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M S Finkel

Publications and source records attributed to M S Finkel.

At least 37 records · Page 2Linked to original sources

Glucose and pyruvate regulate cytokine-induced nitric oxide production by cardiac myocytes.

Metabolic requirements for the production of nitric oxide (NO) by cytokine-stimulated neonatal rat cardiac myocytes (CM) were studied. CM were cultured for 48 h in media containing interleukin-1 beta (IL-1 beta) and free fatty acids. Removal of glucose from the media partially inhibited IL-1 beta-stimulated nitrite (NO2-) production [8.1 +/- 0.3 vs. 4.4 +/- 0.6 nmol.(1.25 X 10(5) cells)-1.48 h-1; P < 0.01; n = 12]. The glycolytic inhibitor 2-deoxy-D-glucose (2-DG) completely inhibited IL-1 beta-stimulated NO2- production [0.7 +/- 0.5 nmol.(1.25 X 10(5) cells)-1.48 h-1; P < 0.01; n = 12]. The addition of the glycolytic end product, pyruvate, completely blocked the 2-DG inhibition of IL-1 beta-stimulated NO2- production [7.4 +/- 0.4 nmol.(1.25 X 10(5) cells)-1.48 h-1; P < 0.01; n = 12]. Pyruvate alone did not significantly enhance NO2- production in the presence or absence of glucose (n = 12). The inactive analogue 3-O-methylglucose had no effect on NO2- production (n = 12). Reverse transcription-polymerase chain reaction revealed that pyruvate blocked 2-DG inhibition of inducible NO synthase mRNA expression. Neither 2-DG nor pyruvate had any effect on GTP-cyclohydrolase I mRNA expression in CM. We report for the first time that optimal IL-1 beta-stimulated NO production by CM requires both glucose and the glycolytic end product pyruvate.

Animals↗

NF-kappa B and GTP cyclohydrolase regulate cytokine-induced nitric oxide production by cardiac myocytes.

We previously reported that interleukin-1 beta (IL-1) alone stimulated nitric oxide (NO) production by neonatal rat cardiac myocytes (CM) in culture. The present studies were undertaken to explore the signal transduction pathways involved in IL-1-induced NO production by CM. Translocation from the cytosol to the nucleus of nuclear factor-kappa B (NF-kappa B) and activation of guanosine 5'-triphosphate (GTP) cyclohydrolase [rate-limiting enzyme in tetrahydrobiopterin (BH4) synthesis] have been implicated in IL-1 signaling. Accordingly, the effects of the NF-kappa B inhibitor pyrolidine dithiocarbamate (PDTC) and the GTP cyclohydrolase inhibitor 2,4-diamino-6-hydroxypyrimidine (DAHP) on IL-1-induced NO production by CM were studied. PDTC and DAHP inhibited IL-1-induced NO2-production by CM (6.7 +/- 0.6 vs. 0.9 +/- 0.3 and 0.3 +/- 0.1 nmol. 1.25 x 10(5) cells(-1).48 h-1, respectively, P < 0.01, n = 12 for each). Immunohistochemical staining revealed that PDTC blocked IL-1-stimulated nuclear translocation of NF-kappa B. The membrane-permeable analogue of the NO synthase cofactor BH4, methyl-BH4 (mBH4), only partially reversed DAHP inhibition of NO2- formation (6.7 +/- 0.6 vs. 2.4 +/- 0.3 nmol. 1.25 x 10(5) cells-1.48 h-1, P < 0.01, n = 12). Semiquantitative reverse transcription polymerase chain reaction revealed no inducible NO synthase (iNOS) mRNA production in cells treated with IL-1 + PDTC.CM treated with IL-1 + DAHP did express iNOS mRNA. We report for the first time that nuclear translocation of NF-kappa B is essential for II-1-induced iNOS mRNA expression and GTP cyclohydrolase activity is required in addition in addition to BH4 for optimal NO production by CM.

Animals↗

Paroxetine is a novel nitric oxide synthase inhibitor.

The selective serotonin reuptake inhibitor, paroxetine, has been reported to inhibit cytochrome P450 activity. Nitric oxide synthase (NOS) is structurally homologous to cytochrome P450. Accordingly, in our study, we observed the effects of paroxetine on NOS activity. Seventeen ischemic heart disease (IHD) patients received paroxetine and fourteen received nortriptyline for treatment of clinical depression defined by a score of 17 or higher on the Hamilton Rating Scale for Depression (HAM-D). Serum nitrite and nitrate levels were significantly decreased following paroxetine treatment but not nortriptyline treatment. Paroxetine was also a more potent inhibitor of NOS enzyme activity than nortriptyline, as measured by the conversion of [14C] arginine to [14C] citrulline by hamster brain cytosols. In addition, paroxetine reversed the force-frequency relationship in isolated hamster papillary muscles in a manner analogous to that of known NOS inhibitors. Thus, paroxetine appears to be a novel NOS inhibitor in vitro and in vivo.

