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Biomedical subjects

J Müller-Ehmsen

Publications and source records attributed to J Müller-Ehmsen.

At least 19 recordsLinked to original sources

The increased angiotensin II (type 1) receptor density in myocardium of type 2 diabetic patients is prevented by blockade of the renin-angiotensin system.

AIMS/HYPOTHESIS: The angiotensin II (type 1) (AT1) receptor mediates many biological effects of the renin-angiotensin system (RAS), leading to remodelling of cardiac tissue. The present study was designed to analyse changes in the function and expression of the AT1 receptor as principal effector of the RAS in myocardium from type 2 diabetic patients compared with non-diabetic myocardium as control. In addition, we determined the effect of treatment with ACE inhibitors or AT1 receptor blockers on expression levels of the receptor in diabetic patients. METHODS: Gene expression of the AT1 receptor was analysed by quantitative RT-PCR and protein expression was determined by immunoblot analysis in human right atrial myocardium. We investigated functional coupling of the receptors by measuring contractility in isolated trabeculae stimulated with increasing concentrations of angiotensin II. RESULTS: Diabetic myocardium showed a significant increase in protein expression (170 +/- 16% of control) and median mRNA expression (186% of control) of the AT1 receptor. The additional receptors were functionally coupled, resulting in a stronger inotropic response upon stimulation with angiotensin II (89 +/- 5.5% vs 29 +/- 1.6% in controls), whereas receptor affinity was similar in both groups. However, myocardium from diabetic patients treated with ACE inhibitors or AT1 receptor blockers showed no increase in AT1 receptor expression. CONCLUSIONS/INTERPRETATION: AT1 receptor expression in myocardium of type 2 diabetic patients is dynamic, depending on the level of glycaemic control and the activity of the RAS. These findings could at least in part explain the strong therapeutic benefit of RAS inhibition in diabetic patients.

Aged↗

18O-exchange evidence that mutations of arginine in a signature sequence for P-type pumps affect inorganic phosphate binding.

We have proposed a model for part of the catalytic site of P-type pumps in which arginine in a signature sequence functions like lysine in P-loop-containing enzymes that catalyze adenosine 5'-triphosphate hydrolysis [Smirnova, I. N., Kasho, V. N., and Faller, L. D. (1998) FEBS Lett. 431, 309-314]. The model originated with evidence from site-directed mutagenesis that aspartic acid in the DPPR sequence of Na,K-ATPase binds Mg(2+) [Farley, R. A., et al. (1997) Biochemistry 36, 941-951]. It was developed by assuming that the catalytic domain of P-type pumps evolved from enzymes that catalyze phosphoryl group transfer. The functions of the positively charged amino group in P-loops are to bind substrate and to facilitate nucleophilic attack upon phosphorus by polarizing the gamma-phosphorus-oxygen bond. To test the prediction that the positively charged guanidinium group of R596 in human alpha(1) Na,K-ATPase participates in phosphoryl group transfer, the charge was progressively decreased by site-directed mutagenesis. Mutants R596K, -Q, -T, -M, -A, -G, and -E were expressed in yeast membranes, and their ability to catalyze phosphorylation with inorganic phosphate was evaluated by following (18)O exchange. R596K, in which the positive charge is retained, resembled the wild type. Substitution of a negative charge (R596E) resulted in complete loss of activity. The remaining mutants with uncharged side chains had both lowered affinity for inorganic phosphate and altered phosphate isotopomer distributions, consistent with increased phosphate-off rate constants compared to that of the wild type. Therefore, mutations of R596 strengthen our hypothesis that the oppositely charged side chains of the DPPR peptide in Na,K-ATPase form a quaternary complex with magnesium phosphate.

Amino Acid Sequence↗

Ouabain and substrate affinities of human Na(+)-K(+)-ATPase alpha(1)beta(1), alpha(2)beta(1), and alpha(3)beta(1) when expressed separately in yeast cells.

