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T Clausen

Publications and source records attributed to T Clausen.

At least 163 records · Page 9Linked to original sources

Effect of age, potassium depletion and denervation on specific displaceable [3H]ouabain binding in rat skeletal muscle in vivo.

1. Following intraperitoneal injection of [(3)H]ouabain in rats, the isotope is rapidly distributed in blood plasma available for binding to the Na-K-ATPase in the plasma membranes of most tissues. In skeletal muscle tissue excised and washed 4 x 30 min in ice-cold buffer, 95% of the (3)H activity retained was shown to be [(3)H]ouabain using a specific binding assay.2. The [(3)H]ouabain bound to soleus and extensor digitorum longus (e.d.l.) muscles in vivo and retained following wash-out in the cold showed the same saturation characteristics as those determined when binding took place in vitro.3. In soleus and e.d.l. muscles obtained from 28-day-old rats, the number of [(3)H]ouabain binding sites measured in vivo was 583+/-19 and 720+/-22 pmol/g wet wt., respectively, i.e. in good agreement with previous and present results obtained in vitro.4. In vivo measurements showed that 7 days after denervation, the number of [(3)H]ouabain binding sites in soleus and e.d.l. muscles was reduced by 22 and 13%, respectively.5. In the age interval from 28 to 85 days, the number of [(3)H]ouabain binding sites in soleus was found to decrease by 58%. Following I.P. injection of [(3)H]ouabain, the 85-day-old rats showed a more pronounced and sustained rise in plasma (3)H activity, which in part can be due to the reduced capacity for [(3)H]ouabain binding in skeletal muscle.6. K depletion induced by the administration of K-deficient diet for 3 weeks reduced [(3)H]ouabain binding by 63% in soleus muscles. In the K-depleted animals, the plasma (3)H activity measured 15 min after I.P. injection of [(3)H]ouabain was 77% higher than in controls receiving the same dose per kg body weight.7. The present in vivo results provide further support for the idea that increased digitalis toxicity due to increasing age or K depletion is related to reduced binding capacity for digitalis glycosides in skeletal muscle.

Aging↗

The relationship between the transport of glucose and cations across cell membranes in isolated tissues. XI. The effect of vanadate on 45Ca-efflux and sugar transport in adipose tissue and skeletal muscle.

(1) The effects of vanadate of hexose transport, 45Ca-exchange and (Na+, K+)-contents have been characterized in isolated adipose tissue and skeletal muscles of the rat. (2) In whole epididymal fat pads, vanadate (0.5-5.0 mM) markedly stimulated the uptake of 2-deoxy[14C]glucose as well as the efflux of 3-O-[14C]methylglucose. (3) Within the same concentration range, vanadate induced an early increase in 45Ca-washout from preloaded fat pads. The maximum increases in the fractional losses of 3-O-[14C]methylglucose and 45Ca were significantly correlated (P less than 0.001, r = 0.98). (4) In extensor digitorum longus and soleus muscles, vanadate (0.5-5.0 mM) stimulated the efflux of 3-O-[14C]methylglucose and this effect was preceded by rise in the washout of 45Ca. The maximum increases in the fractional losses pf 3-O-[14C]methylglucose and 45Ca were significantly correlated (P less than 0.005, r = 0.98). (5) In extensor digitorum longus and soleus muscles, vanadate increased K+-contents and decreased Na+ contents. (6) The stimulation of 45Ca-washout presumably reflects an increase in the cytoplasmic Ca2+ level, brought about by an inhibitory effect of vanadate on the Ca2+-sensitive ATPase of the sarcoplasmic or the endoplasmic reticulum. As demonstrated for most other insulin-like agents (Sørensen, S.S., Christensen, F. and Clausen, T. (1980) Biochim. Biophys. Acta 602, 433-445), the stimulating effect of vanadate on glucose transport appears to be associated with or mediated by a rise in the cytoplasmic Ca2+ level.

Adipose Tissue↗

Sympathetic nerve terminal destruction has no effect on specific [3H]ouabain binding to intact mouse and rat skeletal muscle.

