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G Pons

Publications and source records attributed to G Pons.

At least 127 records · Page 7Linked to original sources

Rat liver mitochondria contain two immunologically distinct dihydrolipoamide dehydrogenases.

We have raised antisera against dihydrolipoamide dehydrogenase. One antigen was isolated from purified bovine kidney pyruvate dehydrogenase complex (PDC). The other antigen was a commercial preparation of porcine heart dihydrolipoamide dehydrogenase (E3) which did not first involve purification of the alpha-keto acid dehydrogenase complex(es). Both antibody preparations cross-reacted with the E3 components of PDC, alpha-ketoglutarate dehydrogenase complex, and branched-chain keto acid dehydrogenase complex. This demonstrates the immunological identity of the E3 components. These sera totally precipitated E3 activity from the purified complexes, from purified preparations of E3, and from extracts of rat heart and kidney mitochondria. The two sera vary in their reaction with rat liver mitochondrial extracts: the anti PDC-E3 serum left residual E3 activity (approximately 50% of the original) that was precipitable by the anti-E3 anti-serum. This indicates that liver contains two immunologically distinct forms of E3. Metabolic assays measuring the differential effects of the two sera on the glycine decarboxylation reaction suggest that the form which is immunologically nonreactive with the anti-PDC-E3 serum could represent the E3 involved in the glycine cleavage system.

Animals↗

Isolation of a cDNA clone for the dihydrolipoamide acetyltransferase component of the human liver pyruvate dehydrogenase complex.

Dihydrolipoamide acetyltransferase (E2) forms the structural core of pyruvate dehydrogenase complex. A cDNA clone (lambda E2-1) for mammalian E2 was identified from a human liver lambda gt11 library using anti-E2 serum. Affinity-selected antibodies using the fusion protein from lambda E2-1 immuno-reacted specifically with E2 of purified pyruvate dehydrogenase complex on immuno-blot analysis. The cDNA insert was approximately 2.3 kb in length with an internal EcoR1 site generating 1.4 and 0.9 kb fragments. A synthetic 17-mer oligodeoxynucleotide mixture based on the amino acid sequence surrounding the lipoic acid-containing lysine residue in bovine kidney E2 hybridized with the 2.3 kb cDNA insert and the 1.4 kb fragment.

Acetyltransferases↗

Kinetic properties and essential amino acids of the 2,3-bisphosphoglycerate synthase-phosphatase from pig skeletal muscle.

Histidine, arginine and lysine residues are essential for the multifunctional 2,3-bisphosphoglycerate synthase-phosphatase purified from pig skeletal muscle. The synthase, phosphatase and phosphoglycerate mutase activities of the enzyme are concurrently lost upon treatment with diethylpyrocarbonate, phenylglyoxal and trinitrobenzenesulfonate. The phosphatase activity shows hyperbolic kinetics. In contrast, the synthase activity shows a nonhyperbolic pattern which fits to a second-degree polynomial. The Km values for glycerate 1,3-P2, glycerate 3-P and glycerate 2,3-P2 are similar to those of the enzyme from mammalian erythrocytes.

Amino Acids↗

Reversed septal motion in right ventricular volume overload: false negative sign in the presence of increased septal thickness.

Paradoxical septal motion of the interventricular septum and right ventricular enlargement constitute diagnostic features of right ventricular volume overload. A diastolic septal displacement toward the left ventricle and its systolic normalization explain this phenomenon. A thick septum would, theoretically, impede such movement. One patient with a cardiac allograft and gross tricuspid regurgitation is described who, in the context of a rejection episode and in a very short interval, showed two septal motion patterns related to two different septal thicknesses. It is concluded that in a patient with large right ventricular dimension and increased septal thickness, lack of paradoxical septal motion does not rule out severe right ventricular volume overload.

Adult↗

Functional characterization of the enzymes with 2,3-bisphosphoglycerate phosphatase activity from pig skeletal muscle.

In pig skeletal muscle exist four enzymes with 2,3-bisphosphoglycerate phosphatase activity. Two of them (forms I-A and I-C) are multi-functional enzymes which, in addition to the phosphatase activity, possess 2,3-bisphosphoglycerate synthase and phosphoglycerate mutase activities. The other two enzyme forms (II-A and II-B) only show the phosphatase activity. The four enzymes differ in substrate specificity. Form I-C is highly specific for glycerate 2,3-P2; form I-A also hydrolyzes the monophosphoglycerates and forms II-A and II-B are specific for phosphoester bonds adjacent to a C-1 carboxylic group. The enzymes possess similar Km, Kcat and optimum pH value, but they are differently inhibited by the reaction products. They are also differently affected by glycolate-2-P (their main activator) and by other modifiers. Probably form I-A, which corresponds to M-type phosphoglycerate mutase, is the main enzyme implicated in the breakdown of glycerate 2,3-P2 in pig muscle.