Human Na(+)-K(+)-ATPase alpha(1)beta(1), alpha(2)beta(1), and alpha(3)beta(1) heterodimers were expressed individually in yeast, and ouabain binding and ATP hydrolysis were measured in membrane fractions. The ouabain equilibrium dissociation constant was 13-17 nM for alpha(1)beta(1) and alpha(3)beta(1) at 37 degrees C and 32 nM for alpha(2)beta(1), indicating that the human alpha-subunit isoforms have a similar high affinity for cardiac glycosides. K(0.5) values for antagonism of ouabain binding by K(+) were ranked in order as follows: alpha(2) (6.3 +/- 2.4 mM) > alpha(3) (1.6 +/- 0.5 mM) approximately alpha(1) (0.9 +/- 0.6 mM), and K(0.5) values for Na(+) antagonism of ouabain binding to all heterodimers were 9.5-13.8 mM. The molecular turnover for ATP hydrolysis by alpha(1)beta(1) (6,652 min(-1)) was about twice as high as that by alpha(3)beta(1) (3,145 min(-1)). These properties of the human heterodimers expressed in yeast are in good agreement with properties of the human Na(+)-K(+)-ATPase expressed in Xenopus oocytes (G Crambert, U Hasler, AT Beggah, C Yu, NN Modyanov, J-D Horisberger, L Lelievie, and K Geering. J Biol Chem 275: 1976-1986, 2000). In contrast to Na(+) pumps expressed in Xenopus oocytes, the alpha(2)beta(1) complex in yeast membranes was significantly less stable than alpha(1)beta(1) or alpha(3)beta(1), resulting in a lower functional expression level. The alpha(2)beta(1) complex was also more easily denatured by SDS than was the alpha(1)beta(1) or the alpha(3)beta(1) complex.

Adenosine Triphosphate↗

Region specific regulation of sodium pump isoform and Na,Ca-exchanger expression in the failing human heart--right atrium vs left ventricle.

Na,K-ATPase (NKA, Na-pump), an alphabeta heteromer, is the receptor for cardiac glycosides (CG) which exert a positive inotropic effect by inhibiting enzyme activity, decreasing the driving force for Na,Ca-exchange (NCX) and increasing cellular content and release of Ca2+ during depolarization. Our previous study of regional distribution of NKA in non-failing human hearts demonstrated that Na-pump alpha2-, alpha3- and beta1-isoforms were 30-50% lower in right atrium (RA) compared with left ventricle (LV), resulting in overall lower NKA activity and CG binding site number and increased sensitivity to inotropic stimulation. In failing human heart LV Na-pump alpha1, alpha3 and beta1 proteins were reduced 30-40%, with no change in alpha2 or NCX; NKA activity and CG binding sites decreased 40%, and sensitivity to inotropic stimulation increased, all compared to LV from non-failing hearts. In this study we investigated the influence of region specific factors (e.g. hemodynamics) on the regulation of NKA isoform and NCX expression in heart failure by comparing the pattern of change in right atrial myocardium during heart failure with that previously determined for LV. In RA samples from failing hearts, alpha1-, alpha2- and beta1-isoform protein expression were decreased by 40, 50 and 25%, respectively, with no significant change in alpha3 or NCX levels relative to non-failing hearts (both n= 12). Thus, alphabeta1 decreases in both RA and LV during heart failure, while alpha2beta1 is reduced only in RA and alpha3beta1 only in LV. This indicates that there are not only regional differences in normal cardiac Na-pump isoform expression but also regional differences in the pattern of isoform expression as a function of failure that may have distinct functional consequences in the adaptive process of heart failure. The mechanisms underlying Na,K-ATPase regulation and effect of hemodynamics remain to be investigated.

Adult↗

Reduced sodium pump alpha1, alpha3, and beta1-isoform protein levels and Na+,K+-ATPase activity but unchanged Na+-Ca2+ exchanger protein levels in human heart failure.