Animals↗

Regulation of constitutive nitric oxide synthase activity by the human heart.

We and others have provided indirect evidence for the presence of a constitutive nitric oxide synthase (cNOS) in the mammalian heart. We now provide more direct evidence for the regulation of a myocardial cNOS in the hearts of patients undergoing elective cardiopulmonary bypass (CPB). cNOS enzyme activity was demonstrable in both cytosolic (8.3 +/- 0.02 pmol/min/mg) and membrane (11.1 +/- 0.4 pmol/min/mg) preparations derived from human atrial pectinate muscles obtained at the time of CPB (n = 6). Plasma nitrite (NO2-) + plasma nitrate (NO3-) levels from the beating hearts of patients before bypass were reduced from 146 +/- 33 to 5.1 +/- 50 pmol/min/g after cardiac arrest during CPB (n = 23; p < 0.002 by Student's t test). Thus, the human myocardium constitutively produces nitric oxide that is regulated by the contractile state of the heart.

Adult↗

Cytokine-stimulated nitric oxide production inhibits mitochondrial activity in cardiac myocytes.

We have previously proposed that cytokine-stimulated nitric oxide (NO) production is responsible for reversible myocardial depression in sepsis, trauma and ischemia. NO previously has been found to inhibit mitochondrial activity in other cell types. Accordingly, we sought to determine if cytokine-stimulated NO production inhibited cardiac myocyte mitochondrial activity. Treatment of neonatal rat cardiac myocytes with interleukin-beta (IL-1) resulted in the expression of mRNA for inducible NO synthase (iNOS) and stained positively for iNOS protein by immunohistochemistry. No iNOS staining was detected in untreated cells. IL-1 treatment resulted in significant nitrite levels vs control over 48 hrs (4.2 +/- 0.7 vs 0.3 +/- 0.2 nmol/1.25 x 10(5) cells, respectively) (n = 12) that was inhibited by 1mM NMA (0.3 +/- 0.2 nmoles; p < .01; n = 12). Mitochondrial activity was assessed by the MTT colorimetric assay using (3-4,5-dimethylthiazol-2-yl)-2,5-diphenyl tetrazolium bromide and OD 570-630. Mitochondrial activity was significantly inhibited by IL-1 vs control cells (0.436 +/- 0.01 vs 0.608 +/- 0.03) and reversed by 1mM NMA (0.549 +/- 0.03) or removal of IL-1 (0.662 +/- 0.02) (p < .01; n = 12 for each). These data strongly suggest that cytokine-stimulated NO production by cardiac myocytes results in reversible inhibition of mitochondrial activity.

Animals↗

Cytokine induction during cardiac surgery: analysis of TNF-alpha expression pre- and postcardiopulmonary bypass.

Cytokines are soluble mediators that possess both intra- and intercellular signaling properties. Their function has been investigated most thoroughly in the context of immune reactions. Cytokines, however, form an important component of the inflammatory response to trauma and are found in elevated concentrations following cardiopulmonary bypass (CPB). We were, therefore, interested in studying mRNA expression for the cytokine tumor necrosis factor alpha (TNF-alpha) in patients undergoing cardiac surgery. White cells isolated from the circulation of seven patients before and after CPB were assayed for the expression of mRNA with TNF-alpha specific primers using the polymerase chain reaction. Message for TNF-alpha was found in all patients, with the highest values demonstrated in patients whose CPB times exceeded 1 1/2 hours. Enhanced message expression was seen as early as 1 hour after the start of CPB. Genes responsible for cytokine (TNF-alpha) expression and production are activated during cardiac surgery.

Base Sequence↗

cAMP enhances inducible nitric oxide synthase mRNA stability in cardiac myocytes.

