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E Giachetti

Publications and source records attributed to E Giachetti.

12 recordsLinked to original sources

Effect of Mg2+ and Mn2+ on isocitrate lyase, a non-essentially metal-ion-activated enzyme. A graphical approach for the discrimination of the model for activation.

We describe a simple method for the analysis of activation systems in which a metal ion modifier may combine with either the enzyme or the substrate (or both) and the metal ion-substrate complex is the true substrate of the enzyme reaction. The suggested approach is essentially a 'graphical' method that both provides unbiased criteria for the choice of the activation mechanism and yields good rough estimates of the kinetic parameters. The procedure, tested on a variety of simulated models, produces appropriate and reliable results. Applying this treatment to isocitrate lyase, we confirmed the data previously reported for Mg2+ [Giachetti, Pinzauti, Bonaccorsi & Vanni (1988) Eur. J. Biochem. 172, 85-92], and we found that Mn2+ functions with the same mechanism as does Mg2+, but with quite different kinetic constants. In particular, its ratio of the Vmax, values of the activated and the non-activated enzyme is less than 1, and thus Mn2+ is to be considered an inhibitor rather than an activator.

Enzyme Activation

Isocitrate lyase from Pinus pinea. Characterization of its true substrate and the action of magnesium ions.

We found that the Mg-isocitrate complex is the true substrate for pine isocitrate lyase and that magnesium acts as a non-essential activator. Both the non-activated and the activated enzyme forms are catalytically active. Our model is consistent with the presence of two Mg-binding sites with different affinities: an activator site with high affinity in addition to the catalytic site with lower affinity. This may result in a complex, fine regulation of isocitrate lyase activity by magnesium. The affinity of the free enzyme for isocitrate is very low. Moreover, free isocitrate does not bind to the activated enzyme, nor it can yield a catalytically active form by binding to an enzyme species whose catalytic site has already been bound by magnesium.

Binding Sites

Neutral maltase of human granulocytes: localization on the extracytoplasmic side of the plasma membrane and some properties.

Neutral maltase is an alpha-glucosidase (alpha-D-glucoside glucohydrolase, EC 3.2.1.20) which is present in human granulocytes and B-lymphocytes but not in T-lymphocytes. These cells have been reported to contain a renal-type neutral maltase which cross-reacts with an antiserum raised against kidney brush-border enzyme. No study has been performed to assess the subcellular localization of the enzyme. Molecular properties of leukocyte neutral maltase from any species are unknown. We report in this paper that neutral maltase is present on the extracytoplasmic side of human granulocyte plasma membrane. These results are supported by subcellular fractionation on Percoll gradient and by papain digestion of intact granulocytes. The enzyme is probably an integral membrane protein. The anchorage to the lipid bilayer may be similar to that of the stalked brush-border hydrolases. Some properties of granulocyte neutral maltase were also determined on a plasma membrane-enriched fraction. The enzyme cleaves maltose and nigerose but not other glucosides disaccharides and oligosaccharides. The Km for maltose is (+/- SD) 0.78 (+/- 0.06) mM, that for nigerose 21.05 (+/- 1.43) mM. The Vmax for nigerose is 0.83-fold that for maltose. Tris, maltotriose, maltotetraose, and maltopentaose were inhibitors of granulocyte neutral maltase.

Blood Sedimentation

[Substrate specificity and kinetic properties of neutral maltase of human granulocytes].

A neutral maltase immunologically similar to this of kidney exist in human granulocytes. We have studied some kinetic properties of this enzyme on a microsomal fraction of granulocytes. Its optimal pH is very closed of 6.8 and this enzyme, highly specific for maltose, hydrolysis very weakly the nigeriosis. Maltotriose, maltotetraose and maltopentanose are inhibitors of this enzyme, which is not inhibited by all disaccharides studied.

Granulocytes

An isocitrate lyase of higher plants: analysis and comparison of some molecular properties.