BACKGROUND: Cardiac glycosides initiate an increase in force of contraction by inhibiting the sarcolemmal sodium pump (Na+, K+-ATPase), thereby decreasing Ca2+ extrusion by the Na+-Ca2+ exchanger, which increases the cellular content of Ca2+. In patients with heart failure the sensitivity toward cardiac glycosides is enhanced. METHODS AND RESULTS: Because the inotropic effect of cardiac glycosides may be a function of the sodium pump and Na+-Ca2+ exchanger (NCE) expression levels, the present study aimed to investigate protein expression of both transporters (immunoblot with specific antibodies against the sodium pump catalytic alpha1-, alpha2-, alpha3-, and glycoprotein beta1-isoforms and against NCE) in left ventricle from failing (heart transplantations, New York Heart Association class IV, n=21) compared with nonfailing (donor hearts, NF, n=22) human myocardium. The density of 3H-ouabain-binding sites (Bmax) and the Na+,K+-ATPase activity were also measured. In NYHA class IV, protein levels of Na+,K+-ATPase alpha1- (0.62+/-0.06 of control), alpha3- (0.70+/-0.09), and beta1- (0.61+/-0.04) but not alpha2-isoforms were significantly reduced (P<0.01), whereas levels of NCE (0.92+/-0.13 of control) and calsequestrin (0.98+/-0.06) remained unchanged. Both Na+,K+-ATPase activity (NF: 1.9+/-0.29; NYHA class IV: 1.1+/-0.17 micromol ATP/min per milligram of protein) and the 3H-ouabain binding sites (Bmax NF: 15.9+/-1.9 pmol/mg protein; NYHA class IV: 9.7+/-1.5) were reduced in NYHA class IV and correlated significantly to each other (r2=0. 73; P<0.0001), as did beta1-subunit expression. In left ventricular papillary muscle strips from NYHA class IV compared with nonfailing tissue the Na+-channel modulator BDF 9198 exerted an increase in force of contraction with unchanged effectiveness but enhanced potency. CONCLUSIONS: The enhanced sensitivity of failing human myocardium toward cardiac glycosides may be, at least in part, attributed to a reduced protein expression and activity of the sarcolemmal Na+,K+-ATPase without a change in Na+-Ca2+ exchanger protein expression.

Adolescent↗

Na+-channel modulating effect of the inotropic compound S(-)BDF 9196 in human myocardium.

S(-)BDF 9196, the active enantiomer of racemic (+/-)BDF 9148, has been shown to increase force of contraction in myocardium from different species including humans. The present study aimed to investigate the mechanism of the positive inotropic action of the active enantiomer S(-)BDF 9196 in human myocardium. In electrically driven human left ventricular papillary muscle strips (dilated cardiomyopathy, NYHA IV, cardiac transplantation, n=9), S(-)BDF 9196 increased force of contraction concentration-dependently. The maximal positive inotropic effect remained unchanged after the addition of carbachol (1 mmol/l, indicating a cAMP-independent mode of action of S(-)BDF 9196. While [3H]ouabain binding in human myocardial membranes was not influenced by S(-)BDF 9196 up to 10 micromol/l, the inward Na(+)-current in isolated human left ventricular myocytes was increased significantly by S(-)BDF 9196 (1 micromol/l, n=5). These results provide evidence that S(-)BDF 9196 increases force of contraction in human myocardium primarily by enhancing Na(+)-influx, while cAMP-dependent or Na(+),K(+)-ATPase blocking effects do not seem to play a role.

Azetidines↗

Measuring in situ central airway resistance in patients with laryngotracheal stenosis.

