation, A1-receptor mediated improvement of glycolysis during ischemia and early reperfusion, and interaction with protein kinase C (PKC) pre-ischemia. This study was designed to assess the dose-dependent effects of adenosine on myocardial recovery after prolonged hypothermic ischemia. METHODS AND RESULTS: Using an isolated Langendorff perfused rabbit heart model, we subjected hearts to 8 hours of hypothermic ischemia with crystalloid cardioplegia containing adenosine 0, 0.01, 0.25, or 5 mmol/L followed by reperfusion. Pre- and postischemic (30 minutes of reperfusion) diastolic and developed pressure were compared among the groups. Translocation of PKC from cytosol to membrane, tissue levels of ATP, and total lactate production during ischemia were also determined. ATP levels at end-ischemia were higher in all adenosine-treated hearts, along with significantly enhanced anaerobic glycolysis as measured by total lactate production. Recovery of left ventricular diastolic pressure and developed pressure, however, were improved significantly only in hearts exposed to higher adenosine concentrations (0.25 and 5 mmol/L). The higher dose adenosine cardioplegia also prevented translocation of PKC from cytosol to membrane during ischemia. CONCLUSIONS: We conclude that adenosine provides significant protection of the ischemic myocardium during prolonged hypothermic ischemia and that 0.25 mmol/L adenosine was equally as protective as 5 mmol/L. The mechanism of protection is most likely not related to ATP preservation or enhanced glycolysis but may be caused by prevention of PKC translocation during ischemia.

Adenosine↗