Animals↗

Purification of 2,3-bisphosphoglycerate synthase-phosphatase from pig skeletal muscle.

Two enzymes which possess 2,3-bisphosphoglycerate synthase, 2,3-bisphosphoglycerate phosphatase and phosphoglycerate mutase activities have been purified from pig skeletal muscle. One of the enzymes corresponds to type M phosphoglycerate mutase. The other enzyme shows properties similar to those of the 2,3-bisphosphoglycerate synthase-phosphatase present in mammalian erythrocytes. The erythrocyte and the muscle enzyme possess the same molecular (56 000) and subunit (27 000) weights. The synthase, phosphatase and mutase activity ratio is similar in both enzymes, and they are affected by the same inhibitor (glycerate 3-P) and activators (glycolate 2-P, pyrophosphate, sulfite and bisulfite).

Animals↗

Hybrid forms of phosphoglycerate mutase and 2,3-bisphosphoglycerate synthase-phosphatase.

Purified phosphoglycerate mutase from pig skeletal muscle and 2,3-bisphosphoglycerate synthase-phosphatase from pig erythrocytes were hybridized "in vitro". The hybrid showed a behaviour on electrophoresis and on ion-exchange chromatography similar to that of a naturally occurring enzyme with phosphoglycerate mutase, 2,3-bisphosphoglycerate synthase and 2,3-bisphosphoglycerate phosphatase activities present in pig skeletal and heart muscle. Both the hybrid and the muscle enzyme possess similar activities ratio. From these and previous data it is suggested that the six enzymatic forms with phosphoglycerate mutase, 2,3-bisphosphoglycerate synthase and 2,3-bisphosphoglycerate phosphatase activities detected in mammalian tissues (Carreras et al. 1981, Comp. Biochem. Physiol. 70B, 477-485) result from combination of three subunits (types M, B and E).

Animals↗

Metabolism of glycerate-2,3-P2--VII. Enzymes involved in the metabolism of glycerate-2,3-P2 in cat tissues.

The levels of the enzymes involved in the metabolism of glycerate-2,3-P2 (phosphoglycerate mutase, bisphosphoglycerate synthase-phosphatase and bisphosphoglycerate phosphatase) in cat and in pig tissues are different. The main difference is the low level of bisphosphoglycerate synthase-phosphatase in cat tissues. As a consequence, in contrast with pig erythrocytes, in cat erythrocytes, both the synthesis and the breakdown of glycerate-2,3-P2 are mainly controlled by phosphoglycerate mutase.

2,3-Diphosphoglycerate↗

[Hypercalcemia associated with tumors in children. 20 cases].

Thirty episodes of hypercalcemia were observed in 20 children with solid tumors: principally 9 cases of non Hodgkin's lymphomas, 4 cases of rhabdomyosarcomas and 4 cases of Wilms' tumors. The 2 children with neurological manifestations and hypertension had the most severe symptoms secondary to the high calcium levels. However, hypercalcemia was asymptomatic in 8 of the 20 children. Focal seizures and metastatic calcifications subsequently occurred in 6 children. Emergency treatment of hypercalcemia often had partial or transient efficiency. In contrast, high calcium levels always returned to normal after anti-tumoral treatment.

Adolescent↗

Metabolism of glycerate-2,3-P2--IV. Effect of Hg2+ on the enzymes involved in the metabolism of glycerate-2,3-P2 in pig skeletal muscle.

Type M phosphoglycerate mutase and skeletal muscle bisphosphoglycerate synthase-phosphatase from pig are similarly affected by Hg2+. Both enzymes lose the phosphoglycerate mutase and the glycerate-2,3-P2 synthase activities, and increase the glycerate-2,3-P2 phosphatase activity upon Hg2+-treatment. In contrast, bisphosphoglycerate phosphatase from pig skeletal muscle is inactivated by Hg2+. These results confirm the similarity between phosphoglycerate mutase and bisphosphoglycerate synthase-phosphatase. In addition they support the existence of separate binding sites for monophosphoglycerates and for bisphosphoglycerates at the phosphoglycerate mutase active site.

2,3-Diphosphoglycerate↗

The adult respiratory distress syndrome.

The adult respiratory distress syndrome (ARDS) is an extreme form of noncardiogenic pulmonary edema associated with alveolar-capillary damage. Clinical features include acute respiratory distress, dyspnea and tachypnea, severe hypoxemia refractory to oxygen therapy, and diffuse bilateral pulmonary infiltrates. Any number of serious disorders can cause ARDS, but the processes leading to the alveolar permeability defect are not understood. Therefore, therapy remains nonspecific and supportive. Treatment includes positive end-expiratory pressure, careful fluid management, steroid therapy, and adequate nutrition. Unfortunately, even with the most sophisticated intensive care, the mortality of ARDS is still greater than 50%.