OBJECTIVES: To evaluate a newly developed bronchoscopic technique for the assessment of intratracheal pressures. STUDY DESIGN: In situ measurement of central airway resistance in 20 consecutive spontaneously breathing subjects. Thirteen patients had benign glottic or subglottic stenosis. Seven patients without central airway disease served as normal control subjects. METHODS: A pressure catheter was introduced into the trachea via the working channel. The pressure swing was measured upstream and downstream of the stenosis. Central airflow was monitored simultaneously using a commercial pneumotachograph attached to a mouthpiece. Data acquisition frequency was 500 Hz. Prestenotic and poststenotic inspiratory and expiratory resistances could be calculated and displayed from the raw data off-line. RESULTS: Inspiratory and expiratory resistances measured in mid-trachea or below the stenosis (subglottic) were 0.36 +/- 0.13 and 0.35 +/- 0.13 kPa.s/L for the control subjects (C), 1.11 +/- 0.47 and 0.65 +/- 0.26 kPa.s/L for patients who did not need to be operated on (NOOP), 7.11 +/- 7.19 and 3.35 +/- 2.25 kPa.s/L respectively for those who required surgical correction (OP). Supraglottic inspiratory and expiratory resistances for C were 0.22 +/- 0.09 and 0.25 +/- 0.06 kPa.s/L, for NOOP 0.15 +/- 0.10 and 0.14 +/- 0.11 kPa.s/L, and for OP 0.26 +/- 0.13 and 0.24 +/- 0.07 kPa.s/L respectively. The cut-off point for surgical correction was estimated to be > 2.5 kPa.s/L of inspiratory resistance. Concurrent expiratory values showed a considerable overlap between OP and NOOP. No correlation could be established between local resistance values and dyspnea score. CONCLUSIONS: In situ subglottic flow-pressure tracing in spontaneously breathing patients who present with benign obstruction of the upper airways is well tolerated and may help to identify patients who need surgical correction.

Adult↗

cAMP-dependent protein kinase A-stimulated sarcoplasmic reticulum function in heart failure.

It is unclear whether decreased protein expression of SERCA2 (SR-Ca(2+)-ATPase) and phospholamban (PLB), or alterations in the phosphorylation state of PLB leading to increased inhibition of SERCA2 are responsible for the reduced SERCA2 function in failing human myocardium. In crude membrane preparations from patients with terminal heart failure due to idiopathic dilated cardiomyopathy (DCM) and control hearts (NF), SERCA2 activity was measured with a NADH coupled assay. Protein expression of SERCA2 and PLB and the phosphorylation state at the two phosphorylation sites, serine-16-PLB and threonine-17-PLB, were investigated with specific (phosphorylation) antibodies and Western blot technique. In NF, the Vmax and the Ca2+ sensitivity of SERCA2 activity were significantly higher compared to DCM. Protein expression of SERCA2 and PLB were unchanged, whereas the phosphorylation status at both serine-16-PLB and threonine-17-PLB were significantly reduced in DCM. The native phosphorylation status of PLB measured by the back-phosphorylation technique was reduced in DCM as well. After stimulation with protein kinase A only the Ca2+ sensitivity, but not Vmax, increased. The reduced phosphorylation state of PLB may lead to decreased Ca2+ sensitivity of SERCA2 in failing human myocardium. The altered regulation of the SR-CA(2+)-ATPase in human heart failure may offer an opportunity for an improvement in the therapy of heart failure.

Calcium-Binding Proteins↗

Effect of inotropic interventions on the force-frequency relation in the human heart.

In severe human heart failure, an increase in frequency of stimulations is accompanied by a reduced force of contraction in vivo and in vitro. This contrasts the findings in nonfailing human hearts. To investigate influences of inotropic stimulation on the force-frequency relationship in human myocardium, the effects of the cAMP-independent positive inotropic agents ouabain (Na+/K(+)-ATPase inhibitor) and BDF 9148 (Na(+)-channel modulator) as well as of the beta-adrenoceptor agonist isoprenaline on the force-frequency relationship in electrically driven left ventricular papillary muscle strips from nonfailing and terminally failing human myocardium were studied. In nonfailing myocardium, force of contraction increased following an increase in stimulation frequency, whereas in failing human myocardium force of contraction gradually declined following an increase in stimulation frequency. Moderate stimulation of contractility by isoprenaline reversed the negative force-frequency relationship in failing myocardium and preserved the positive force-frequency relationship in nonfailing myocardium. In the presence of ouabain and BDF 9148 the positive force-frequency relationship was completely restored in failing myocardium. In contrast, in the presence of high concentrations of isoprenaline the former positive force-frequency relationship became negative even in nonfailing myocardium. The negative force-frequency relationship in failing human myocardium is accompanied by alterations in the intracellular Ca(2+)-homeostasis. The latter may be due to an impaired function of the sarcoplasmic reticulum (SR) in failing human myocardium. Therefore, the activity of the SR-Ca(2+)-ATPase (SERCA2) of crude membrane preparations was investigated and was significantly reduced in failing compared to nonfailing human myocardium. It is concluded that the negative force-frequency relationship may be due to alterations in the intracellular Ca(2+)-handling caused by an impaired function of the SERCA2 in failing human myocardium. The beneficial effects of cAMP-increasing agents on the force-frequency relationship in failing human hearts could result from an enhanced phosphorylation status of phospholamban in the presence of beta-adrenoceptor-stimulation. The effect of the [Na+]i-modulating agents BDF 9148 and ouabain demonstrates that the intracellular Na(+)-homeostasis influences intracellular Ca(2+)-handling as well. Differences observed in failing compared to nonfailing myocardium may be due to an altered expression or function of the Na+/Ca(2+)-exchanger, Na(+)-channels or the Na+/K(+)-ATPase in addition to the blunted activity of the SERCA2 in failing myocardium.

