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Biomedical subjects

J Labouesse

Publications and source records attributed to J Labouesse.

At least 37 records · Page 2Linked to original sources

Epitopes common to trypanosomes (T. cruzi, T. dionisii and T. vespertilionis (Schizotrypanum)): astrocytes and neurons.

An autoimmune mechanism is commonly invoked to explain the occurrence of neuronal destruction in the chronic phase of Chagas' disease. Monoclonal antibodies raised against T. dionisii (DION) and T. vespertilionis (VESP), and cross-reactive with T. cruzi recognize antigens in cultured cerebellar cells from embryonic and postnatal mice, as revealed by indirect immunofluorescence. Astrocytes (labelled with rabbit anti-GFAP antibody) showed positive reactions with DION 12.7, VESP 8.2 and VESP 9.3 while neurons (labelled with either tetanus toxin or anti-neuron-specific enolase antibody) reacted with the monoclonal antibody DION 10.1b. VESP 6.2 reacted with living cells of a subpopulation of neuronal or unidentifiable cell type. These cross-reactions may explain why not only neurons but also astrocytes may be involved in the autoimmune damage.

Animals

Radioimmunoassay of cyclic AMP can provide a highly sensitive assay for adenylate cyclase, even at very high ATP concentrations.

Modifications of the cyclic AMP radioimmunoassay of Cailla et al. [in Hormones and Cell Regulation (J. Dumont and J. Nunez, eds.), Vol. 4, pp. 1-24, Elsevier/North-Holland, Amsterdam/New York (1980)] allowed its use in the determination of adenylate cyclase activity, which was otherwise precluded by high blank values. These high values originate mainly from chemically formed cyclic AMP and from ATP cross-reactivity. The simultaneous presence of ATP and magnesium ions generates cyclic AMP under the alkaline conditions used to succinylate the sample; this interference can be dealt with either by chelation of Mg2+ ions with EDTA during succinylation or by periodic acid oxidation of samples prior to succinylation. In addition, ATP itself contributes to blank values by its cross-reactivity, especially when working with high concentrations of this substrate. This interference can be decreased by a batch adsorption of ATP or oxidized ATP on alumina. Detailed procedures were discussed, with the choice of the additional steps to the standard method of Cailla et al. having to be made on the basis of the sensitivity requirements. When preventing ATP cyclization, the radioimmunoassay was as sensitive as methods using [alpha-32P]ATP as substrate. Elimination of ATP can improve the sensitivity by one order of magnitude. This method is especially interesting with high ATP concentrations and/or with low cyclic AMP production.

1-Methyl-3-isobutylxanthine

Avian myeloblastosis reverse transcriptase deacylates tryptophanyl-tRNA.

Tryptophanyl-tRNA can be used as a primer for RNA-dependent DNA synthesis by avian reverse transcriptase. We have determined that whereas the retroviral polymerase is not by itself capable of deacylating Trp-tRNATrp, the ester linkage between the 3' OH of the ribose moiety and the aminoacid can be very efficiently hydrolyzed when both the polymerase and the viral 35 S RNA are present.

Avian Leukosis Virus

Neurosecretory granules: evidence from an aging process within the neurohypophysis.

When cysteine labeled with sulfur-35 is injected into the third ventricle of the rat brain, it is first incorporated into only one of the two populations of neurosecretory granules that can be isolated on an isosmotic gradient. The second population of granules is labeled much later. Stimulation of hormone release from isolated labeled neural lobes and subsequent isolation of neurosecretory granules at different times after the injection of labeled cysteine shows that the radioactivity decreases in only one population of granules. One of the fractions of the gradient represents the granules found near the release site; the second population is probably located deeper in the nerve endings or in the nerve swellings. Whereas neurophysins are found in both populations, smaller proteins can only be detected in one. Thus it appears that neurosecretory granules undergo an aging process and that isosmotic gradients can separate the aged granules from those newly formed.

Aging

Anticooperative binding of L-tryptophan to tryptophanyl-tRNA synthetase from beef pancreas. Study at equilibrium by dialysis and changes in spectroscopic properties.

