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A Sanchez

Publications and source records attributed to A Sanchez.

At least 271 records · Page 15Linked to original sources

Use of salicylic acid to measure the apparent intracellular pH in the Ehrlich ascites-tumor cell and Escherichia coli.

The distribution of salicylic acid between the intracellular and extracellular phases has been used to estimate the intracellular pH in the Ehrlich cell and Escherichia coli. The validity of the method was established by: (i) comparison of the results obtained with salicylic acid with those obtained with 5,5-dimethyloxazolidine-2,4-dione; (ii) by following changes of the apparent intracellular pH under circumstances in which such changes are predictable, e.g., the addition of weak acids or proton conductors to the incubation medium during incubation at acidic pH; (iii) by comparison of the apparent intracellular pH changes with the uptake of H+ by the cells estimated from the changes of the medium pH. Optimal results are obtained with this indicator when the extracellular pH is below 5.5, because in this case the indicator is to a sufficient extent in its penetrating form, so that its movement can reflect intracellular pH changes occurring in less than 30 s. When the intracellular pH falls below 5.2 measurable binding of salicylic acid to the intracellular material of the Ehrlich cell takes place, but above this pH no binding has been found. The Ehrlich cell and cells of Escherichia coli behaved similarly under various experimental circumstances tested, but striking difference were found in the inherent permeability of the membrane to H+ and in the changes in this parameter by lowering the temperature to 2 degrees C.

Animals↗

Free carboxylate groups required for transport of neutral amino acids by the Ehrlich ascites-tumor cell.

Although uncharged structures analogous to the carboxyl group of the amino acid molecule have served in place of that group for transport into some cells, we find that substitution either by the carboxamide group or by the chloromethyl ketone group eliminates inhibition of transport Systems A or L of the Ehrlich ascites tumor cell. Comparison of the loss of System L transport on acidification shows that the pH at which this loss occurs is correlated with pK'1 of the amino acid substrate, suggesting that transport is terminated by protonation of the site-bound carboxylate group.

Amides↗

Role of protein dissociation in the transport of acidic amino acids by the Ehrlich ascites tumor cell.

The pH profile for the uptake of L-glutamic acid by the Ehrlich ascites tumor cell arises largely as a sum of the decline with falling pH of a slow, Na+-dependent uptake by System A, and an increasing uptake by Na+-independent System L. The latter maximizes at about pH 4.5, following approximately the titration curve of the distal carboxyl group. This shift in route of uptake was verified by (a) a declining Na+-dependent component, (b) an almost corresponding decline in the 2-(methylamino)-isobutyric acid-inhibitable component, (c) a rising component inhibited by 2-aminonorbornane-2-carboxylic acid. Other amino acids recognized as principally reactive with Systems A or L yielded corresponding inhibitory effects with some conspicious exceptions: 2-Aminoisobutyric acid and even glycine become better substrates of System L as the pH is lowered; hence their inhibitory action on glutamic acid uptake is not lost. The above results were characterized by generally consistent relations among the half-saturation concentrations of the interacting amino acids with respect to: their own uptake, their inhibition of the uptake, one by another, and their trans stimulation of exodus, one by another. A small Na+-dependent component of uptake retained by L-glutamic acid but not by D-glutamic acid at pH 4.5 is inhibitable by methionine but by neither 2-(methylamino)-isobutyric acid nor the norbornane amino acid. We provisionally identified this component with System ASC, which transports L-glutamine throughout the pH range studied. No transport activity specific to the anionic amino acids was detected, and the unequivocally anionic cysteic acid showed neither significant mediated uptake nor inhibition of the uptake of glutamic aic or of the norbornane amino acid. The dicarboxylic amino acids take the sequence, aspartic acid less than glutamic acid less than alpha-aminoadipic acid less than S-carboxymethylcysteine, in their rate of mediated, Na+-independent uptake at low pH. Diiodotyrosine and two dissimilas isomers of nitrotyrosine also show acceleration of uptake as the phenolate group on the sidechain is protonated, a result indicating that the acidic group need not be a carboxyl group and need not take a specific position in space to be accepted at the receptor site L. The presence of the carboxyl group does not upset the normal stereospecificity of System L until it falls on the beta-carbon in aspartic acid; even then it is the presence of the carbonyl group and not of the intact carboxyl group nor of its hydroxyl group that cancels out the stereospecificity, as was shown by the absence of normal stereospecificity for aspartic acid and asparagine and its presence in glutamic acid, homoserine and glutamine. In agreement, the uptak of aspartic acid is peculiarly sensitive to the presence of an alpha-methyl group or of other structures that modify the orientation of the sidechain.

Amino Acids↗

Massive pulmonary embolism without arterial hypoxaemia: pathophysiology in two cases.

Two cases of massive pulmonary embolism, confirmed by angiographic or necropsy findings, were remarkable by the absence of arterial hypoxaemia. The various mechanisms responsible for arterial hypoxaemia in pulmonary embolism are discussed. It is suggested that in patients with massive pulmonary embolism a markedly decreased cardiac output might account for the absence of arterial hypoxaemia. In the light of these two cases the finding of a normal PaO2 does not rule out the diagnosis of pulmonary embolism.

Aged↗

Unexpected additional mode of energization of amino-acid transport into Ehrlich cells.

Ehrlich cells treated with dinitrophenol and iodoacetate rapidly recover their 30-sec uptake of 2-(methyl-amino)-isobutyrate on treatment with 0.1 mM phenazine methosulfate + 20 mM sodium ascorbate before they begin to recover from the severely depressed ATP levels and alkali-ion gradients. Addition of 10 mM pyruvate also restores uptake of methylaminoisobutyrate before the alkali-ion gradients rise. This restoration is prevented by rotenone, but rotenone does not handicap restoration by phenazine methosulfate/ascorbate. Na+-independent uptake of 2-aminonorbornane-2-carboxylate by Ehrlich cells is affected the same way. Quinacrine almost completely suppresses uptake of methylaminoisobutyrate within the 30-sec uptake test, even when ATP levels are sustained by pyruvate and alkali-ion gradients are not depressed. Ouabain prevents restoration of both Na+-dependent and Na+-independent amino-acid transport by phenazine methosulfate/ascorbate or pyruvate. We interpret these results to indicate that amino-acid transport can be energized not only by known means, but also by reducing equivalents, which presumably reach the plasma membrane in the form of NADH from the mitochondria when the source of energy is pyruvate. In support of this hypothesis, the distribution of methylaminoisobutyrate between plasma membrane vesicles and their supporting media was influenced in the predictable way by NADH, quinacrine, and an uncoupling agent, proceeding on the assumption that more of the vesicles had the everted rather than the natural orientation.

Adenosine Triphosphate↗

The inotropic memory of amphibian myocardium.

(1) Experimentally observed changes of contractile force induced by changes in the pattern of stimulation of frog ventricular myocardium were compared with predictions computed on the basis of a model for the contractile conditioning, proposed in a previous paper. (2) For this purpose, two functions (Potentiation and Inhibition) which describe in the model the effect of previous contractions, were determined experimentally. (3) It is shown that the model adequately predicts : force-frequency curve Inotropic Effect Curves at different basal frequencies, effect of the suppression of a contraction in a sequence of definite frequency, frequency-staircases, and strength-interval curves. (4) The formal characteristics of the model are discussed, and it is suggested that the potentiation mechanism results from the recirculation of activator calcium in two types of compartments, from which calcium passes to the myofilaments during the contractions or is lost to the exterior with first order kinetics during the rest period. Possible locations for these compartments are proposed. Various hypothesis on the nature of the inhibitory mechanism are considered.

Animals↗