The effects of adenosine 3',5'-cyclic monophosphate (cAMP) on cardiac myocyte nitric oxide (NO) production were studied. Maximal nitrite (NO2(-)) production by cultured neonatal rat cardiac myocytes was achieved with 500 U/ml interleukin-1 beta (IL-1 beta) for 48 h (4.6 +/- 0.3 nmol/1.25 x 10(5) cells; n = 12). Cardiac myocytes exposed to 500 U/ml IL-1 beta for 48 h stained positively for inducible nitric oxide synthase (iNOS) by immunohistochemistry. Forskolin (FSK; adenylate cyclase stimulator) or dibutyryl cAMP (DBcAMP; membrane-permeable cAMP analogue) administration alone had no effect on NO2(-) production. The addition of FSK or DBcAMP to IL-1 beta significantly increased NO2-) levels vs. IL-1 beta alone (9.7 +/- 0.6 and 10.9 +/- 0.8 vs. 4.6 +/- 0.3 nmol/1.25 x 10(5) cells per 48 h, respectively; P < 0.01; n = 12). Semiquantitative reverse transcriptase-polymerase chain reaction revealed increased iNOS mRNA in myocytes treated with FSK+IL-1 beta or DBcAMP+IL-1 beta vs. those treated with IL-1 beta alone. The addition of FSK or DBcAMP to IL-1 beta increased iNOS mRNA half-life over IL-1 beta treatment alone (10.6, 11.7 vs. 2.4 h, respectively). Cardiac myocytes do not express iNOS in response to cAMP alone. Rather, cAMP enhances iNOS mRNA stability following cytokine exposure.

Animals↗

Nitric oxide synthase inhibitor alters papillary muscle force-frequency relationship.

We provide evidence for an immediate effect of NG-monomethyl-L-arginine (L-NMMA) on the force-frequency relationship in isolated hamster papillary muscles. L-NMMA (competitive inhibitor of nitric oxide synthase) reversed the force-frequency relationship (staircase effect) in isolated hamster papillary muscles from negative to positive (P < .01; ANOVA; n = 6). The addition of L-arginine (substrate for nitric oxide synthase) blocked the L-NMMA effect (P < .01; ANOVA; n = 6). The addition of the nitric oxide (NO) donor, sodium nitroprusside (NTP), significantly increased the level of cGMP in the tissue bath (P < .01; test; n = 6) and reversed the positive inotropic effect of L-NMMA on staircase (P < .01; ANOVA; n = 6). The addition of 8-Br-cGMP to the bath resulted in a concentration-dependent decrease in tension generated by the papillary muscles (n = 6). Methylene blue (known inhibitor of cGMP) mimicked the effect of L-NMMA on staircase (P < .01; ANOVA; n = 6). L-NMMA also significantly blunted the negative inotropic effect of ryanodine (SR calcium release channel regulator) (P < .01; ANOVA; n = 6). The positive inotropic effect of Bay K 8644 (sarcolemmal, L-type calcium channel regulator) was not affected by L-NMMA (P = NS; ANOVA; n = 6). L-NMMA had no effect on either [3H]ryanodine or [3H]PN200-110 (sarcolemmal, L-type calcium channel regulator) binding to cardiac membranes. These findings support a cGMP-dependent role for endogenous NO in myocardial E-C coupling.

Amino Acid Oxidoreductases↗

Double-blind comparison of paroxetine and nortriptyline on the postural stability of late-life depressed patients.

This article describes a 6-week study evaluating body sway during double-blind therapy with nortriptyline versus paroxetine in geriatric patients. Body sway was measured with patients' eyes open, then closed, using a stable force platform at 4 timepoints: before starting antidepressant medication, and after 1, 2, and 6 weeks of treatment. Measures such as the length (L) of path of the center of pressure (COP) and the area included within the COP path were selected for quantitative assessment of stability. A repeated measures analysis of variance (ANOVA) model with planned comparisons was used to examine the pair-wise difference at baseline and Weeks 1, 2, and 6 of treatment. No significant difference was found in body sway parameters over the 6 weeks of study for patients treated with either nortriptyline or paroxetine.

Aged↗

Chronotropic effects of cytokines and the nitric oxide synthase inhibitor, L-NMMA, on cardiac myocytes.