Adrenergic beta-Agonists↗

Potent vasodilatory with minor cardiodepressant actions of mibefradil in human cardiac tissue.

1. The present study compared the cardiovascular effects of mibefradil (MIB), a novel Ca2+-channel antagonist with high selectivity for T-type Ca2+-channels to the effect of the L-type Ca2+-channel-antagonists nifedipine (NIF) and diltiazem (DIL) in left ventricular myocardium and coronary arteries of hearts obtained from patients suffering from dilated cardiomyopathy (NYHA IV). Right atrial myocardium from patients undergoing aortocoronary bypass surgery without signs of cardiac failure was studied as well. 2. NIF and DIL (100 micromol l(-1)) completely depressed force of contraction (FOC) in electrically driven left ventricular myocardium (NIF 6.5+/-1.4% and DIL 7.1+/-1.2% of control), whereas a similar concentration of MIB only reduced force of contraction to 55.1+/-4.0% of the basal FOC. The negative inotropic potency as measured by the concentration needed to reduce basal FOC for 25% was NIF (0.0095 micromol l(-1))>DIL (0.041 micromol l(-1))>MIB (9.47 micromol l(-1)). 3. All three Ca2+-channel antagonists were more potent in human atrial compared to human left ventricular myocardium to reduce FOC. 4. The rank order of Ca+-antagonistic moiety as measured by the decrease of the intracellular Ca2+-transient (fura-2 ratio method) was NIF>DIL>MIB. 5. All Ca2+-channel antagonists completely relaxed human coronary arteries (% of papaverine effect: MIB 81.7+/-5.5%, DIL 91.3+/-0.9%, NIF 96.4+/-3.7%) precontracted with PGF2alpha (0.3 micromol l(-1)). The rank order of vasodilatory potency was NIF (EC50; 0.02 micromol l(-1))>DIL (0.13 micromol l(-1))>MIB (2.05 micromol l(-1)). 6. The vasoselectivity measured by the ratio of the concentration needed to achieve a 25% decrease in force and the concentration needed for 25% vasodilatation was 316 for MIB, 1.5 for NIF and 1.0 for DIL. 7. The present study provides evidence that blockade of T-type Ca2+-channels (e.g. mibefradil) results in potent vasodilatory properties with only minor cardiodepressant effects.

Adult↗

Positive inotropic effects of the novel Na+-channel modulator BDF 9198 in human nonfailing and failing myocardium.

The aim of this study was to investigate the inotropic properties of the novel Na+-channel modulator BDF 9198 in human nonfailing and failing myocardium. For comparison the Na+-channel modulator BDF 9148, the beta-adrenoceptor-agonist isoprenaline, and calcium were studied. Concentration-response curves for BDF 9198 (0.01-30 microM), BDF 9148 (0.01-30 microM), isoprenaline (0.001-1 microM), and calcium (1.8-15 mM) were obtained in electrically driven left ventricular human papillary muscle strips (1 Hz, 37 degrees C; dilated cardiomyopathy, NYHA IV, heart transplantation; nonfailing, donor hearts). Whereas isoprenaline was significantly less effective and less potent in increasing the force of contraction in failing human myocardium than in nonfailing myocardium (p < 0.01), BDF 9198 and BDF 9148 were (in NYHA IV) as effective as in nonfailing human tissue. In both tissues, BDF 9198 and BDF 9148 exerted similar positive inotropic effects as calcium, with the novel Na+-channel modulator BDF 9198 being more potent in increasing force of contraction than was the preceding agent BDF 9148. The potencies of both Na+-channel modulators, BDF 9198 and BDF 9148, were enhanced in human failing myocardium when compared with nonfailing myocardium. In summary, the novel Na+-channel modulator BDF 9198 increases force of contraction to the same extent as calcium and with a higher potency than BDF 9148. The sensitivity of failing human myocardium to Na+-channel modulators is increased when compared with nonfailing myocardium, which might be the result of an altered Na+ homeostasis in human heart failure.