Following pretreatment with 6-OH-dopamine, the sympathetic nerve endings of the iris and skeletal muscle of mice and rats were not longer detectable by cytochemistry for noradrenaline. In the same animals, the specific binding of [3H] ouabain to intact soleus muscles was not significantly different from that measured in controls, Neither ouabain-suppressible 42K uptake nor Na-K contents were affected by chemical sympathectomy.

Animals↗

The relationship between the transport of glucose and cations across cell membranes in isolated tissues. X. Effect of glucose transport stimuli on the efflux of isotopically labelled calcium and 3-O-methylglucose from soleus muscles and epididymal fat pads of the rat.

(1) The relationship between Ca2+ and sugar transport has been studied by comparing the washout of 45Ca and 3-O-[14C]methylglucose from preloaded isolated rat soleus muscles and whole epididymal fat pads. (2) In soleus muscle, nine different agents with well established stimulating effects on glucose transport were all found to produce a marked increase in 3-O-[14C]methylglucose washout, which in each instance was preceded by or coincided with a rise in the washout of 45Ca. (3) Trypsin, 2,4-dinitrophenol, p-chloromercuriphenylsulfonic acid, H2O2 and hyperosmolarity all produced dose-dependent stimulation of the washout of 45Ca and 3-O-[3H]methylglucose. Regression analysis showed a highly significant correlation between the increases in the two parameters (P < 0.001). (4) Depolarization and Na+ influx induced by veratrine were found to be associated with a marked rise in 45Ca release followed by stimulation of 3-O-[14C]methylglucose washout. (5) In epididymal fat pads, six different agents known to stimulate glucose transport were found to produce a highly significant (P < 0.001) increase in the washout of 45Ca and 3-O-[14C]methylglucose. (6) It is concluded that in the major targets for insulin action, activation of the glucose transport system can be elicited by a rise in cytoplasmic Ca2+ concentration brought about by mobilization of Ca2+ from endogenous cellular pools.

4-Chloromercuribenzenesulfonate↗

Beta 2-adrenoceptors mediate the stimulating effect of adrenaline on active electrogenic Na-K-transport in rat soleus muscle.

The relative role of beta 1- and beta 2-adrenoceptors in mediating the stimulating effect of adrenaline on active electrogenic Na-K-transport has been assessed in experiments on rat soleus muscles in vitro and in vivo. 2 In the rat isolated soleus muscle, adrenaline (10(-6) M) increases the resting membrane potential (EM) by 5.8 mV and stimulates 22Na-efflux and ouabain-suppressible 42K-uptake by 91 and 94%, respectively. 3 All of these effects are completely blocked by propranolol (10(-5) M), whereas the beta 1-selective adrenoceptor antagonist, metoprolol, was found to be at least 50 times less potent. 4 The beta 2-adrenoceptor agonist, salbutamol, was at least 100 times as potent as H133/22 (a beta 1-selective agonist) in stimulating 22Na-efflux and 42K-influx. 5 In experiments performed under pentobarbitone anaesthesia, the intravenous injection of adrenaline (5 microgram) or salbutamol (0.5 to 50 microgram) led to a rapid and marked increase in the EM of the exposed soleus muscle. This hyperpolarizing effect could not be accounted for by the concomitant, relatively modest change in extracellular K.

Albuterol↗

Combined effects of adrenaline and insulin on active electrogenic Na+-K+ transport in rat soleus muscle.

Both beta 2-adrenoreceptor stimulants (such as adrenaline and salbutamol) and insulin can increase active Na+-K+ transport and hyperpolarise skeletal cells. Thus, adrenaline and insulin, which are otherwise antagonistic regulators of several metabolic processes, have one action in common, namely, stimulation of active ion translocation. This is especially interesting as cyclic AMP stimulates Na+-K+ transport, whereas a lowering of the cytoplasmic concentration of cyclic AMP has been proposed as an early signal in the action of insulin. Here we report the results of experiments in which the active Na+-K+ transport and membrane potential (EM) of rat soleus muscles were studied during the action of supramaximal doses of insulin and beta 2-adrenoreceptor stimulants, alone and in combination. We conclude that the stimulant action of insulin on active electrogenic Na+-K+ transport is unlikely to be evoked by a lowering of the intracellular concentration of cyclic AMP.

Animals↗

The effect of hyperosmolarity and insulin on resting tension and calcium fluxes in rat soleus muscle.

