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Biomedical subjects

G L Fletcher

Publications and source records attributed to G L Fletcher.

At least 19 recordsLinked to original sources

Skin-type antifreeze protein from the shorthorn sculpin, Myoxocephalus scorpius. Expression and characterization of a Mr 9, 700 recombinant protein.

A cDNA clone encoding a presumptive antifreeze protein was isolated from a skin library from shorthorn sculpin, Myoxocephalus scorpius. The clone encodes a 92-residue mature polypeptide (sssAFP-2) without any signal and prosequence, which suggests an intracellular localization. It is the largest alanine-rich, alpha-helical type I antifreeze protein known. A recombinant fusion protein containing an N-terminal-linked His-tag was produced and purified from Escherichia coli. This protein is alpha-helical at 0 degreesC and exhibits significant antifreeze activity. Northern blot and reverse transcription-polymerase chain reaction analyses indicate that sssAFP-2 mRNA has limited tissue distribution and is present in peripheral tissues such as skin and dorsal fin, but is notably absent in the liver. These studies reinforce recent evidence that indicate that the external tissues of cold water marine fishes are major organs for antifreeze protein synthesis and are likely the first line of defense against the threat of freezing.

Amino Acid Sequence

The ice-binding site of Atlantic herring antifreeze protein corresponds to the carbohydrate-binding site of C-type lectins.

The type II antifreeze proteins (AFPs) of smelt and Atlantic herring are homologous to the carbohydrate-recognition domains (CRDs) of Ca2+-dependent (C-type) animal lectins and, like these lectins, acquire a stable and active structure upon binding Ca2+ ions. In the C-type lectin CRD, the carbohydrate-binding site is located at a Ca2+-binding site. Site-directed mutagenesis was used to test the hypothesis that the ice-binding site of the type II AFP corresponds to the carbohydrate-binding site of the lectins. To disrupt this site in the herring AFP without perturbing the Ca2+-dependent protein fold, a double mutant was constructed that changed the Ca2+- and carbohydrate-binding motif from the galactose-type of wild-type AFP containing the sequence Gln-Pro-Asp to a mannose-type that has the sequence Glu-Pro-Asn and is also known to bind Ca2+. The mutant AFP exhibited proper Ca2+ binding, folding, and stability as demonstrated by ruthenium red staining, proteolysis protection assays, and CD spectroscopy. However, it showed no antifreeze activity (thermal hysteresis) and did not alter ice crystal morphology to form bipyramidal crystals as does the active wild-type AFP. These results demonstrate that the ice-binding site of the herring type II AFP corresponds to the carbohydrate-binding site of the C-type lectin CRDs and further suggest that this ice-binding function evolved from the carbohydrate-binding site of a preexisting C-type lectin.

Amino Acid Sequence

Identification of nuclear proteins interacting with the liver-specific enhancer B element of the antifreeze protein gene in winter flounder.

The intron of the winter flounder antifreeze protein (AFP) gene contains a liver-specific enhancer element B as demonstrated by transient expression in mammalian cells. Element B interacts with rat C/EBPalpha and a novel protein, tentatively designated as the antifreeze enhancer-binding protein (AEP). Present studies revealed that nuclear proteins from the winter flounder liver interact similarly and specifically to element B as shown by footprinting analysis and gel retardation assays. The presence of C/EBP in the flounder liver was confirmed by Western blot analysis. In vitro transcription assays in its homologous system further demonstrated the transactivation activity of the AFP gene intron. The present findings suggest that the mechanisms for regulating liver-specific transcription are evolutionarily conserved.

Animals

The role of CCAAT/enhancer-binding protein alpha and a protein that binds to the activator-protein-1 site in the regulation of liver-specific expression of the winter flounder antifreeze protein gene.

