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C L Hew

Publications and source records attributed to C L Hew.

At least 73 records · Page 4Linked to original sources

[Cloning and sequence analysis of salmon growth hormone cDNA].

cDNA clones encoding Chinook Salmon, Oncorhynchus tschawytscha, growth hormone (sGH) have been isolated from a cDNA library prepared from Chinook Salmon pituitary gland poly(A)+ RNA. Synthetic oligodeoxynucleotide mixtures based on amino acid residues 1-7 of sGH and 166-172 of sGH were used as hybridization probes to select recombinant plasmids carrying the sGH coding sequence. The complete nucleotide sequence of sGH cDNA has been determined. The cDNA sequence codes for a polypeptide of 210 amino acids including a putative signal sequence of 22 amino acids. The 5' and 3' untranslated regions of the message were 70 and 446 bases long, respectively. Comparison of the nucleotide sequence and amino acid sequence between Chum sGH and Chinook sGH indicated that there were 97% and 99% homology respectively.

Amino Acid Sequence↗

The effect of enhanced alpha-helicity on the activity of a winter flounder antifreeze polypeptide.

The antifreeze polypeptide (AFP) from the winter flounder displays partial alpha-helix formation at lower temperatures. To investigate the relationship between antifreeze activity and alpha-helical structure, we designed and then chemically synthesized an AFP analog with enhanced alpha-helicity, and compared its conformation and antifreeze properties with those of the native AFP. The synthetic analog was more helical than the native AFP; however, the antifreeze activity of both peptides were identical. The antifreeze activity of the peptides displayed a strong pH dependence, which paralleled pH-induced changes in helix content. At pH 8.5, the antifreeze activity of both peptides displayed identical concentration dependences. In addition to antifreeze activity measurements, the effects of the peptides on the rate of ice crystal growth were also measured. While both peptides affected the a- and c-axis growth rates of ice crystals, the highly helical analog was able to exert its effect on ice crystal growth rates at 7-8-fold lower concentrations than the native AFP. These data indicate that there is a direct but complex relationship between alpha-helicity and antifreeze activity.

Amino Acid Sequence↗

Structure and function of an antifreeze polypeptide from ocean pout, Macrozoarces americanus: role of glutamic acid residues in protein stability and antifreeze activity by site-directed mutagenesis.

The successful expression and purification of the recombinant ocean pout antifreeze polypeptide (rAFP) in Escherichia coli have enabled the study of its structure-function relationship by site-directed mutagenesis. The role of carboxyl groups at Glu23 and Glu36 of the rAFP was probed by replacing these residues with either glutamine or alanine residues as both single and double mutants. The AFP mutants were expressed, purified and characterized in terms of primary and secondary structures, thermal stability and antifreeze activities. The properties of these mutants were compared with those of the rAFP. Three distinct functions are identified for the carboxyl groups: (i) the negative charges at positions 23 and 36 are involved in the thermal stability of the polypeptide; (ii) the negative charges at positions 23 and 36 contribute to the thermal hysteretic activities of the polypeptide; and (iii) the negative charge at position 23 and hydrogen-bonding ability at position 36 contribute to the ice-binding activity of the polypeptide.

Alanine↗

Expression and characterization of an active and thermally more stable recombinant antifreeze polypeptide from ocean pout, Macrozoarces americanus, in Escherichia coli: improved expression by the modification of the secondary structure of the mRNA.

The cDNA clone coding for the ocean pout antifreeze polypeptide (AFP) was modified to improve translation of its mRNA in Escherichia coli. A recombinant AFP (rAFP), MetLys-AFP-Lys, was expressed successfully using the lambda PL promoter, and constituted 1-2% of total bacterial proteins. The rAFP was purified to homogeneity from the soluble fractions of bacterial extracts. Its identity was confirmed by amino acid analysis, automated Edman degradation, immuno-blot and activity measurements. Although the rAFP is indistinguishable from the authentic AFP in its secondary structure, thermal hysteretic activity and the alteration of ice crystal structure, it is, however, thermally more stable (approximately 4.5 degrees C increase in Tm) and is more effective in inhibiting ice growth along the a-axis. These investigations indicate that the extra amino acids in rAFP significantly improve the thermal stability and ice-binding activity of the polypeptide.