1. The effect of hyperosmolarity on resting tension and on the fluxes of Na and Ca has been characterized in isolated soleus muscles of the rat. 2. When the osmolarity of the incubation medium was increased by the addition of non-permeant solutes (100-400 m-osmole), the tension showed a rapid dos-dependent rise which could be maintained for up to 60 min. 3. Tension development was unaffected by tubocurarine (2 X 10(-5) M), considerably diminished by the omission of Na or Ca from the incubation medium, and inhibited by tetracaine (10(-4) M). 4. The addition of mannitol or sucrose (200 mM) induced a prompt stimulation of the influx of 22Na and 45Ca. Both in the absence and the presence of extracellular Ca hyperosmolarity stimulated the washout of 45Ca from preloaded muscles. Tetracaine (5 X 10(-4 M) suppressed the effects of hyperosmolarity on both the influx and the efflux of 45Ca, but only gave a modest reduction in the stimulation of 22Na influx. 5. Insulin (5-100 mu./ml.) induced a considerable further rise in the resting tension of muscles exposed to mannitol or sucrose (200 mM). This effect was seen in a glucose-free medium and could be abolished by the addition of insulin antibody. 6. It is concluded that hyperosmolarity leads to a rise in the concentration of free Ca2+ ions in the sarcoplasm, partly due to a mobilization of Ca from intracellular pools, but to a considerable extent supplemented from extracelluar sources. Under these conditions, insulin further augments the Ca2+ ion level in the cytoplasm.

Animals↗

Thyroid hormones and the energetics of active sodium-potassium transport in mammalian skeletal muscles.

1. The steady-state heat production rate (E) of soleus muscles obtained from adult mice in various thyroid states was measured in a perfused microcalorimeter. The ouabain-suppressible fractions of E and 42K influx were compared and the energetic efficiency of active Na-K transport assessed. 2. Hypothyroidism with plasma thyroxine concentrations below 1 microgram/100 ml. was induced by pretreatment with 131I or perchlorate. In soleus muscles isolated from treated animals, mean E values were 25.1 +/- 0.7 and 24.2 +/- 0.5 mcal.g wet wt.-1.min-1 for the 131I and the perchlorate series respectively, i.e. about 30% lower than the control level (36.3 +/- 1.5 mcal.g wet wt.-1.min-1). Following triiodothyronine treatment, E was increased by about 45%. 3. In muscles from hypothyroid (131I and perchlorate series), euthyroid and hyperthyroid mice ouabain (10(-3) M) induced a rapid decrease in E of 1.6 +/- 0.1 and 1.4 +/- 0.1, 2.5 +/- 0.2, and 4.3 +/- 0.6 mcal.g wet wt.-1.min-1 respectively, i.e. between 6 and 8% of E. 4. In muscles obtained from hypothyroid, euthyroid and hyperthyroid mice, the ouabain-suppressible component of 42K influx was 0.17 +/- 0.04, 0.31 +/- 0.02 and 0.45 +/- 0.02 micromole. g wet wt.-1.min-1 respectively. Whereas the total number of ouabain binding sites varied appreciably with the thyroid status, the Na-K contents of soleus or diaphragm muscles showed no significant changes. 5. Notwithstanding the parallelism between the changes in basal E and ouabain-sensitive components of E and K influx with the thyroid status, it is concluded that active NA-K transport cannot be considered a primary effector of thyroid thermogenesis in intact mammalian skeletal muscle. The direct contribution of active NA-K transport to this thermogenesis was indeed small compared with the over-all cellular energy dissipation. 6. The minimum over-all energetic efficiency of the transport process in the intact muscles (30--35%) was not dependent on the thyroid status.

Animals↗

The effect of insulin on the washout of [45Ca]calcium from adipocytes and soleus muscle of the rat.

Insulin stimulates the washout of 45Ca from preloaded isolated fat-cells, whole epididymal fat-pads and isolated soleus muscles of the rat. This effect occurs within 10 min after the addition of the hormone, and it can be detected at concentrations down to those measured in rat plasma. When K+ is omitted from the washout medium, the effect on soleus muscles is more pronounced and increases with the time of exposure.

Adipose Tissue↗

The effect of insulin on the transport of sodium and potassium in rat soleus muscle.