Equilibrium dialysis and gel filtration studies show that tryptophanyl-tRNA synthetase from beef pancreas binds two molecules of L-tryptophan per dimer in an anticooperative way. The binding of tryptophan ellicits a series of spectroscopic changes in the protein as seen by absorbance, fluorescence and circular dichroism. The molar absorption change of the protein-tryptophan system upon formation of the complex is delta epsilon292 = 10 400 +/- 1000 M(-1) cm(-1) per dimer. Taking an initial symmetrical dimeric protein the two dissociation constants for tryptophan at pH 8, 25 degrees C are respectively K1 = 2.0 +/- 0.5 muM and K2 = 10 +/- 4 muM. They are respectively K1 = 1 +/- 0.25 muM and K2 = 20 +/- 8 muM if one considers a sequenced binding of the two tryptophan molecules. The dichroic band at 290 nm of the free protein disappears when tryptophan is bound. All observed changes are characteristic of tryptophan perturbation and none of tyrosine perturbation. They all exceed the effect that can be expected from the change in environment of the bound tryptophan molecules and modifications of the tertiary structure of the protein have to be taken into account to explain the observed spectroscopic data.

Amino Acyl-tRNA Synthetases

Recognition of tRNA Trp by initiation factors from Escherichia coli.

Binding of acetyl or formyltryptophanyl-tRNA Trp from Escherichia coli or beef liver to E. coli ribosomes is strongly stimulated by E. coli initiation factors and requires GTP. The N-acylated tryptophan is puromycin reactive. Polypeptide chain initiation with acetyltryptophan dependent on poly(U,G) has been demonstrated and is highly dependent on added initiation factors. tRNA Trp appears, therefore, to share some structural features with tRNAfMet of significance to the process of polypeptide chain initiation.

Escherichia coli

Primary structure of bovine liver tRNATrp.

Purified tRNATrp from bovine liver, accepting 1700 pmol tryptophan per A260nm unit, was completely digested with pancreatic ribonuclease and T1 ribonuclease. The sequences of the resulting oligonucleotides were determined and the primary structure of the tRNA was deduced. These analyses showed numerous incomplete post-transcriptional modifications, and several positions heterogenously occupied by two different nucleotides, which lead us to think that in bovine liver there exist a mixture of several tRNATrp.

Animals

tRNATrp (bovine) binding to the reverse transcriptase of avian myeloblastosis virus and function as a heterologous primer.

The primary structures for tTNATrp (bovine) and primer tRNATrp (avian) show only minor differences in nucleotide sequence. The heterologous tRNATrp (bovine) appears to have properties similar to the tRNATrp (avian) in its ability to bind the alphabeta from of RNA-dependent DNA nucleotidyltransferase of avian myeloblastosis virus. A stable enzyme-tRNA complex has been isolated by gel filtration. In addition, tRNATrp (bovine) can hydridize to the avian viral 35S RNA and act as a primer for transcription of the RNA. tRNATrp (bovine) can be obtained in larger amounts than the avian primer and can be used to study the interactions between the primer and the viral enzyme.

Avian Leukosis Virus

Aminoacylation of tRNA Trp from beef liver, yeast and E. coli by beef pancrease tryptophan-tRNA ligase. Stoichiometry of tRNATrp binding.

The Michaelis constants and the maximum velocities in the aminoacylation reaction of tRNATrp from beef liver, yeast and E. coli by pure beef pancreas tryptophan-tRNA ligase show that this mammalian enzyme recognizes and charges the two eucaryotic tRNAs with the same efficiency. The rate of aminoacylation of the procaryotic tRNATrp by the enzyme is three orders of magnitude lower. The pH optimum of aminoacylation is 8 for both eucaryotic tRNAs. The optimum magnesium concentration is different. The rate is maximum when magnesium concentration is stoichiometric to ATP concentration for tRNATrp from beef liver and 10 mM above ATP concentration for tRNATrp from yeast. The number of binding sites on the enzyme for the two eucaryotic tRNAs has been measured by equilibrium filtration on Sephadex G-100 and found equal to two.

Adenosine Triphosphate

Limited proteolysis of tryptophanyl-tRNA synthetase from beef pancreas.

Treatment of purified tryptophanyl-tRNA synthetase with either chymotrypsin, papain, subtilisin or elastase converts all the enzyme into a high-molecular-weight intermediate. This protease-resistant core molecule has the same dimeric structure as the native protein and possesses the ability to bind substrates (tryptophan, ATP and tRNATrp) but is catalytically inactive. The monomer molecular weight of the protease-treated enzyme is 39000 compared to 54000 for the intact molecule. Chemical studies indicate that proteases excise the amino-terminal part of the polypeptide chain. It has been demonstrated previously that removal of a 13000-dalton fragment from the amino-terminal region of the tryptophanyl-tRNA synthetase converts the native enzyme to another active form. Cleavage of 20 additional amino acids produces the inactive protease-resistant core.