Azetidines↗

[Effect of changed extracellular K(+) and Mg(2+)-concentration on intracellular Ca(2+) homeostasis, contraction coupling and force-frequency relations in the human myocardium].

The intracellular Ca(2+)-homeostasis may be affected by changes of the extracellular K(+)- and/or Mg(2+)-concentrations. Mg2+ reduces the Ca(2+)-influx via L-type Ca(2+)-channels, facilitates Ca(2+)-uptake into the sarcoplasmic reticulum, modulates the Ca(2+)-induced Ca(2+)-release and the Ca(2+)-binding to troponin C. The extracellular K+ activates the Na+/K(+)-ATPase and changes the membrane potential thereby affecting the mode of action of the Na+/Ca(2+)-exchanger. Especially when intracellular Ca2+ regulation is altered, for example in heart failure, Mg2+ and K+ exert beneficial effects on the frequency-dependent force-generation in human myocardium. Thus, extracellular Mg2+ and K+ influence contraction coupling in the human myocardium.

Adult↗

Na+ channel modulation and force-frequency relationship in human myocardium.

The enhancement of force of contraction (FOC) following increasing frequencies of stimulation is an important mechanism of positive inotropy in human myocardium. The present study aimed to investigate the influence of alterations in Na+ influx on FFR in human myocardium. Isometric FOC of electrically stimulated right auricular trabeculae (AUT, n = 12) from human non-failing hearts (n = 8) was measured at different stimulation rates (0.5-3 Hz) under control conditions, after increasing Na+ influx by the addition of (+/-)BDF 9148 (BDF, 3 mumol l-1) and after decreasing Na+ influx by the addition of lidocaine (LIDO, 10 mumol l-1). Additionally, the rate dependent changes in diastolic tension (DT) were measured in all experiments. Under control conditions FOC increased with increasing frequencies of stimulation. The rate at which maximal FOC was observed (SFmax) was 2.0 +/- 0.2 Hz and maximal increase in FOC (PIEmax) by increasing frequency of stimulation was +1.5 +/- 0.5 mN. After increase of Na+ influx by BDF (3 mumol l-1) SFmax was decreased to 0.8 +/- 0.1 Hz (p < 0.05 versus control) and PIEmax was +0.1 +/- 0.3 mN (p < 0.05). When Na+ influx was diminished by LIDO (10 mumol l-1) SFmax and PIEmax were increased compared to control (2.4 +/- 0.1 Hz and +4.1 +/- 0.9 mN, p < 0.05 versus control). The diastolic tension (DT) of AUT at 3 Hz was not changed at higher rates in the control group and after application of LIDO (10 mumol l-1), whereas after enhancement of Na+ influx by BDF there was an increase in DT of +0.7 +/- 0.2 at 3 Hz (p < 0.05 versus control and LIDO). An enhanced Na+ influx leads to a decrease in the optimal frequency and to a smaller force potentiation by higher stimulation rates which could be at least partly due to incomplete relaxation at higher frequencies, whereas a reduced Na+ influx is followed by opposite alterations. It is concluded that besides Ca2+ handling also Na+ influx and Na+ homeostasis might determine the frequency-induced force potentiation in human myocardium. Thus, the negative FFR in diseased human myocardium might result from changes in cellular Ca2+ or Na+ regulatory sites.

Aged↗

Clinical and laboratory evaluation of a new thin-walled self-expanding tracheobronchial silicone stent: progress and pitfalls.