1. The action of insulin on the transport and the distribution of Na and K has been studied in rat soleus muscles incubated at 30 degrees C in glucose-free Krebs-Ringer bicarbonate buffer. 2. Measurements of the uptake and the wash-out of 22Na indicate that the muscles contain an intracellular pool of Na available for transport which is confined to the water space not available to sucrose. Ouabain (10(-4)-10(-3)M) inhibited 22Na efflux by 69% (0-287 micronmole/g tissue wet weight per minute) and 42K-influx by 40% (0-196 micronmole/g tissue wet weight per minute). When all extracellular Na was replaced by Li, both 22Na-efflux adn 42K-influx were inhibited to about the same extent and ouabain produced very little further inhibition. 2,4-dinitrophenol decreased the ouabain-resistant component of 22Na-efflux by 39%. 3. Insulin (from 0-1 to 100 mu./ml.) increased the rate coefficient of 22Na-efflux by from 11 to 46% within 15 min. In the presence of ouabain (10(-3)M), the same relative increase was obtained, indicating that the hormone stimulates the glycoside-sensitive and the glycoside-insensitive Na transport to a similar extent. The effect of insulin on 22Na-efflux was not abolished by tetracaine (0-5 X 10(-3)M), phlorizin (0-5 X 10(-2)M) or by the substitution of Na, K, Mg or Ca. In the presence of 2,4-dinitrophenol (0-5 X 10(-4)M) or at temperatures below 15 degrees C, the hormone produced no detectable change in 22Na-efflux. 4. Insulin increased 42K-influx from 0-525 to 0-664 mumole/g tissue wet weight per minute. This effect was entirely blocked by ouabain but not by tetracaine. Insulin produced a 14% transient decrease in 42K-efflux. 5. The continued exposure to insulin led to a new steady state, in which the intracellular Na pool was decreased from around 10 to around 5 mumole/g tissue wet weight and the K content increased by an equivalent amount. In the presence of ouabain or at low extracellular concentrations of K, insulin increased the rate of 22Na-influx by around 35%. This effect was blocked by 2,4-dinitrophenol but not be tetracaine. 6. It is concluded that insulin stimulates the active coupled transport of Na and K, possibly by increasing the relative Na-affinity of the system mediating this process.

Animals↗

Microcalorimetric determination of energy expenditure due to active sodium-potassium transport in the soleus muscle and brown adipose tissue of the rat.

1. The resting heat production rate (E) of soleus muscles from young rats and brown adipose tissue from adult rats was measured by means of a perfusable heat flux microcalorimeter in the absence and presence of ouabain. In the soleus muscle, the acute response of E to ouabain was compared with the ouabain-suppressible components of 22Na-efflux and 42K-influx. 2. In standard Krebs-Ringer bicarbonate buffer, ouabain (10(-3)M) induced an immediate but transient decrease in E of around 5%. Both in muscle and adipose tissue this was followed by a progressive rise in heat production rate. 3. When the medium was enriched with Mg (10 mM), ouabain produced a sustained decrease in E of the same magnitude as in the standard medium and the secondary rise was less marked or abolished. Under these conditions, in the soleus muscle, ouabain inhibited E by 5% (i.e. by 1-76 +/- 0-22 mcal.g wet wt.-1.min-1), 22Na-efflux by 58% (0-187 +/- 0-013 micronmole. g wet wt.-1.min-1) and 42K-influx by 34% (0-132 +/- 0-028 micronmole. g wet wt.-1.min-1). 4. When the muscles were loaded with Na by pre-incubation in K-free Mg-enriched medium, the addition of K (3mM) induced an immediate ouabain-suppressible increase in E of 2-98 +/- 0-33 mcal. g wet wt.-1.min-1 and a concomitant stimulation of 22Na-efflux of 0-388 +/- 0-136 micronmole. g wet wt.-1.min-1. 5. Maximum Na/ATP ratios for the active Na-K transport process were computed, with no assumption as to the in vivo free energy of ATP hydrolysis. These were 2-1, 1-9 and 2-3 under the conditions described in paragraphs (2), (3) and (4) respectively. 6. The calculated reversible thermodynamic work associated with active Na-K transport corresponded to 34% of the measured ouabain-induced decrease in E. On the premise that the maximum efficiency of the cellular energy conservation processes is 65%, this estimate indicates that the minimum energetic efficiency of ATP utilization by the active Na-K transport process in mammalian muscle is 52%.

