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M Feuring

Publications and source records attributed to M Feuring.

25 records · Page 2Linked to original sources

Multiple actions of steroid hormones--a focus on rapid, nongenomic effects.

According to the traditional model, steroid hormones bind to intracellular receptors and subsequently modulate transcription and protein synthesis, thus triggering genomic events finally responsible for delayed effects. Based upon similarities in molecular structure, specific receptors for steroids, vitamin D(3) derivatives, thyroid hormone, retinoids, and a variety of orphan receptors are considered to represent a superfamily of steroid receptors. In addition, very rapid effects of steroids mainly affecting intracellular signaling have been widely recognized that are clearly incompatible with the genomic model. These rapid, nongenomic steroid actions are likely to be transmitted via specific membrane receptors. Evidence for nongenomic steroid effects and distinct receptors involved is presented for all steroid groups including related compounds like vitamin D(3) and thyroid hormones. The physiological and clinical relevance of these rapid effects is still largely unclear, but their existence in vivo has been clearly shown in various settings including human studies. Drugs that specifically affect nongenomic steroid action may find applications in various clinical areas such as cardiovascular and central nervous disorders, electrolyte homeostasis, and infertility. In addition to a short description of genomic steroid action, this review pays particular attention to the current knowledge and important results on the mechanisms of nongenomic steroid action. The modes of action are discussed in relation to their potential physiological or pathophysiological relevance and with regard to a cross-talk between genomic and nongenomic responses.

Animals↗

Rapid nongenomic effects of aldosterone in mineralocorticoid-receptor-knockout mice.

In addition to genomic effects of aldosterone, rapid nongenomic effects of steroids have been reported in various tissues that were clearly incompatible with a genomic action of aldosterone. Rapid effects of aldosterone involve second messengers such as calcium and cAMP. Specific high affinity binding sites for aldosterone have been characterized in membranes for different cells, which probably transmit those rapid steroid effects. To date, it is unclear if these binding sites are modified classical mineralocorticoid receptors (MR) or if they represent an unrelated receptor protein. The aim of the present study was to investigate whether rapid aldosterone action still occurs in the absence of the classical MR. For this purpose we used the model of MR knockout mice. Rapid effects were analyzed in skin cells, measuring intracellular calcium and cAMP levels after stimulation with aldosterone. We found that rapid effects are not only present in MR knockout mice, but that the effects are even larger than in wild-type mice cells. The results of the present study demonstrate that the classic MR is dispensable for rapid aldosterone action. The study, thus, proves that a receptor different from the classic intracellular receptor is involved in rapid aldosterone signaling.

Aldosterone↗

Short term cardiovascular effects of aldosterone in healthy male volunteers.

Clinical evidence of rapid, nongenomic aldosterone effects in the cardiovascular system has been provided by clinical studies; an increase in systemic vascular resistance (SVR) was shown by invasive techniques within 3 min after injection of aldosterone. Here, we study the dose dependency and the later course of the rapid aldosterone effects by noninvasive techniques. In 12 healthy male volunteers, SVR and heart rate variability were determined by impedance cardiography and digital electrocardiography, respectively, for 8 h after the injection of 0.05 or 0.5 mg aldosterone in a double blind, placebo-controlled, 3-fold cross-over study. No significant differences were observed for baseline values among the three treatments. The area under the curve of SVR during the first 45 min after injection was significantly different between the periods with the highest areas under the curve seen after the injection of 0.5 mg aldosterone (mean +/- SD, 40.4 +/- 12.8 vs. 36.8 +/- 10.3 for 0.05 mg aldosterone and 36.8 +/- 10.4 for placebo; P = 0.05). Individual comparisons showed significant differences at 6 and 30 min between placebo and the 0.5 mg aldosterone period (P < 0.05), with values for the 0.05 mg aldosterone period similar to those for the placebo period. From 330-390 min, opposite changes occurred; SVR was depressed during the 0.05 mg (P < 0.05) and 0.5 mg aldosterone periods compared with that during the placebo period. These delayed effects may reflect an increased vagal tone in the aldosterone groups, as demonstrated by higher values of the time domain parameter of heart rate variability pNN50. This study provides further evidence for clinically detectable rapid cardiovascular aldosterone effects in vivo obtained by noninvasive techniques. The data are consistent with the view of aldosterone as a rapid modulator of cardiovascular responses acting through nongenomic mechanisms.

Adult↗

Inhibition of platelet aggregation after intake of acetylsalicylic acid detected by a platelet function analyzer (PFA-100).

OBJECTIVE: The aim of the investigation was to determine the inhibition of platelet aggregation detected by the platelet function analyzer PFA-100 in patients with coronary artery disease who routinely take 100 mg acetylsalicylic acid once daily. METHOD: The PFA-100 (Dade International Inc., Miami, USA) is a new device for in vitro measurement of platelet function in citrated whole blood. The time needed to form a platelet plug occluding the aperture cut into a collagen/epinephrine- or collagen/ADP-coated membrane is determined under high shear conditions. Typically, acetylsalicylic acid-induced inhibition of platelet aggregation is detected by prolonged closure time in collagen/epinephrine or and normal values for collagen/ADP. Blood samples of 48 patients were investigated, the control group consisted of 10 healthy volunteers without intake of acetylsalicylic acid. The upper limits of normal values of the control group were 137 sec closure time for collagen/epinephrine and 150 sec for collagen/ADP (mean + 2 SD). RESULTS: Statistical analysis (Wilcoxon test) did not show a significant difference (p = 0.46) between the patient group (129 +/- 11 sec) and the control group (92 +/- 7 sec) for collagen/epinephrine (mean +/- SEM). Only 31% of patients had closure time values above those upper limits defined above. CONCLUSION: The effect of 100 mg acetylsalicylic acid daily appears to be too small and too variable to detect a sufficient inhibition of platelet aggregation by the PFA-100 in all patients with coronary artery disease.

Adult↗

[Nocturnal ventricular arrhythmia in patients with sleep apnea and suspected coronary heart disease].

BACKGROUND: Patients with sleep apnea and nocturnal brady- and tachyarrhythmia are considered to be patients at especially high risk within the group of all apnea patients. PATIENTS AND METHODS: 13 patients with sleep apnea (apnea-index > 10 events/h), suspected coronary heart disease and known increased frequency of nocturnal premature ventricular contractions (PVC) were studied. Polysomnography, long-term ECG and six-lead ECG were performed. RESULTS: Within the period studied (1.00 to 6.00 o'clock), an average of 47 PVC per hour was recorded (range 4 to 337/h). In two patients 24 episodes of nocturnal myocardial ischemia were observed, but were not accompanied by PVC. Interestingly only 387 of 1371 premature ventricular contractions (28.2%) were associated to apnea/hyperventilation episodes. Arrhythmia occurred mainly during sleep stages I/II and REM (n.s.). There was a tendency towards more frequent PVC with more pronounced oxygen desaturations. CONCLUSION: Patients with coronary heart disease, obstructive sleep apnea and severe hyoxemia are at higher risk of developing nocturnal PVC because reduced hypoxic tolerance of the heart may lead to electrical instability.

Bradycardia↗