BACKGROUND: Although widely established in the management of malignant airway lesions, currently available tracheobronchial prostheses made of silicone have their drawbacks resulting from rigidity and wall thickness. Therefore we present clinical follow-up data obtained with a novel thin-walled expandable prototype silicone airway stent (Polyflex stent, Willy Rüsch AG, Kernen, Germany) in 19 patients. METHODS: Seventeen of 19 patients had tracheobronchial complications of infiltrating cancer: five had respiratory-digestive fistulas, 14 had mixed-type obstructions (mucosal infiltration plus extrinsic compression), and two had diffuse tracheal hemorrhages from the tumor surface (three patients had more than one complication). Two of 19 patients had benign postintubation stricture and malacia. Overall, 33 stents were implanted either simultaneously or in a consecutive manner. Scanning electron microscopy was performed both on prototype stents and on other available silicone stents for comparison. RESULTS: The treatment improved the patients' clinical condition substantially. The mechanical properties of the new prosthesis were excellent. Important stent-associated side effects were early mucus retention (n = 7), infolding of the inner silicone layer (n = 2), and stent dislodgment (n = 2). As of February 1997, 10 patients have died of causes unrelated to stent placement. Seven patients with malignant airway disease are still alive from 2 weeks up to 7 months after initial treatment. Scanning electron microscopy of explanted and unused prototypes suggested that an extremely ragged luminal microstructure may contribute to the firm adhesion of secretory material and that technical smoothing of the surface avoids such complications. CONCLUSIONS: The novel self-expandable silicone airway stent may be a promising addition to commonly used stent types. Short-term and medium-term management of fistulas, tumor surface bleeding, and strictures (malignant and benign) is satisfactory. Scanning electron microscopy of stents provides information on peculiar features of microstructure and material that may be of use in clinical research and technical innovation.

Adult↗

Increase in force of contraction by activation of the Na+/Ca(2+)-exchanger in human myocardium.

AIMS: The aim of the present study was to investigate whether agents which enhance force of contraction via increasing intracellular Na+, i.e. cAMP-independently, remain effective in failing human myocardium. METHODS: Cumulative concentration-response curves with (+/-)BDF 9148 (0.01-10 mumol l-1), a Na(+)-channel activator, and ouabain (0.01-0.1 mumol l-1), a Na+/K(+)-ATPase inhibitor, were performed on electrically driven left ventricular human papillary muscle strips (1 Hz, 37 degrees C; dilative cardiomyopathy, NYHA IV, heart transplantation, n = 16; nonfailing, donor hearts, n = 5). The beta-adrenoceptor agonist isoprenaline (0.001-1 mumol l-1) and Ca2+ (1.8-15 mmol l-1) were studied for control. In addition, Ca2+ response curves were obtained on skinned fibre preparations from left ventricular myocardium (NYHA IV, n = 7) in the presence of BDF 9148 (1 mumol l-1) or a high Na+ concentration (50 mmol l-1) to investigate a possible direct or indirect interaction of (+/-)BDF 9148 with the myofilaments. RESULTS: While isoprenaline was significantly less effective in increasing force of contraction in failing human myocardium than in nonfailing myocardium (P < 0.01), in NYHA IV, (+/-)BDF 9148 and ouabain were as effective as in nonfailing human tissue. In failing and nonfailing myocardium, (+/-)BDF 9148 and ouabain exerted positive inotropic effects similar to those of Ca2+. However, the potency for (+/-)BDF 9148 to increase force of contraction was higher in NYHA IV than in nonfailing human myocardium (P < 0.05). Neither (+/-)BDF 9148 (1 mumol l-1) nor an increased concentration of Na+ (50 mmol l-1) altered the Ca2+ sensitivity or maximal developed tension of the contractile apparatus in experiments on chemically skinned left ventricular fibres. CONCLUSIONS: The enhanced sensitivity of the failing human myocardium towards Na(+)-channel modulation is not due to a direct or indirect interaction of (+/-)BDF 9148 with cardiac myofilaments but may be due to an altered Na(+)-homeostasis in human heart failure.

Adrenergic beta-Agonists↗