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G Trombetta

Publications and source records attributed to G Trombetta.

54 records · Page 3Linked to original sources

Effects of temperature on actin polymerized by Ca2+. Direct evidence of fragmentation.

When the temperature is lowered from 20 to 4 degrees C, the specific viscosity of actin polymerized in the presence of either 4 mM-CaCl2 or 2 mM-MgCl2, but not of actin polymerized in the presence of 90 mM-KCl, is decreased by 50% in the absence of free ATP. Addition of ATP restores the viscosity of the actin polymerized by Mg2+, but not that of actin polymerized by Ca2+, to the original value. The effect of temperature on actin polymerized in the presence of Ca2+ is due to (a) polymer-into-monomer conversion, (b) latero-lateral aggregation of filaments, and (c) fragmentation of the filaments. Fragmentation, as demonstrated by fractional centrifugation and electron microscopy, was the most important of these.

Actins↗

Fructose-1,6-bisphosphate aldolase from rabbit muscle: different catalytic behavior of the dihydroxyacetone phosphate binding sites at low temperature.

The equivalence of the four dihydroxyacetone phosphate binding sites of aldolase was abolished by lowering the temperature. At pH 6.2 and -13 degrees C, four binding sites were detected by gel filtration; two sites with a Kdiss less than or equal to 0.1 microM, and a second set of sites with a Kdiss = 4 microM. The alteration of the binding was accompanied by the alteration of the catalytic activity. The low-affinity sites were incapable of catalyzing the cleavage of the (3S) C-H bond of dihydroxyacetone phosphate, and form only the ketimine phosphate intermediate. The high-affinity sites were still able to cleave the (3S) C-H bond of dihydroxyacetone phosphate; however, the eneamine phosphate intermediate formed was almost fully converted into the eneamine-aldehyde . . . phosphate intermediate, which was the prevailing species at the equilibrium. The mechanism of the half-of-the sites reactivity of aldolase at low temperature has been explained and the nonequivalence of sites in promoting catalysis has been utilized to dissect and characterize the individual partial reactions of the enzyme. In the course of these studies it has been shown that the rate of hydration-dehydration of dihydroxyacetone phosphate at -24 degrees C was too slow to measure.

Animals↗

A mechanism for the selective preservation of homogeneous. F(ATP) actin.

The cold-induced depolymerization of F(ADP) actin, coupled with the repolymerization by ATP, was employed to study the formation of F(ATP) actin. It is proposed that the cold-induced lability of F(ADP) actin, together with the spontaneous fragmentation of the filament, provides a mechanism for the selective preservation of homogeneous F(ATP) actin.

Actins↗

Fructose-1,6-bisphosphate aldolase from rabbit muscle. Kinetic resolution of the enamine phosphate from the enamine-aldehyde intermediate at low temperature.

At or below -12 degrees C and in the presence of 40% ethylene glycol, only two out of the four dihydroxyacetone phosphate binding sites of aldolase are catalytically active. At these same temperatures and at pH* 8.3, the equilibrium between the pre-enamine and the enamine plus the post-enamine intermediates is largely shifted in favor of the latter. The enamine phosphate and the enamine-aldehyde phosphate intermediates have been resolved by studying the rate of their formation at -13 degrees C and pH* 5.28 and the trapping by DL-glyceraldehyde 3-phosphate at -24 degrees C and pH* 5.24.

Aldehydes↗

The aldolase-substrate intermediates and their interaction with glyceraldehyde-3-phosphate dehydrogenase in a reconstructed glycolytic system.

The relative concentration of the aldolase x fructose-bisphosphate and of the aldolase x dihydroxy-acetone-phosphate complexes is regulated, in the steady state, by the nature of the accompanying glycolytic enzymes. Particularly in the presence of triose phosphate isomerase, the aldolase x dihydroxyactone-phosphate complexes are largely prevalent. This situation is very likely to hold in rabbit muscle in vivo. Aldolase and gyceraldehyde-3-phosphate dehydrogenase slowly form a complex; however, no evidence has been found for the direct transfer of glyceraldehyde 3-phosphate between the two enzymes.

Animals↗

Fructose-1,6-bisphosphate aldolase from rabbit liver. Reaction mechanism and physiological function.

Liver and muscle aldolase display similar reaction mechanisms. Both the enzymes, by reacting with dihydroxyacetone phosphate, form an acid-labile intermediate which is in rapid equilibrium with an eneamine intermediate. Differences are found in the equilibrium concentration of the acid-labile intermediate, which represents approximately 25% of the total intermediates in the liver (this paper) and 60% in the muscle enzyme [E. Grazi and G. Trombetta, Biochem. J. 175, 361 (1978)] and in the rate of formation of the eneamine intermediate which is much slower in the liver enzyme. Furthermore, with liver aldolase, the rate by which the C-3H bond of dihydroxyacetone phosphate is cleaved is increased by 60 times in the presence of glyceraldehyde 3-phosphate. This, mechanistically, indicates that glyceraldehyde 3-phosphate is bound to the enzyme before the formation of the eneamine from dihydroxyacetone phosphate, and, physiologically, that in liever aldolase the gluconeogenetic activity is favoured over the glycolytic activity.

Animals↗

A new intermediate of the aldolase reaction, the pyruvaldehyde-aldolase-orthophosphate complex.

Fructose 1,6-bisphosphate aldolase from rabbit muscle forms by reaction with dihydroxyacetone phosphate a pyruvaldehyde-aldolase-orthophosphate complex that is in equilibrium with the eneamine intermediate. The new intermediate accumulates in two phases. The first one is practically complete in 40ms, and the second occurs with an apparent first-order rate constant of 4.6 +/- 0.5s-1. The new intermediate breaks down slowly with the release into the medium of pyruvaldehyde and Pi. The rate of the spontaneous release is higher at acidic than at neutral pH.

Aldehydes↗

Fatty acid synthase (FAS) predictive strength in poorly differentiated early breast carcinomas.

AIMS AND BACKGROUND: Many normal and human cancer tissues express fatty acid synthase (FAS), the major enzyme required for endogenous fatty acid biosynthesis. Strong expression of FAS seems to be associated with a poor prognosis. This study examines the strength of FAS and other common markers of relapse in poorly differentiated breast carcinoma. MATERIALS AND METHODS: Fifty-one patients with poorly differentiated ductal infiltrating breast carcinomas were followed up for more than 10 years. Immunohistochemical detection of FAS was associated with morphological features of the tumors, with immunohistochemical expression of c-erbB-2, cathepsin D, estrogen and progesterone receptor status and with DNA ploidy in order to detect a statistical correlation. RESULTS: The chi-square test revealed a correlation between FAS and peritumoral lymphatic vessel invasion (PLVI) (P = 0.001). Univariate analysis showed that FAS was correlated with disease-free survival (DFS) (P = 0.0001). Other prognosticators associated with DFS were PLVI (P = 0.002), estrogen (P = 0.008) and progesterone receptor status (P = 0.007). Bivariate analysis showed that FAS was a further prognostic discriminant of DFS within the ER, PgR and PLVI subsets. DISCUSSION: FAS is a reliable prognosticator of recurrence in poorly differentiated early breast carcinomas. Association of FAS with PLVI may be useful to plan a correct follow-up in patients with breast neoplasms.

Adult↗