Amino Acids↗

Functional analysis and temporal expression of promoter regions from fish antifreeze protein genes in transgenic Japanese medaka embryos.

Several series of sequences that are upstream of the transcriptional start site of different types of fish AFP genes were fused to the bacterial CAT gene, and their transcriptional role was examined in a transient expression assay after microinjection into Japanese medaka (Oryzias latipes) embryos at the 1-4 cell stage. Our studies demonstrated that the AFP genes have functional promoter regions containing positive as well as negative regulatory regions, indicating that these genes could be regulated at multiple sites. We also observed a promoter-specific pattern of temporal expression. Typically, the CAT expression was low in the first 4 days of embryonic development or before the stage of body pigmentation, followed by a sharp increase. The high level was maintained until hatching (11-13 days after fertilization), by which time the activity decreased to a very low level.

Animals↗

Biochemistry of fish antifreeze proteins.

Four distinct macromolecular antifreezes have been isolated and characterized from different marine fish. These include the glycoprotein antifreezes (Mr 2.5-33 K), which are made up of a repeating tripeptide (Ala-Ala-Thr)n with a disaccharide attached to the threonyl residues, and three antifreeze protein (AFP) types. Type I is an alanine-rich, amphiphilic, alpha-helix (Mr 3-5 K); type II is a larger protein (Mr 14 K) with a high content of reverse turns and five disulfide bridges; and type III is intermediate in size (Mr 6-7 K) with no distinguishing features of secondary structure or amino acid composition. Despite their marked structural differences, all four antifreeze types appear to function in the same way by binding to the prism faces of ice crystals and inhibiting growth along the a-axes. It is suggested that type I AFP binds preferentially to the prism faces as a result of interactions between the helix macrodipole and the dipoles on the water molecules in the ice lattice. Binding is stabilized by hydrogen bonding, and the amphiphilic character of the helix results in the hydrophobic phase of the helix being exposed to the solvent. When the solution temperature is lowered further, ice crystal growth occurs primarily on the uncoated, unordered basal plane resulting in bipyramidal-shaped crystals. The structural features of type I AFP that could contribute to this mechanism of action are reviewed. Current challenges lie in solving the other antifreeze structures and interpreting them in light of what appears to be a common mechanism of action.

Amino Acid Sequence↗

Cystine-rich type II antifreeze protein precursor is initiated from the third AUG codon of its mRNA.

The primary translation product encoded by sea raven antifreeze protein mRNA was labeled during cell-free synthesis with [3H]leucine. N-terminal sequencing of the immunoselected translation product showed that the third AUG in the mRNA is used as the initiating methionine codon. The antifreeze protein precursor is therefore 163 amino acids long. Amino acid analysis and sequencing of the deblocked N-terminal peptide from the mature circulating form of the antifreeze indicated that glutamine at position 35 is the N-terminal residue. The most likely site of signal peptide cleavage is after alanine at position 17, suggesting that the sea raven antifreeze protein is produced as a preproprotein. Analysis of slot blots indicates that the gene for the antifreeze protein is present in 12-15 copies in the sea raven genome. A representative gene copy was sequenced. It is split into six exons spanning 2.2 kilobase pairs and, based on composite maps of genomic clones, is not accompanied by a second copy within at least 25 kilobase pairs of flanking DNA. The transcription start site was determined by primer extension. Ninety base pairs upstream from this point, beyond the CAAT and TATA boxes, is a putative cis-acting regulatory element in the form of a triplicated 21-base pair tandem repeat.

Amino Acid Sequence↗

Interchain and intrachain disulphide bonds in human platelet glycoprotein IIb. Localization of the epitopes for several monoclonal antibodies.