We and others have proposed that cytokine-stimulated nitric oxide (NO) production is responsible for reversible myocardial depression in sepsis, trauma and ischemia. An effect of NO on cardiac sarcolemmal L-type calcium channels has also recently been proposed. The spontaneous beating rate of neonatal cardiac myocytes is regulated by the sarcolemmal L-type calcium channel. Accordingly, we sought to determine if cytokine-stimulated NO production could also regulate beating rates of neonatal cardiac myocytes. Treatment of neonatal rat cardiac myocytes with TNF, IL-1, IL-6, 10(-5)M NMA, or 10(-3)M NMA significantly enhanced spontaneous beating rates compared to untreated myocytes in serum-free media for 48 hours (p < or = .01; n = 12 for each). Only IL-1 treatment resulted in significant nitrite levels vs. control over 48 hours (4.2 +/- 0.7 vs. 0.3 +/- 0.2 nmoles/1.25 x 10(-5) cells, respectively) (n = 12). Nitrite production by IL-1 was inhibited by 10(-3)M NMA but not 10(-5)M NMA (0.3 +/- 0.2 vs. 4.1 +/- 0.6 nmoles; p < .01; n = 12). The addition of 10(-5)M NMA to TNF, IL-1, and IL-6 did not alter the effect of the cytokines on the spontaneous beating rates of the cardiac cells (p < or = .01; n = 12 for each). These results strongly suggest that cytokines and NMA affect cardiac myocyte spontaneous beating rates through mechanisms independent of NO.

Amino Acid Oxidoreductases↗

Catalytic conversion of L-arginine to nitrate by platinum electrodes.

Platinum electrodes (PLE) have been used recently to study the physiologic effects of the enzymatic conversion of L-arginine (L-arg) to nitric oxide (NO) by nitric oxide synthase (NOS). We sought to determine if PLE alone could catalytically convert L-arg to NO without NOS. Accordingly, NO2- + NO3- levels (NOx) were measured by HPLC from a physiologic Tyrode's buffer in the presence and absence of electrical stimulation with PLE or silver chloride electrodes (SCE) for 10 min (n = 6 for each condition). PLE stimulated at 1Hz produced 24 +/- 0.7 and 15.4 +/- 2.8 microM NOx from D-arg and L-arg (100mM) respectively. PLE + L-arg stimulated from 0 to 5 Hz produced increasing NOx (2.9 +/- 0.27;15.4 +/- 2.8;19.7 +/- 4;32 +/- 5;37 +/- 6.2;43 +/- 7 microM). SCE+L-arg showed no increase in NOx above background. The addition of 1% BSA to the Tyrode's buffer further increased NOx levels. NO2- levels were undetectable, indicating all NOx levels were NO3-. We conclude that PLE can catalytically convert L-Arg to NO3- via electron transfer without NOS.

Arginine↗

A potential role for nitric oxide in myocardial stunning.

Nitric oxide (NO) production by the human heart has been demonstrated in patients undergoing cardiac surgery. Similar to what has been described in other species, a basal production of NO by the human heart is seen (126 +/- 42 pmol/min per gram). Following reperfusion, at the end of the procedure, the level of NO production increases significantly reaching concentrations of 1430 +/- 330 pmol/min per gram. Increased activity for the enzyme NO synthase (NOS) (8.0 +/- 1.2 pmol/mg prebypass vs 26.4 +/- 4.8 pmol/mg postbypass) coincides with changes in NO production and occurs at a time when myocardial stunning is clinically detectable. The significance of these findings is discussed and suggest a role for NO in the pathophysiology of myocardial stunning.

Amino Acid Oxidoreductases↗

Verapamil regulation of a defective SR release channel in the cardiomyopathic Syrian hamster.

The Bio 14.6 Cardiomyopathic Syrian Hamster (CMH) has an autosomal recessive disease characterized by intracellular calcium overload, cardiac and skeletal myopathies and premature death from congestive heart failure. Early treatment of these animals with the calcium antagonist, verapamil (V), prevents the development of the disease. We have previously provided evidence supporting a specific defect in the ryanodine-sensitive SR calcium release channel (SRCRC) in CMH. We now provide physiologic and biochemical evidence that V modulates SRCRC. Papillary muscles prepared from F1B control hamsters (F1B) revealed an enhanced inotropic responsiveness to V and ryanodine (R) with age, not seen with CMH. CMH papillary muscles demonstrated paradoxical positive inotropic effects of V and R not shared with F1B. The positive inotropic effects of V and R were not additive. V enhanced the affinity (decreased KD) of [3H]ryanodine binding to cardiac membranes. Thus, V may prevent the overt manifestations of genetic disease in CMH by modulating a defective ryanodine-sensitive SR release channel.

Animals↗

Positive inotropic effect of acetylcysteine in cardiomyopathic Syrian hamsters.