A new purification procedure for isocitrate lyase from Pinus pinea is reported. The final preparation shows charge homogeneity and a purity degree higher than 95%. It is possible to remove catalase completely by exploiting the high hydrophobicity of isocitrate lyase. The enzyme has a Mr of 264,000 and is likely composed of four subunits, each with a Mr of 66,000. The binding of radioactively labeled oxalate revealed four catalytic sites per oligomer. These data suggest that isocitrate lyase subunits are similar, if not identical. The Michaelis constant for isocitrate is equal to 33 microM; molecular activity is about 2670 mol X min-1 X mol of enzyme-1. The amino acid composition of the enzyme was also determined. Isocitrate lyase appears resistant to proteolysis by carboxypeptidase A. Hydrazinolysis, Edman degradation, and dansyl chloride treatment indicate that both carboxy and amino terminals are probably inaccessible or blocked.

Amino Acids

Steady-state kinetic analysis of isocitrate lyase from Lupinus seeds: considerations on a possible catalytic mechanism of isocitrate lyase from plants.

Isocitrate lyase catalyzes the reversible cleavage of isocitrate into glyoxylate and succinate. The kinetic mechanism of bacterial isocitrate lyase has been reported to be ordered uni-bi. Moreover, it has been proposed that isocitrate lyase in higher plants may be switched on and off by a succinylation/desuccinylation mechanism. Similarly to bacterial citrate lyase, in which an acetylation/deacetylation mechanism is operative, succinylation might also play a role in the catalytic mechanism of plant isocitrate lyase. We have investigated the kinetic mechanism of isocitrate lyase from Lupinus seeds. The results reported in this paper show that the system follows a preferentially ordered uni-bi pathway in which the succinate is released first. On the basis of our results and some other recently reported data, we conclude that it is unlikely that bacterial and plant isocitrate lyases have different catalytic mechanisms.

Isocitrate Lyase

Isocitrate lyase: artifacts and multiple enzyme forms.

Multiple enzyme forms of isocitrate lyase from various sources have been frequently reported. Protease action after cell rupture was sporadically claimed to explain the observed multiple enzyme forms. In this communication studies which are consistent with a protease action in vitro on isocitrate lyase of Pinus pinea germinating seeds are reported. Moreover, changes in DEAE-Sephacel patterns, mainly related to the age of germination, were observed. Differences regarding the heat stability of the detected enzyme forms were also found. The results indicate that isocitrate lyase from P. pinea may be detected in at least three different forms, one of which is heat stable and may be obtained only at the early stages of germination.

Chromatography, DEAE-Cellulose

Isocitrate lyase of conifers (Pinus pinea).

1. Isocitrate lyase has been purified about 60 times from the conifer Pinus pinea. A first characterization was made. 2. The high instability is an important feature of this enzyme from higher plants, this causes serious problems in the purification and characterization. 3. A substantial agreement with the data from the literature was found for what concerns pH dependence of Vmax and pKm, the effect of bivalent cations and the requirement of Mg2+. 4. Kinetic studies gave evidence for a mechanism ordered uni-bi with glyoxylate being the last product released, kinetic constants were calculated, no evidence for cooperative effects was found. 5. Equilibrium constant by Haldane method calculation agrees with value calculated with isocitrate lyase from the bacterium Pseudomonas indigofera.

Cations, Divalent

On the stability of isocitrate lyase from Pinus pinea.

Isocitrate lyase is a key catalyst of the glyoxylate cycle. A feature of the enzyme from higher plants is the high instability, that causes innumerable problems in working for characterization of the enzyme. The present communication demonstrates that the optimal conditions for the storage of isocitrate lyase from Pinus pinea are: the use of a low temperature (possibly below -20 degrees C), the realization of a high endogenous protein concentration of the enzyme preparations, or, above all when long storage conservation is necessary, the preservation of the enzyme in dried form (acetone precipitation), under vacuum at 4 degrees C. The data reported in this paper seem to exclude, in the above studied conditions, a role for serine proteases in the destabilization of the enzyme. The thiol compounds are not determinant and no effect is obtained by adding exogenous proteins (serum albumin, beta-fructosidase).

Ammonium Sulfate