Winter flounder, Pleuronectes americanus, produces antifreeze proteins (AFPs) to avoid freezing during winter. The AFP in the blood is synthesized by the liver and its annual level is regulated by environmental factors and somatotropin. The only intron (+106 to +602) of the AFP gene contains putative binding sites for liver-enriched transcription activators. Due to the lack of an appropriate fish liver cell line, a mammalian model system was used to demonstrate the liver-specific enhancer activity of the intron. Deletion analysis of the intron indicated nucleotide sequences between +192 bp and +334 bp were important for the enhancer activity. Further refinement showed that the element B (+303 to +322 bp) resided in this region interacted with proteins from rat nuclear extracts by DNase I footprinting and mobility shift analysis. Gel retardation with competition and supershift experiments defined element B to include binding sites for CCAAT/enhancer binding protein a (C/EBP alpha), a liver-enriched transcription factor, and a novel activator protein-1 (AP-1) site binding protein, designated as antifreeze enhancer binding protein (AEP). Residues important to DNA-protein interaction in element B were mapped by methylation interference. Mutations in element B by site-directed mutagenesis destroyed the enhancer activity of the intron. Ultraviolet crosslinking experiments using element B revealed the specific binding of two proteins of approximately 43 and 80 kDa. The present findings provide a mechanism(s) by which the tissue specificity of AFP gene expression can be achieved. Integration of the present information with the somatotropin-mediated signal transduction pathways has generated a working model for the hormonal regulation and seasonal expression of the AFP gene.

Animals

Ca2+-dependent antifreeze proteins. Modulation of conformation and activity by divalent metal ions.

The antifreeze proteins (AFPs) are structurally diverse molecules that share an ability to bind to ice crystals and inhibit their growth. The type II fish AFPs of Atlantic herring and smelt are unique among known AFPs in their requirement of a cofactor for antifreeze activity. These AFPs are homologous with the carbohydrate-recognition domains of Ca2+-dependent (C-type) lectins and require Ca2+ for their activity. To investigate the role of metal ions in the structure and function of type II AFPs, the binding of Ca2+ and other divalent cations to herring AFP was investigated. Binding studies using 45Ca2+ demonstrated that the AFP has a single Ca2+-binding site with a Kd of 9 microM. Proteolysis protection studies and measurement of antifreeze activity revealed a conformational change from a protease-sensitive and inactive apoAFP to a protease-resistant active AFP upon Ca2+ binding. Other divalent metal ions including Mn2+, Ba2+, and Zn2+ bind at the Ca2+-binding site and induce a similar change. A saturatable increase in tryptophan emission intensity at 340 nm also occurred upon Ca2+ addition. Whereas antifreeze activity appeared normal when Ca2+ or Mn2+ were bound, it was much lower in the presence of other metal ions. When Ba2+ was bound to the AFP, ice crystals showed a distinct difference in morphology. These studies demonstrate that herring AFP specifically binds Ca2+ and, consequently, adopts a conformation that is essential for its ice-binding activity.

Amino Acid Sequence

Skin antifreeze protein genes of the winter flounder, Pleuronectes americanus, encode distinct and active polypeptides without the secretory signal and prosequences.

Distinct antifreeze polypeptides (AFP) were isolated from the skin of the winter flounder, Pleuronectes americanus, by gel filtration and reverse phase high performance liquid chromatography. In parallel, several cDNA clones were isolated from a skin cDNA library using a liver AFP cDNA probe. Both protein and DNA sequence analyses indicate that flounder skin contains several distinct but homologous alanine-rich AFPs. Although the skin type AFPs contain 11 similar amino acid repeats found in the secretory liver type AFPs, the skin type AFPs are mature polypeptides lacking both the signal and prosequences, indicating that they may function intracellularly. The skin type AFP is significantly less active in thermal hysteretic activity than the liver type AFP. Genomic Southern analysis indicates that like the liver type AFP genes, there are multiple copies (30-40 copies) of skin type AFP. Although the liver type AFP genes are specifically expressed in the liver and to a lesser extent in intestine, the skin type AFP genes are expressed in all tissues examined including the liver and abundantly in exterior tissues, i.e. skin, scales, fin, and gills, suggesting an important protecting role in these exterior tissues.

Alanine

The antifreeze protein genes of the winter flounder, Pleuronectus americanus, are differentially regulated in liver and non-liver tissues.