Adenosine Triphosphate↗

The effect of catecholamines on Na-K transport and membrane potential in rat soleus muscle.

1. The action of catecholamines on the transport and the distribution of Na and K and the resting membrane potential (E(M)) has been investigated in soleus muscles isolated from fed rats.2. In a substrate-free Krebs-Ringer bicarbonate buffer adrenaline (ADR) (6 x 10(-6)M) increased (22)Na efflux by 83%, (42)K influx by 34%, and E(M) by 10%. Similar effects were exerted by noradrenaline (NA), phenylephrine, salbutamol and isoprenaline. The effects of ADR on Na-K transport and E(M) were suppressed by ouabain (10(-3)M) and propranolol (10(-5)M), but not by thymoxamine (10(-5)M) or tetracaine (10(-4)M).3. Following 90 min of incubation in the presence of ADR (6 x 10(-6)M), the intracellular K/Na-ratio was increased threefold. NA produced almost the same change, and both catecholamines seem to induce a new steady-state distribution of Na and K which can be maintained for several hours in vitro.4. The effect of ADR on (22)Na efflux and E(M) could be detected at concentrations down to 6 x 10(-9) and 6 x 10(-10)M, respectively, and half-maximum increase was obtained at around 2 x 10(-8)M. NA was at least one order of magnitude less potent.5. The effect of low concentrations of ADR on (22)Na efflux was potentiated by theophylline (2 mM). When added together, dibutyryl-cyclic AMP and theophylline mimicked the action of ADR on (22)Na efflux, (42)K influx, Na/K content and E(M). Ouabain (10(-3)M) also suppressed the effect of dibutyryl-cyclic AMP and theophylline on Na-K transport.6. Following the addition of ouabain (10(-3)M), E(M) rapidly dropped from a mean of -71 to -63 mV, and then showed a slow linear fall for up to 4hr.7. The hyperpolarization induced by ADR was associated with a decrease in membrane conductance, (22)Na influx and (42)K efflux. The time course and the response to ouabain suggests that all of these effects are secondary to stimulation of the active coupled transport of Na and K.8. It is concluded that in rat soleus muscle, the active Na-K transport is electrogenic and susceptible to stimulation by catecholamines via beta-adrenoceptors. This effect is mediated by adenyl cyclase activation and may account for the increase in E(M) and the intracellular K/Na ratio.

Albuterol↗

Active Na-K transport and the rate of ouabain binding. The effect of insulin and other stimuli on skeletal muscle and adipocytes.

1. The effect of stimulation or inhibition of active Na-K transport on [(3)H]ouabain binding has been investigated in isolated soleus muscles and adipocytes.2. In rat soleus muscle, the ouabain-sensitive component of (42)K influx was stimulated by insulin (100 m-u/ml.), adrenaline (6 x 10(-6)M), and by pre-incubation with veratrine (10(-5)M) or in a K-free buffer. In all of these instances, the rate of ouabain binding was increased by 41-113%. Conversely, pre-treatment with tetracaine (0.2 mM) decreased the (42)K-influx and diminished the rate of [(3)H]ouabain binding by 36%.3. Neither insulin, adrenaline or tetracaine produced any detectable change in the total number of ouabain-binding sites (as measured under equilibrium conditions) in rat soleus muscle.4. In mouse and guinea-pig soleus muscle and in fat cells isolated from rats, insulin also increased the rate of [(3)H]ouabain binding without producing any significant change in the total number of ouabain-binding sites.5. Both in soleus muscle and the epididymal fat pad of the rat, there was a linear correlation between (42)K influx and the initial rate of [(3)H]ouabain binding.6. It is concluded that the rate of ouabain binding is determined significantly by the rate of active Na-K transport, but within the time intervals studied (4-6 hr) stimulation or inhibition of the Na pump does not lead to any appreciable change in the total number of Na pumps. It seems unlikely that the stimulation of active Na-K transport by insulin or adrenaline is due to unmasking or de novo synthesis of Na pumps.

Adipose Tissue↗