PubMed HealthSearch

Biomedical subjects

J J Bourgarit

Publications and source records attributed to J J Bourgarit.

10 recordsLinked to original sources

Direct identification of a polyamine binding domain on the regulatory subunit of the protein kinase casein kinase 2 by photoaffinity labeling.

Phosphorylation of many protein substrates by the protein kinase casein kinase 2 (CK2) is stimulated severalfold in the presence of polyamines such as spermine. Previous experiments have shown that CK2 is a polyamine binding protein and that the regulatory beta subunit is required for this binding activity. To delineate the spermine binding site of CK2, we have applied a photoaffinity labeling method using a tritiated photoactivable analog of spermine, [3H]sperminediazonium. The photoaffinity labeled beta subunit was cleaved with cyanogen bromide, and two labeled peptides were separated by high performance liquid chromatography. The major one was the peptide T72EQAAEM78 and the minor one was a 22-amino acid peptide comprising residues Ile98 to Met119. Thr72 and His108 were identified as the labeled amino acids of the Thr72-Met78 and Ile98-Met119 peptides, respectively. In the same manner, we succeeded in determining the residue Leu220 as an alpha subunit residue covalently bound to the probe. The photoaffinity labeling method described here enabled the first elucidation, by direct microsequencing, of a polyamine binding site on CK2 for which we propose a provisional structural model. These observations suggest a possible mechanism for CK2 activation by polyamines at the molecular level.

Affinity Labels

Immunolocalization of transforming growth factor-beta 1 in the bovine adrenal cortex using antipeptide antibodies.

Eight- to 12-amino acid long peptides, representing fragments of transforming growth factor-beta 1 (TGF beta 1) and TGF beta 2 were selected on the basis of their potential immunogenicity and were used to generate polyclonal antibodies. Anti-TGF beta 1-(91-103) antibodies recognized specifically TGF beta 1, prevented TGF beta 1 binding to NRK-49F cells, and neutralized the biological activity of TGF beta 1 in adrenocortical cells (consisting in the inhibition of angiotensin-II-induced cortisol production). Antibodies raised against TGF beta 2-(65-73) appeared to recognize TGF beta 2 with a better affinity than TGF beta 1, but were unable to block the binding of either TGF beta 1 or TGF beta 2 to their receptors or to inhibit their biological activity. These observations are in line with a prominant role of the C-terminal domain of TGF beta 1 in its interaction with its receptor(s) and, hence, in its biological activity. Using anti-TGF beta 1-(91-103) antibodies, we could localize immunoreactive TGF beta 1-like material in the cortex of adult bovine adrenal glands. No reactivity was detected in the capsule or adrenal medulla. The reactivity was maximal in the zona fasciculata/reticularis and weaker in the zona glomerulosa. TGF beta-like material was present in a latent form in the conditioned medium from primary cultures of bovine adrenocortical cells. These cells secreted about 5 ng heat-activatable TGF beta-like material/24 h of culture.10(6) cells. Taken together with our previous reports that bovine adrenocortical cells possess high affinity TGF beta 1 receptors and secrete a TGF beta 1-like molecule under a latent form, the present observations further support the hypothesis that TGF beta 1 or a closely immunologically related protein acts as an autocrine regulator of adrenocortical steroidogenic functions.

Adrenal Cortex

Determination of the complement component C2 by ELISA in human serum and bronchoalveolar lavage fluids.

In order to measure the concentration of the human complement component C2 in various biological fluids, an enzyme linked immunosorbent assay (ELISA) was developed. This assay was highly sensitive and allowed to detect as few as 400 pg of C2 in a sample volume of 150 microliters (i.e. 2.6 ng/ml). This is a 10- to 15-fold increase in sensitivity with regard to the conventional hemolytic test. As assessed by an immunoblot analysis, our anti-C2 antiserum was able to detect native C2 as well as the cleavage fragments C2a and C2b generated upon complement activation through the classical pathway. Thus, complement activation involving the classical pathway can easily be evidenced by comparing functional (hemolytic) and immunochemical (ELISA) C2 assays which respectively do not and do reveal activated C2. When C2 was assayed in either normal human serum or bronchoalveolar fluids, in both ELISA and hemolytic tests, a highly significant correlation was observed between the two assays (P less than or equal to 0.01). The specific C2 activity (i.e. functional hemolytic activity/ng C2 assayed in ELISA) was higher in serum than in bronchoalveolar lavage fluids from both normal volunteers and patients with pulmonary diseases.

Adult

A method facilitating the demonstration of synergism in the tissue-responses to mixed peptide stimuli.

A methodology for the pharmacodynamical assay of mixtures of 2 spasmogenic peptides is described, illustrated and discussed, with reference to a method intended for the chemists (P. Job, 1927). This allows a quick appreciation of the existence of synergism, of its own order of magnitude and of that of the doses for which it is significant. Also given is a fast way of curve-fitting the dose response to individual peptides, according to Clark's approximation.

Angioedema

[A distinctive scheme of amino acid replacement was evolved for the generation of diversity, among hypervariable positions (author's transl)].

The diversity of amino acid residues, at a same position when comparing several aligned polypeptide sequences, may be translated as follows. The way along which a given amino acid, A, is replaced--in average--by another amino acid, B, is characterized by a coefficient linked with the pair A-B. Thus, one given amino acid is given a "set" of 19 coefficients, and the 20 different such sets may be analyzed. This method applies to the analysis of the diversity, among different sequences VH and VL of the variable regions of immunoglobulin heavy chains and light chains. From an observation of the alterations of those different sets, according to the sample of positions from which they were derived, it is possible to reach to the following conclusions. A) In the first approximation, all the amino acids present the same behaviour, whichever the sample. The frequency of replacement of an amino acid, A, by another amino acid B, is mainly a function of the proportion of B in the sample. B) In the second approximation, a more elaborate scheme of replacement is apparent, and is linked with an equivalent scheme in the genetic code; it is shown that hypervariable positions as well as random positions in VH and VL obey to this scheme. C) In the third approximation, a complementary structure is observed, which only pertains to the sample of hypervariable positions, and which might constitute a peculiar aspect of a selective process: this complementary structure is quite diverging from the genetic code. This analysis brings a strong argument against somatic theories, for the generation of diversity.

Amino Acid Sequence

[Random immunoglobulin. I. Use of chaotropicions and fluorescence quenching for quantitating the non-specific adsorption in the interaction of human IgG with rhodamine B].

It is shown that, when excited in the visible range, fluorescence of the dye may be either quenched or enhanced, from its initial value Fo, by addition of increasing "normal" immunoglobulin (IgGH7 S), depending if the solution is "non-chaotropic " (NaF 0,1 M) or "chaotropic" KI 1 M). Let F be the fluorescence obtained at concentration P in protein, then the plot of the quantity P.F/(FO-F)against the quantity P.F/(FO-F) gives a straight line; the zero ordinate of this is the inverse of the non-specific interaction equilibrium constant. Quenching of fluorescence by increase of temperature, and by increase of concentration of salt (KI) are also quantitatively dealed upon in order to testify that this non-specific interaction is of the "adsorption" type. Concentration of dye is 10-6M; concentration of protein is varied from 0,05 % to 0,5 %.

Adsorption