The single interchain disulphide bond in platelet glycoprotein IIb (GPIIb) is accessible to extracellular reductants, and selective cleavage does not liberate GPIIb alpha from platelet plasma membrane, confirming that non-covalent interactions contribute to maintaining attachment of this subunit to the membrane. Eosin-maleimide labelling of isolated GPIIb after selective cleavage of this interchain disulphide bond, followed by full reduction and alkylation, CNBr cleavage, and analysis of the cleavage products allowed us to establish that this interchain disulphide bridge is formed between GPIIb beta (GPIIb beta-subunit) Cys-9 and GPIIb alpha Cys-826, and this conclusion was confirmed by independent routes. The other two cysteines of GPIIb beta (Cys-14 and Cys-19) form the single intrachain disulphide bond in this subunit. Last, the intrachain disulphides in GPIIb alpha (GPIIb alpha-subunit) are distributed in four main peptide domains which are not disulphide-bonded among themselves. The linear epitope for monoclonal antibody M1 is localized between Pro-4 and Met-24 (or Met-31) of GPIIb beta. The linear epitope for M3 is situated between Cys-826 and the C-terminus of GPIIb alpha. The M4 epitope is also linear and localized somewhere between residues 115 and 285 of GPIIb alpha. Finally, the epitopes for M5 and M6 are somewhere between Cys-608 and Met-704, within a 35 kDa membrane-bound chymotryptic product of digestion of GPIIb in whole platelets. The N-terminal amino acid sequences determined for eight different cleavage products of GPIIb alpha and GPIIb beta agree with the corresponding amino acid sequences predicted by cDNA sequence for human-erythroleukaemic-cell GPIIb [Poncz, Eisman, Heindenreich, Silver, Vilaire, Surrey, Schwartz & Bennett (1987) J. Biol. Chem. 262, 8476-8482].

Amino Acid Sequence↗

Structure-function relationships in a winter flounder antifreeze polypeptide. I. Stabilization of an alpha-helical antifreeze polypeptide by charged-group and hydrophobic interactions.

The major antifreeze polypeptide (AFP) from winter flounder (37 amino acid residues) is a single alpha-helix. Aspartic acid and arginine are found, respectively, at the amino and carboxyl-termini. These charged amino acids are ideally located for stabilizing the alpha-helical conformation of this AFP by means of charge-dipole interaction (Shoemaker, K. R., Kim, P.S., York, E.J., Stewart, J. M., and Baldwin, R. L. (1987) Nature 326, 563-567). In order to understand these and other molecular interactions that maintain the AFP structure, we have carried out the chemical synthesis of AFP analogs and evaluated their conformations by circular dichroism spectroscopy. We synthesized the entire AFP molecule (37-mer) and six COOH-terminal peptide fragments (36-, 33-, 27-, 26-, 16-, and 15-mers). Peptides containing acidic NH2-terminal residues displayed greater helix formation and thermal stability compared to those peptides of similar size, but with neutral NH2-terminal residues. Helix formation was maximum above pH 9.2. The peptide conformations also displayed a pH-dependent sensitivity to changes in ionic strength. Helix formation was reduced in the presence of acetonitrile. We conclude that the AFP helix is most likely stabilized by: charge-dipole interactions between charged terminal amino acids and the helix dipole, a charge interaction between Lys18 and Glu22 (either a salt bridge or a hydrogen bond), and hydrophobic interactions.

Acetonitriles↗

Structure-function relationship in a winter flounder antifreeze polypeptide. II. Alteration of the component growth rates of ice by synthetic antifreeze polypeptides.