Amino Acids

The conformational oscillation of delta-chymotrypsin involvement of methionine-192.

In delta-chymotrypsin the reactivity of methionine-192 towards p-nitrophenacyl bromide is strongly reduced when the alpha-amino group of isoleucine-16 has been acetylated. Since acetylation of isoleucine-16 brings delta-chymotrypsin to a conformation similar to its alkaline one this suggests that methionine-192 should present an impaired reactivity in the alkaline conformation of the protein. It is indeed observed that its chemical reactivity as a function of pH depends on the ionization state of the alpha-amino group of isoleucine-16 (pKapp 9 at 15 degrees C) as does the structure of the enzyme. Reciprocally, after chemical reaction of methionine-192 with hydrogen peroxide, isoleucine-16 presents a slower rate of reaction with fluorescamine than when methionine-192 is free. As a result of methionine-192 oxidation the apparent pK of the alkaline transition is shifted from 9 to about 11 at 15 degrees C. This is reflected in the disappearance of the lag phase previously observed for the initial activity of the enzyme when it is incubated at alkaline pH [Eur. J. Biochem. (1973) 39,293-300]. The absence of chemical reactivity of methionine-192 in the alkaline state of the enzyme is confirmed by the appearance of a lag phase in the reaction of the protein with iodoacetate after an incubation at alkaline pH. Such a lag phase does not appear when this incubation is carried out at neutral pH. Since this lag phase is similar to that which shows up in the activity during the isomerization of the enzyme from its alkaline to its neutral state, the present data are interpreted as implying a concerted movement of isoleucine-16 and methionine-192 during this isomerization process. They also indicate that in the alkaline form of the enzyme methionine-192 has moved back into the interior of the protein. Since the spectroscopic properties of the zymogen and of the high-pH form of the enzyme are similar they suggest that methionine-192 occupies in the alkaline conformation of the enzyme a similar position as it does in the zymogen.

Amino Acid Sequence

Structure-activity relationships in tryptophanyl transfer ribonucleic acid synthetase from beef pancreas. Influence of the alkylation of the sulfhydryl groups on the dimer-monomer equilibrium.

Upon reaction with N-ethylmaleimide, tryptophanyl-tRNA synthetase from beef pancreas dissociates into subunits. At pH7, the rate of the dissociation is close to both the reaction rate of the buried--SH groups and the rate of inactivation (Iborra, F., Mourgeon, G., Labouesse B., and Labouesse, J. (1973) Eur. J. Biochem. 39, 547-556). The pH and enzyme concnetration dependences of the reaction rate of the 16 cysteinyl residues of the enzyme as well as that of its inactivation support the idea that inactivation by alkylation of the--SH groups is due essentially to the dissociation of the protein into inactive subunits and not to the chemical blocking of a catalytic residue. This is confirmed by the independence on N-ethylmaleimide concentration of the reaction of the buried--SH groups and of the inactivation of the enzyme at high N-ethylmaleimide concentration. The dissociation becomes in this case the rate-limiting step of the chemical reaction. The monomeric structure is stabilized by the blocking of the--SH groups exposed during the dissociation. The dissociation constant of the dimeric enzyme is progressively increased during the alkylation. The tightness of the associated structure depends on the protonation of groups titrating between pH 7 and pH 9.

Amino Acyl-tRNA Synthetases

Molecular aspects of the inactivation of tryptophanyl transfer ribonucleic acid synthetase by N-ethylmaleimide.

The tryptic maps of tryptophanyl-tRNA synthetase from beef pancreas show that the 8 cysteinyl residues of the enzyme subunit are located, 2 by 2, on four different peptides. The kinetics of the incorporation of radioactivity from N-[ethyl-14C]ethylmaleimide into these peptides are compared in this paper with the kinetics of the changes of the catalytic properties of the enzyme occurring during alkylation. This comparison allows the identification of (a) the peptide carrying the cysteinyl residues located on the surface of the molecule, (b) the peptide carrying the deeply buried residues unmasked by the dissociation of the subunits, and (c) the peptide carrying the --SH group located in the vicinity of the binding site of tryptophan. The fourth peptide is shown to have a great sensitivity to pH with respect to the reactivity of its cysteinyl residues toward N-ethylmaleimide. The same unusual pH dependence is found for the rate of quenching of the intrinsic fluorescence of the protein during the alkylation, suggesting a strong sensitivity of the conformation of tryptophanyl-tRNA synthetase to pH in the range of 7 to 9.

Amino Acid Sequence