Several laboratories have provided indirect evidence that the myocardium of the cardiomyopathic Syrian hamster (CMH) is chronically ischemic on the basis of microvascular spasm. We previously reported evidence supporting a defect in the ryanodine-sensitive sarcoplasmic reticulum calcium release channel (SRCRC) in CMH. A relation between alterations in SRCRC and chronic ischemia has not yet been explored. A potential mechanism could be the effects of changes in redox state on thiol groups. Thiol reagents have previously been shown to regulate calcium release from SRCRC. Accordingly, we studied the inotropic effects of the sulfhydryl donors, acetylcysteine (AC), cysteine, and cystine in CMH. AC was a positive inotrope in isolated papillary muscles prepared from CMH, but not F1B controls (F1B) (p < 0.01). No significant differences were noted in inotropic responses to cysteine or cystine. AC blunted the response of CMH > F1B control papillary muscle preparations to stimulation frequency (p < 0.01). The actual tension generated (in mg/mm2) by CMH was no longer different than F1B with addition of AC (10(-3) M), ryanodine (10(-8) M), or verapamil (5 x 10(-7) M). These findings are consistent with a defect in SRCRC in CMH. This defect may be primary or may provide a novel mechanism for hibernating myocardium owing to chronic ischemia.

Acetylcysteine↗

Negative inotropic effects of cytokines on the heart mediated by nitric oxide.

The direct effects of pro-inflammatory cytokines on the contractility of mammalian heart were studied. Tumor necrosis factor alpha, interleukin-6, and interleukin-2 inhibited contractility of isolated hamster papillary muscles in a concentration-dependent, reversible manner. The nitric oxide synthase inhibitor NG-monomethyl-L-arginine (L-NMMA) blocked these negative inotropic effects. L-Arginine reversed the inhibition by L-NMMA. Removal of the endocardial endothelium did not alter these responses. These findings demonstrate that the direct negative inotropic effect of cytokines is mediated through a myocardial nitric oxide synthase. The regulation of pro-inflammatory cytokines and myocardial nitric oxide synthase may provide new therapeutic strategies for the treatment of cardiac disease.

Animals↗

Regulation of [3H]nitrendipine binding by phospholipases A2 and C through direct and GTP-sensitive mechanisms.

We compared the effects of Phospholipases A2, C, B and D on [3H]nitrendipine binding to hamster cardiac membranes, in the absence and presence of ATP or GTP. Phospholipase A2, competitively inhibited [3H]nitrendipine binding to hamster cardiac membranes unchanged by ATP or GTP (Ki = 5 ng/ml); as evidenced by complete and reversible displacement of [3H]nitrendipine binding and increase in KD on Scatchard analyses. Phospholipase C also completely inhibited [3H]nitrendipine binding to hamster cardiac membranes (Ki = 5 micrograms/ml) with a decrease in Bmax and no change in KD on Scatchard analyses. The addition of GTP alone inhibited the PLC effect in EGTA-treated membranes. The addition of GTP with either CaCl2 or ATP or both resulted in an equal and opposite enhancement of the PLC effect. Phospholipases B and D had no effect on [3H]nitrendipine binding. These data support: (1) Direct effect of PLA2 on dihydropyridine binding. (2) Indirect regulation of dihydropyridine binding by Phospholipase C through a GTP and ATP-sensitive mechanism.

Adenosine Triphosphate↗

Ryanodine-affinity chromatography purifies 106 kD Ca2+ release channels from skeletal and cardiac sarcoplasmic reticulum.

A 106 kD protein was isolated from skeletal sarcoplasmic reticulum (SR) vesicles and shown to have the properties of SR Ca2+ release channels, including blockade by 5 nM ryanodine. In view of extensive reports that the ryanodine-receptor complex consists of four 565 kD junctional feet proteins (JFPs) and is the 'physiological' Ca2+ release channel, we prepared ryanodine-affinity columns to isolate its receptor site(s). Conditions known to maximize the association and dissociation of ryanodine to SR proteins were respectively used to link, then elute, the receptor(s) from ryanodine-affinity columns. The method purified a protein at about 100 kD from both rabbit skeletal and canine cardiac SR vesicles. The skeletal and cardiac proteins isolated by ryanodine-affinity chromatography were identified as the low molecular weight Ca2+ release channel through their antigenic reaction with an anti-106 kD monoclonal antibody. Upon reconstitution in planar bilayers, both skeletal and cardiac proteins revealed the presence of functional SR Ca2+ release channels. Surprisingly, ryanodine-affinity columns did not retain JFPs but purified 106 kD Ca2+ release channels which are a minor component (0.1-0.3%) of SR proteins.

Animals↗