Using synthetic analogs of an alpha-helical winter flounder antifreeze polypeptide (AFP) we investigated some important molecular details of the mechanism of action of this AFP. Of the seven peptides synthesized, all but one were amino-terminal deletions of the native AFP. Three of the seven synthetic analogs possessed the same antifreeze activity as the native polypeptide; the other analogs were devoid of antifreeze activity. The growth rates along the a and c axes of ice in solutions of varying concentrations of the three active AFP analogs were examined. The a axis growth rates of ice were inversely proportional to the concentration of the active peptides. The c-axis growth rates of ice were also dependent on peptide concentration. The active peptides enhanced c-axis growth at lower concentrations, while at higher concentrations they inhibited c axis growth. The ability of the peptides to develop antifreeze activity and to alter the a and c axis growth rates of ice depended on the presence of appropriately positioned amino acid residues with hydrogen bonding side chains. From these observations we propose that at low concentrations the AFP, through dipolar interactions and hydrogen bonding, interact with the prism faces of ice retarding a axis growth. At these concentrations, the electrical field of the AFP helix-dipole, like an externally applied field (Bartlett, J.T., van der Heuval, A.P., and Mason, B.J. (1963) Z. Angew. Math. Phys. 14, 599-610), can enhance ice c axis growth. At higher concentrations, the AFP interact with all ice crystal planes and retard both a and c axis growth.

Animals↗

Biosynthesis of winter flounder antifreeze proprotein in E.coli.

A semisynthetic winter flounder antifreeze proprotein (proAFP) coding region was constructed and inserted into a lacZ expression vector. ProAFP was produced from the vector in Escherichia coli as a C-terminal fusion to the first 289 amino acids of beta-galactosidase (beta-gal). The proAFP and beta-gal domains of the beta-gal-proAFP fusion protein were separated by the recognition signal for the blood coagulation protease, factor Xa. Upon induction with isopropylthio-beta-D-galactoside the fusion protein accumulated to levels of 15% of the total protein. The beta-gal-proAFP fusion protein was partially purified by differential centrifugation, but required solubilization prior to factor Xa digestion. The solubilized fusion protein was efficiently and correctly cleaved by factor Xa, after which the proAFP was purified by gel permeation. Bacterial proAFP was indistinguishable from natural proAFP by the criteria of antifreeze activity, amino-terminal sequence (15 cycles), reverse-phase HPLC and SDS-polyacrylamide gel electrophoresis. Circular dichroism measurements showed that proAFP is a composite of random coil and alpha-helical secondary structure, with an alpha-helix content of 44% at 0 degrees C. It seems probable that the C-terminal region of proAFP, which corresponds to the mature AFP protein, is mainly alpha-helical, and that the N-terminal pro-segment is random coiled.

Amino Acid Sequence↗

[Cloning and sequence analysis of salmon prolactin cDNA].

A cDNA library was prepared from pacific Chinook Salmon pituitaries. Salmon prolactin gene was screened using synthetic oligonucleotide probes based on partial protein sequence. A positive clone (PRL-10) was identified and sequenced. It is a full size clone containing 1.1 and coding for a preprolactin of 211 amino acids.

Amino Acid Sequence↗

Multiple genes provide the basis for antifreeze protein diversity and dosage in the ocean pout, Macrozoarces americanus.

The ocean pout (Macrozoarces americanus) produces a set of antifreeze proteins that depresses the freezing point of its blood by binding to, and inhibiting the growth of, ice crystals. The amino acid sequences of all the major components of the ocean pout antifreeze proteins, including the immunologically distinct QAE component, have been derived by Edman degradation. In addition, sequences of several minor components were deduced from DNA sequencing of cDNA and genomic clones. Fifty percent of the amino acids are perfectly conserved in all these proteins as well as in two homologous sequences from the distantly related wolffish. Several of the conserved residues are threonines and asparagines, amino acids that have been implicated in ice binding in the structurally unrelated antifreeze protein of the righteye flounders. Aside from minor differences in post-translational modifications, heterogeneity in antifreeze protein components stems from amino acid differences encoded by multiple genes. Based on genomic Southern blots and library cloning statistics there are 150 copies of the 0.7-kilobase-long antifreeze protein gene in the Newfoundland ocean pout, the majority of which are closely linked but irregularly spaced. A more southerly population of ocean pout from New Brunswick in which the circulating antifreeze protein levels are considerably lower has approximately one-quater as many antifreeze protein genes. Thus, there appears to be a correlation between gene dosage and antifreeze protein levels, and hence the ability to survive in ice-laden seawater. Southern blot comparison of the two populations indicates that the differences in gene dosage were not generated by a simple set of deletions/duplications. They are more likely to be the result of differential amplification.