The synthesis of winter flounder (Pleuronectus americanus) antifreeze protein (AFP) mRNAs in the liver is seasonally regulated by the pituitary gland. With the recent discovery that AFP mRNAs are also present in several non-liver tissues, the aim of the present investigation was to compare the regulatory mechanisms of AFP genes in liver and non-liver tissues. Northern blot analyses indicate that the level of liver AFP mRNA undergoes a several hundred fold difference between the winter and summer months, while AFP mRNAs from gills and kidneys exhibit only a modest 5-10 fold seasonal variation. As expected, the liver AFP mRNA in the hypophysectomized fish was increased by over 40 fold. However, no significant increase was observed for the non-liver AFP mRNAs upon hypophysectomy. These investigations suggest that AFP mRNAs in liver and non-liver tissues are differentially regulated.

Animals

Herring antifreeze protein: primary structure and evidence for a C-type lectin evolutionary origin.

A complementary DNA (cDNA) for a type II antifreeze protein (AFP) was isolated from an Atlantic herring liver cDNA library and sequenced. The predicted protein sequence is homologous to those of the type II fish AFP from smelt and sea raven; it is also homologous to the carbohydrate recognition domains (CRD) of calcium-dependent (C-type) lectins and similar domains in lectin-like proteins. Herring belong to the infradivision Clupeomorpha, which is distinct from the Euteleostei to which all other AFP-producing fish belong. The occurrence of type II AFP in widely divergent fish groups and their homology to C-type lectin CRDs suggest that type II AFPs evolved from these lectins. Amino acid residues forming the hydrophobic cores of rat mannose-binding protein A (MBP-A) that are conserved in character among C-type lectins are also conserved in the herring AFP. The herring AFP also requires Ca2+ for thermal hysteresis activity. These results suggest that herring AFP is structurally and functionally similar to the CRDs of C-type lectins and related domains in other proteins.

Amino Acid Sequence

Structural and functional similarity between fish antifreeze proteins and calcium-dependent lectins.

A cDNA for a type II antifreeze protein was isolated from liver of smelt (Osmerus mordax). The predicted protein sequence is homologous to that from sea raven (Hemitripterus americanus) and both show homology to a family of calcium-dependent lectins. Smelt and sea raven belong to taxonomic orders believed to have diverged prior to Cenozoic glaciation. Thus, type II antifreeze proteins appear to have evolved independently in these fish species from pre-existing calcium-dependent lectins. Sequence alignment of the antifreezes and the lectins suggest that these proteins adopt a similar fold, that the sea raven antifreeze has lost its Ca2+ binding sites, and the smelt antifreeze has retained one site. Experiments show that smelt antifreeze protein activity is responsive to Ca2+ but that of sea raven antifreeze protein is not. These results suggest that the type II fish antifreeze proteins and calcium-dependent lectins share a common ancestry, related folding structures, and functional similarity.

Amino Acid Sequence

Growth enhancement in transgenic Atlantic salmon by the use of an "all fish" chimeric growth hormone gene construct.

We have developed an "all fish" growth hormone (GH) chimeric gene construct by using an antifreeze protein gene (AFP) promoter from ocean pout linked to a chinook salmon GH cDNA clone. After microinjection into fertilized, nonactivated Atlantic salmon eggs via the micropyle, transgenic Atlantic salmon were generated. The presence of the transgene was detected by polymerase chain reaction (PCR) using specific oligonucleotide primers. A number of these transgenic fish showed dramatic increases in their growth rate. At one year old, the average increase of the transgenic fish was 2 to 6 fold and the largest transgenic fish was 13 times that of the average non-transgenic control.

Animals

Fish antifreeze proteins block Ca entry into rabbit parietal cells.

