Search PubMed⌕ Search

Biomedical subjects

L Latchinian-Sadek

Publications and source records attributed to L Latchinian-Sadek.

4 recordsLinked to original sources

Secretion, purification and characterization of a soluble form of the yeast KEX1-encoded protein from insect-cell cultures.

The Saccharomyces cerevisiae KEX1 gene encodes a carboxypeptidase involved in the C-terminal processing of the lysine and arginine residues from the precursors of K1 and K2 killer toxins and alpha-factor (mating pheromone). In order to produce large quantities of this unique carboxypeptidase for structural studies, a functional soluble form was obtained by deleting 224 amino acids from the C-terminus of the KEX1-encoded protein which includes a putative membrane-spanning domain. The resulting truncated KEX1 gene (KEX1 delta) has been expressed in the baculovirus/insect cell system. The protein (Kex1 delta p) is efficiently secreted into the culture medium and was purified to apparent homogeneity with a yield of approximately 4 mg/l culture. Kex1 delta p is a glycoprotein with a molecular mass of 56 kDa, its N-terminal sequence is identical to that of the full-length membrane-associated form of the enzyme [Latchinian-Sadek, L. & Thomas, D. Y. (1993) J. Biol. Chem. 268, 534-540], and like the full-length enzyme it is not made as a proenzyme. For the soluble enzyme form, the optimum pH for activity was 5.5-6.0, and the apparent pI value of the protein determined by isoelectric focusing was 4.2. The enzyme cleaves arginine from the C-terminus of the synthetic peptide benzoyl-Phe-Ala-Arg with Km 335 microM and Vmax 282 mumol.min-1 x mg protein-1. Insect-cell-derived Kex1 delta p processes alpha-factor-Lys-Arg, a known natural substrate, to mature active alpha-factor in a manner similar to the membrane-associated full-length enzyme. This secreted form of the enzyme is a convenient source for the isolation of substantial quantities of the pure enzyme for detailed kinetic and structural studies.

Amino Acid Sequence↗

Expression, purification, and characterization of the yeast KEX1 gene product, a polypeptide precursor processing carboxypeptidase.

The Saccharomyces cerevisiae KEX1 gene encodes a protease with carboxypeptidase B-like activity involved in K1 and K2 killer toxins and alpha-factor (mating pheromone) precursors processing. The gene has been expressed using the baculovirus/insect cell system, and the KEX1 encoded protein (Kex1p) was purified to apparent homogeneity from detergent-solubilized membrane preparations of insect cells infected with the recombinant virus. The specific activity of the enzyme was enriched 126-fold as compared with the cell lysate, with a recovery of 29%. The NH2-terminal sequence of the purified active enzyme was identical to the predicted sequence after the removal of the signal peptide. This provides evidence that Kex1p, at least in insect cells, is not made as a proenzyme. The optimum pH for activity was 6.0, and the apparent pI value of the protein was below pH 3.0. The enzyme cleaves arginine or lysine from the COOH terminus of synthetic peptides: benzoyl-Phe-Ala-Arg (Km = 284 microM), furylacryloyl (fa)-Ala-Arg (Km = 516 microM), and fa-Ala-Lys (Km = 962 microM). The kinetic data obtained reveals that Kex1p preferentially cleaves the COOH-terminal arginine of peptides over the COOH-terminal lysine. Insect-derived Kex1p processes alpha-factor-Lys-Arg, its known natural substrate, to mature active alpha-factor, and this maturation event takes place in a sequential manner. Furthermore, the enzyme expresses very high affinity for the 15-amino acid-long peptide, alpha-factor-Lys-Arg (Ki = 22 microM), and somewhat lower affinity for the heptapeptides [Leu]enkephalin-Arg-Arg,-Arg-Lys, and [Met]enkephalin-Lys-Lys (Ki = 45, 57, and 81 microM, respectively). The data demonstrate that processing at the COOH terminus of the peptides tested stops after the cleavage of the Arg and/or Lys residues. The specificity of the enzyme for COOH-terminal basic amino acid residues of the peptides used in this study and its high affinity for alpha-factor-Lys-Arg confirms the role that Kex1p plays in polypeptide precursor processing in yeast.

Amino Acid Sequence↗

Flavonol ring B-specific O-glucosyltransferases: purification, production of polyclonal antibodies, and immunolocalization.

UDP-glucose: flavonol 2'- and 5'-O-glucosyltransferases (E.C.2.4.1.-) from leaves of Chrysosplenium americanum were copurified to apparent homogeneity by successive chromatography on Sephacryl S-200, UDP-glucuronic acid-agarose, Mono P, Superose 12, and Mono Q columns. Both enzymes have similar properties except for their substrate specificity and stability (J. Chromatogr. 388, 235, 1987). The purified protein was used as the source of antigen to produce polyclonal antibodies in rabbits. In situ localization of the O-glucosyltransferases was studied by applying a postembedding immunogold labeling technique on ultrathin sections of Lowicryl K4M- and LR White-embedded tissues. Postfixation with osmium tetroxide followed by embedding in LR White resulted in good preservation of membrane ultrastructure, although protein antigenicity was greatly reduced. Leaf sections embedded in Lowicryl K4M had an extracted appearance; however, they retained a high degree of protein antigenicity revealing the deposition of gold particles in the periplasmic region of cells. Considering the compromise chosen in this study to retain antigenicity over preservation of membrane ultrastructure, the results suggest that the "easily solubilized" O-glucosyltransferases of C. americanum may actually be associated with vesicle-like structures and cytoplasmic membranes.

Antibody Formation↗

Prohormone processing by yeast proteases.

Investigations of the precursors of alpha-pheromone and killer toxin in the yeast Saccharomyces cerevisiae have defined the genes coding (KEX1 and KEX2) for the proteases which are responsible for their processing. In addition to processing at pairs of basic residues it is evident that yeast can also process at monobasic sites. We present data on the Kex1p and Kex2p enzymes, their cellular localization, and their post-translational modification. In addition initial characterisation of the monobasic specific protease and the isolation of mutants defective in this activity are presented. The use of the yeast system as a model for the processing of mammalian prohormones is discussed.

Amino Acid Sequence↗