Adult↗

Lack of glucagon response to hypoglycemia in type I diabetics after long-term optimal therapy with a continuous subcutaneous insulin infusion pump.

Counterregulatory hormonal responses were studied in six patients after 4-18 mo treatment with a continuous subcutaneous insulin infusion pump. In response to insulin-induced hypoglycemia, significant increases in epinephrine, norepinephrine, cortisol, and growth hormone were measured in all subjects, while in five of the six patients glucagon levels did not increase at all. The persistence of these abnormal glucagon responses despite long-term optimal glucose control suggests that they are not due to hyperglycemia per se, but are due rather to a specific alpha cell abnormality. The high incidence of asymptomatic hypoglycemia in these patients emphasizes that caution is necessary to avoid serious hypoglycemia when striving for near-normal glucose control with insulin infusion pump therapy.

Adult↗

Relation of counterregulatory responses to hypoglycemia in type I diabetics.

We compared counterregulatory metabolic and hormonal responses in 8 normal controls with responses in 16 Type I (insulin-dependent) diabetics, 7 of whom had had repeated attacks of severe hypoglycemia, in an effort to determine whether these responses are related to the occurrence of hypoglycemia in the latter group. In response to insulin-induced hypoglycemia, peak values for glucose production (5.7 +/- 0.5 vs. 2.5 +/- 0.3 mg per kilogram of body weight per minute) (P less than 0.0001), glucagon (195 +/- 26 vs. 93 +/- 18 pg per milliliter) (P less than 0.0001), and growth hormone (63 +/- 8 vs. 37 +/- 5 ng per milliliter) (P less than 0.006) were significantly higher in the controls than in the diabetics. However, peak values for glucose production, glucagon, epinephrine, norepinephrine, cortisol, and growth hormone were similar in the diabetics with and without clinical hypoglycemia. Thus, with the present dose and method of insulin administration we were unable to predict the presence of severe hypoglycemic reactions in a group of Type I diabetics. Although deficient counterregulatory hormone responses are important in the pathogenesis of hypoglycemic reactions, we conclude that other factors in the daily lives of such patients also play a major part in determining whether reactions will occur.

Adolescent↗

Effect of vanadate on the formation and stability of the phosphoenzyme forms of 2,3-bisphosphoglycerate-dependent phosphoglycerate mutase and of phosphoglucomutase.

2,3-Bisphosphoglycerate-dependent phosphoglycerate mutase (2,3-bisphospho-D-glycerate:2-phospho-D-glycerate phosphotransferase, EC 2.7.5.3) and phosphoglucomutase (alpha-D-glucose-1,6-bisphosphate:alpha -D-glucose-1-phosphate phosphotransferase, EC 2.7.5.1), which are markedly inhibited by vanadate, possess a ping-pong mechanism involving an intermediate phosphoenzyme. The formation and the stability of these phosphoenzymes have been examined spectrophotometrically in the absence of vanadate. Vanadate does not inhibit the phosphorylation of either mutase by its cofactor. The instability of the phosphoenzyme form of phosphoglycerate mutase increases in the presence of vanadate, but the stability of the phosphorylated phosphoglucomutase is not affected.

2,3-Diphosphoglycerate↗

Metabolism of glycerate-2,3-P2--II. Enzymes involved in the glycerate-2,3-P2 metabolism in chicken skeletal muscle.

1. Four enzyme fractions which may be involved in the synthesis and breakdown of glycerate-2,3-P2 have been isolated from extracted skeletal muscle by gel-filtration and ion-exchange chromatography. 2. One of the fractions, corresponding to the glycerate-2,3-P2 dependent phosphoglycerate mutase, has been purified to homogeneity. In addition to the main enzymatic activity, it shows intrinsic glycerate-2,3-P2 synthase activity and glycerate-2,3-P2 phosphatase activity stimulable by glycolate-2-P. Its synthase activity represents about 10% of the total synthase activity of the tissue, and its phosphatase activity corresponds to about 60% of the total phosphatase activity. 3. Two of the fractions have glycerate-2,3-P2 synthase, glycerate-2,3-P2 phosphatase and phosphoglycerate mutase activities in a ratio similar to that of the glycerate-2,3-P2 synthase described in mammalian skeletal muscle. Their synthase activity corresponds to about 90% of the total synthase activity, and their phosphatase activity represents about 1% of the total phosphatase activity of the tissue. 4. The fourth fraction shows only glycerate-2,3-P2 phosphatase activity and represents about 40% of the total activity of the tissue. 5. It is suggested that in chicken skeletal muscle the metabolism of the glycerate-2,3-P2 is regulated in a way similar to that described in mammalian skeletal muscle.

2,3-Diphosphoglycerate↗