Amino Acid Sequence↗

Crystal structure of an antifreeze polypeptide and its mechanistic implications.

The X-ray crystallographic structure of an antifreeze polypeptide from the fish winter flounder, has been determined at 2.5 A by an analysis of the Patterson function. This is the first report of a polypeptide of this size that is a single alpha-helix. A proposed mechanism of antifreeze binding to ice surfaces is given which requires: first, that the dipole moment from the helical structure dictates the preferential alignment of the peptide to the c-axis of ice nuclei; second, amphiphilicity of the helix; and third, torsional freedom of the side chains to facilitate hydrogen bonding to ice surfaces.

Amino Acid Sequence↗

Tryptic digestion of human GPIIIa. Isolation and biochemical characterization of the 23 kDa N-terminal glycopeptide carrying the antigenic determinant for a monoclonal antibody (P37) which inhibits platelet aggregation.

Early digestion of pure human platelet glycoprotein IIIa (GPIIIa) leads to a single cleavage of the molecule at 23 kDa far from one of the terminal amino acids. Automated Edman degradation demonstrates that GPIIIa and the smaller (23 kDa) tryptic fragment share the same N-terminal amino acid sequence. A further cleavage occurs in the larger fragment (80 kDa), reducing its apparent molecular mass by 10 kDa. The 23 kDa fragment remains attached to the larger ones in unreduced samples. Stepwise reduction of early digested GPIIIa with dithioerythritol selectively reduces the single disulphide bond joining the smaller (23 kDa) to the larger (80/70 kDa) fragments. Two fractions were obtained by size-exclusion chromatography of early digested GPIIIa after partial or full reduction and alkylation. The larger-size fraction contains the 80/70 kDa fragments, while the 23 kDa fragment is isolated in the smaller. The amino acid compositions of these fractions do not differ very significantly from the composition of GPIIIa; however the 23 kDa fragment contains only 10.2% by weight of sugars and is richer in neuraminic acid. Disulphide bonds are distributed four in the 23 kDa glycopeptide and 20-21 in the 80/70 kDa glycopeptide. The epitope for P37, a monoclonal antibody which inhibits platelet aggregation [Melero & González-Rodríguez (1984) Eur. J. Biochem. 141, 421-427] is situated within the first 17 kDa of the N-terminal region of GPIIIa, which gives a special functional interest to this extracellular region of GPIIIa. On the other hand, the epitopes for GPIIIa-specific monoclonal antibodies, P6, P35, P40 and P97, which do not interfere with platelet aggregation, are located within the larger tryptic fragment (80/70 kDa). Thus, the antigenic areas available in the extracellular surface of GPIIIa for these five monoclonal antibodies are now more precisely delineated.

Amino Acids↗

Molecular cloning and expression of salmon prolactin cDNA.

Prolactin was purified from chum salmon pituitaries. It was resolved into two variants by reverse-phase high-performance liquid chromatography. A cDNA library was prepared from Pacific chinook salmon pituitaries. Salmon prolactin gene was screened using a synthetic oligonucleotide based on partial protein sequence. A positive clone (PRL-10) was identified and sequenced. It is a full-size clone containing 1.1 kb and coding for a preprolactin of 211 amino acids. A modified prolactin plasmid (PRL-10A), in which the 5' untranslated sequence and the nucleotide sequence coding for the signal peptide of prolactin were deleted, was reconstructed into an expression vector using the heat-inducible lambda pL promotor. Mature prolactin, a single polypeptide of 22 kDa, was efficiently expressed in the bacteria at an elevated temperature.

Amino Acid Sequence↗