Many fish and insects have adapted to life at subfreezing temperatures by evolving so-called antifreeze proteins (AFP) that noncolligatively depress the freezing temperatures of aqueous solutions without affecting the melting temperature. AFP have been thought to function solely as antifreezes. Recently, however, we discovered that AFP also protect mammalian cells and organs from damage caused by exposure to hypothermic (above freezing) temperatures. It has been proposed that hypothermic damage is caused by changes in intracellular ionic content due to a reduction of active transport that is required to balance passive ion transport across cell membranes. Given this possibility, we tested whether AFP isolated from the Newfoundland ocean pout might reduce the Ca ion permeability of a mammalian cell, the rabbit gastric parietal cell, which has been particularly well studied in terms of Ca transport and signaling. Digital image processing of the Ca-sensitive fluorescent indicator fura-2 was used to measure intracellular free Ca in these cells. During stimulation with the cholinergic agonist carbachol, AFP inhibited passive Ca entry across the cell membrane without interfering with either the release of Ca from internal stores (indicating that the carbachol receptor and other signaling events were operational) or the normal active rates of Ca efflux from the cell (indicating that Ca pumping was also still intact). These results suggest that, in addition to their actual antifreeze properties, AFP may also help to confer cold tolerance in animals by preventing passive Ca entry into epithelial cells.

Action Potentials

Inhibition of Ca2+ and K+ currents by "antifreeze" proteins.

For the last two decades, the research on fish "antifreeze" proteins has focused exclusively on their ability to depress noncolligatively blood plasma freezing points, presumably by binding to ice crystals. We report evidence that antifreeze polypeptides from the winter flounder (Pseudopleuronectes americanus) have another special property, the ability to block ion channels. In experiments with porcine granulosa cells we show, using the patch-clamp technique in the whole cell configuration, that these proteins suppress effectively calcium and potassium currents. The results of dose-response studies indicate a protein-protein interaction mechanism.

Animals

Hypothermic protection--a fundamental property of "antifreeze" proteins.

For the last two decades fish antifreeze proteins have been considered to function exclusively in conferring freeze-resistance to fish by binding to ice crystals and thereby depressing blood plasma freezing points non-colligatively. We report here the discovery of a second fundamental property of antifreeze proteins, the ability to protect cells and their membranes from hypothermic damage. Experiments were carried out exposing immature bovine oocytes to 4 degrees C for 24 h in the presence of type I alanine rich alpha helical antifreeze polypeptides (AFP) from winter flounder, type II cysteine-rich AFP from sea raven or type III AFP from ocean pout. The presence of AFP in the incubation medium resulted in an approximate four fold increase in the number of oocytes retaining an intact oolemma and a three fold increase in the number of oocytes able to undergo in vitro maturation. None of the control oocytes could be fertilized, whereas, of those incubated in AFP, the percentage which developed normally following fertilization was comparable to that observed for fresh oocytes. These results indicate that cold-sensitive mammalian cells can be rendered cold-tolerant through the addition of "antifreeze" proteins.

Animals

Vitellogenin gene transcription is not under strict estrogen control in winter flounder.

Although it is almost axiomatic that vitellogenin gene expression is under exclusive control of estrogen in oviparous animals, our results with winter flounder demonstrate that vitellogenin gene transcription in females can continue independent of estradiol. Winter flounder were hypophysectomized in January, i.e. several months after the onset of vitellogenesis. Thirty or more days after hypophysectomy, all fish had negligible levels of estradiol in the serum, and yet vitellogenin gene transcription was quite active in the liver. Our results also suggest that a pituitary factor may be involved in the normal repression of the vitellogenin gene.

Animals

Regulation of antifreeze protein production in winter flounder: a unique function for growth hormone.

Salmon pituitary extract and the protein fraction unabsorbed on concanavalin A-Sepharose, the carbohydrate-poor fraction, depressed plasma levels of antifreeze proteins (AFP) when the pituitary fractions were administered to flounder in late fall or winter. The active pituitary protein occurred in the fraction with a mean molecular weight of 25,000. The two major isohormones of growth hormone (GH) were the only biologically active proteins identified from the pituitary. Hypophysectomized flounder synthesize AFP in the spring and the two isohormones of GH suppress the synthesis. The fraction of flounder pituitaries containing putative GH depressed flounder plasma levels of AFP in late fall.

Acclimatization