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Biomedical subjects

T Godfraind

Publications and source records attributed to T Godfraind.

At least 199 records · Page 11Linked to original sources

Influence of pH and sodium on the inhibition of guinea-pig heart (Na+ + K+)-ATPase by calcium.

The inhibition of guinea-pig heart (Na+ + K+)-ATPase (ATP phosphohydrolase EC 3.6.1.3) by calcium has been studied at pH 7.4, 6.8 and 6.4. 1. A decrease in pH reduced the threshold inhibitory concentration of calcium and the calcium concentration producing an inhibition of 50% of the enzyme activity. 2. Calcium reduced the apparent affinity of the enzyme of Na+, this effect occurred only at pH 7.4. 3. Calcium increased the apparent affinity of the enzyme for K+, this effect was enhanced at acidic pH. 4. Activation of the enzyme by Na+ for a constant Na+ : K+ ratio has been studied at pH 7.4 and at pH 6.8 in the absence and in the presence of 3.10(-4) M Ca 2+; the results of this experiment indicate that Ca2+ effect at pH 7.4 was not influenced by Na+ -- K+ competition and was probably due to a Na+ -- Ca2+ interaction. 5. At pH 7.4, the calcium inhibitory threshold concentration and the concentration producing 50% inhibition were reduced when Na+ was low; at pH 6.8, the calcium inhibition was not markedly modified by the change of Na+ concentration. 6. The Ca2+ -activated ATPase of myosin B which is related to the contractile behaviour of muscle and the Ca2+ -ATPase of the sarcoplasmic reticulum which is related to the ability of this structure to accumulate calcium were activated in a range of calcium concentration producing an inhibition of (Na2+ + K+) -ATPase. The present results indicate that the increase by acidity of the (Na2+ + K+) -ATPase sensitivity to calcium might be due to a suppression of a Na+ -Ca2+ interaction. On the basis of these observations, it is proposed that calcium might inhibit the Na+ -pump during the repolarization phase of the action potential and that, by this effect, it might control cell excitability.

Adenosine Triphosphatases↗

Calcium incorporation by smooth muscle microsomes.

The purpose of the present work was to study the factors influencing calcium incorporation into a microsomal fraction prepared from the longitudinal smooth muscle of the guinea-pig ileum. Calcium incorporation required the presence of both ATP and Mg2+ and was unaffected by azide. It was enhanced by oxalate; this effect was pH dependent and it was maximal at pH 6.6. The relation between calcium uptake with oxalate and free Ca2+ concentration in the medium was represented by a curve with an optimum for Ca2+ equal to 3-10-5 M. The threshold concentration was comprised between 5-10-7 and 10-6 7. The optimum calcium uptake rate was 4.5 nmol Ca2+/mg protein per min. In the absence of oxalate, two distinct groups of binding sites were identified. Low affinity sites had a binding constant of 7-104 M-1 and a maximum binding capacity of 0.6-106 M-1 and a binding capacity of 33 nmol Ca2+/mg protein; their capacity was sensitive to pH changes. In the absence of oxalate, Ca2+ binding was depressed by Na+ with respect to K+ or choline. When the medium was supplemented with oxalate, the stimulation of 45Ca incorporation was barely detectable in the presence of choline+ and it was lower in a medium containing Na+ instead of K+. The subcellular distribution profiles of calcium incorporation with and without oxalate indicate the microsomal location of both activities. However, the oxalate-stimulated calcium uptake activity sedimented faster than the calcium binding activity. The subcellular distribution of marker enzyme actvities has been examined. The present results indicate that Ca2+ incorporations with and without oxalate are the result of two processes likely related to two different structures. The role of microsomal calcium uptake in excitation-contraction coupling and its modification by the activity of the sodium pump is discussed.

Animals↗

Calcium exchange in vascular smooth muscle, action of noradrenaline and lanthanum.

1. The Na, K, Ca and Mg content and the 45Ca uptake and loss were determined in rat aortae incubated in physiological solution or in solution containing LaCl3 instead of CaCl2. 2. Aortae washed in La-solution contained less Ca and Na than controls in physiological solution, the K content was not modified and the Mg content was slightly decreased. 3. In 50 mM-La solution the 45Ca diffusion space was intermediate between the values found for the [14C]sorbitol space and the [14C]inulin space, indicating that there was no Ca entry within the cell nor Ca binding at superficial sites. 45Ca loss from the tissue was directly related to the La concentration. 4. Noradrenaline increased the rate of uptake of 45Ca into the Ca fraction resistant to displacement by La. This increase was dose dependent, a response of 50% of the maximum being produced by 2 x 10(-8) noradrenaline as for the contraction. In the presence of phentolamine, the dose-effect curves for the action of noradrenaline on 45Ca uptake were displaced in a manner characteristic of competitive antagonism. The rhoA2 for phentolamine was 7-8. 5. In physiological solution, the rate of loss of 45Ca, from the Ca fraction resistant to displacement by La, was increased by noradrenaline the ED50 was 2 x 10(-8) M, and the effect was abolished by phentolamine. 6. In view of the similarity of phentolamine rhoA2 estimated by measuring noradrenaline sensitive 45Ca uptake or noradrenaline evoked contraction, it is likely that the activation of alpha-adrenergic receptors is responsible for both effects.

Animals↗