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1.
  • 1.1. Main serum α1-protein (α1P) of rainbow trout was purified and its biochemical and physico-pathological properties were studied.
  • 2.2. α1P was suggested to be a primitive protein having both properties of albumin and AFP in serum proteins of mammals according to the following results.
  • 3.3. Molecular weight (75,000), two kinds of molecules (pI 4.55 and 5.05) and amino acid composition.
  • 4.4. Dye- or ConA binding activity.
  • 5.5. Estrogen binding activity and inhibitory effect on lymphoblastoid-forming activity.
  • 6.6. Possible osmotic regulator.
  • 7.7. Significant elevation of blood α1P level in the course of hepatoma induction.
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2.
  • 1.1. Trehalase (α,α-trehalose 1-d-glycohydrolase, E.C. 3.2.1.28) from cryptobiotic Artemia salina embryos was purified and characterized.
  • 2.2. Most of the enzyme activity was present in an insoluble form and could be solubilized by deoxycholate treatment at high ionic strength and sonication.
  • 3.3. The enzyme had a molecular weight of 75,000 and its isoelectric point was 6.2. It was optimally active at pH 5.6 with a Km = 4.3 × 10−3 M for its natural substrate.
  • 4.4. The enzyme was highly specific for trehalose, only lactose and cellobiose being hydrolyzed to a limited extent.
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3.
  • 1.1. α2-Macroglobulin (α2M) activity is present in the serum of the ostrich, Struthio camelus. The chromogenic synthetic peptide substrates BAPNA and ATNA were hydrolysed by trypsin and chymotrypsin, respectively, in the presence of ostrich serum and the α2M in ostrich serum protected trypsin from being inhibited by soybean trypsin inhibitor. Ostrich α2M proved to be a potent inhibitor of bovine pancreatic trypsin and chymotrypsin.
  • 2.2. α2M was purified to apparent homogeneity by PEG precipitation, DEAE-Toyopearl 650M, Bio-Gel A-5m and Zn2+-affinity chromatography.
  • 3.3. Ostrich α2M migrated as a single band (Mr 779,000) during non-denaturing gradient gel electrophoresis and showed increased mobility after reaction with trypsin. Denaturation dissociated ostrich α2 M into half-molecules. Denaturation with reduction further dissociated the protein into quarter-subunits.
  • 4.4. Isoelectric focusing revealed a pI of 5.3.
  • 5.5. The amino acid composition of ostrich α2M is typical of an α2M, comparing favourably with those of other animal species. The carbohydrate composition of the purified protein, in percentage dry weight of the molecule, was galactose: mannose (1:1), 4.55; N-acetylglucosamine, 2.35; N-acetylneuraminic acid, 0.58; and fucose, 0.77.
  • 6.6. α2M was assessed immunologically by Ouchterlony double-diffusion and Western blot analysis with polyvalent antisera directed against ostrich α2M.
  • 7.7. Ostrich α2M seems to show many physical, chemical and kinetic properties similar to those of other known α2Ms, but is expected to differ from other αMs when considering the primary structure of the bait region, the area differing among α Ms from different species and determining its specificity.
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4.
Lysozyme from the serum of the plaice, Pleuronectes platessa L., has been purified 78-fold with chitin coated cellulose.
  • 1.2. Further purification on CM-cellulose yielded a single band on acrylamide electrophoresis, exhibiting lysozyme activity.
  • 2.3. The quantitative amino acid composition of plaice serum lysozyme is reported.
  • 3.4. The mol. wt is identical with hen egg white lysozyme.
  • 4.5. A method is described for identifying fractions with lysozyme activity in polyacrylamide gels.
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5.
  • 1.1. Native and cleaved α1-proteinase inhibitor was purified from ostrich serum using Sepharose-blue dextran chromatography, ammonium sulfate precipitation and ion exchange chromatography on DEAE-Toyopearl 650 M at pH 8.8 and 6.5.
  • 2.2. Ostrich α1PI displayed Mr values of 68,100 using gradient PAGE and 66,200 using Ferguson plots.
  • 3.3. Isoelectric focusing of ostrich α1-PI in the pH range 3–10 revealed pi values of 4.84 and 4.91, and in the pH range 4–6 the characteristic microheterogeneity observed for mammalian α1-PIs was displayed.
  • 4.4. The presence of sialic acid, hexoses and hexosamines was detected using chemical methods, but were found in much lower quantities as compared to α1-PIs of other species.
  • 5.5. Western blot analysis demonstrated a positive reaction between the native and cleaved ostrich α1-PIs and the antibodies to the ostrich α1-PIs raised in rabbits. No cross-reactivity was demonstrated by Western blot analysis between human α1-PI and antibodies to ostrich α,-PI.
  • 6.6. The inhibitory effect of α1-PI on elastase and chymotrypsin was also investigated.
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6.
  • 1.1. A standard procedure for lipid-extraction of lyophilized hen brain material is decribed.
  • 2.2. Nine carboxylesterase isoenzymes (EC 3.1.1.1) are identified in lipid-extracted lyophilized material (LELM) using kinetic analysis of organophosphate inhibition. Total phenyl valerate (PV) hydrolysing carboxylesterase activity in LELM is 43.3U.g−1
  • 3.3. Two carboxylesterase isoenzymes of LELM are classified as neurotoxic esterases (NTEA and NTEgB).
  • 4.4. Using n-octylglucoside 51% of the water-insoluble neurotoxic esterase activity from LELM are solubilized.
  • 5.5. Six carboxylesterase isoenzymes including NTEA (6.5 U-l−1) and NTEB (4.2 U-l−1) are present in the solubilized preparation.
  • 6.6. Throughout purification and separation steps carboxylesterase isoenzymes are identified by their rate constants for the reaction with organophosphorus inhibitors.
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7.
  • 1.1. Particulate guanylate cyclase and receptors for E. coli heat-stable enterotoxin were solubilized from the rat intestinal cytoskeletal compartment using Lubrol-PX and KC1.
  • 2.2. Thirty to forty percent of the ST receptor and guanylate cyclase activities were extracted from the lipid layer with Lubrol-PX alone.
  • 3.2. Seventy percent of the remaining activities were solubilized from the cytoskeleton with Lubrol-PX and KCl.
  • 4.3. Guanylate cyclase solubilized from either compartment exhibited similar reaction kinetics.
  • 5.4. Both high- and low-affinity classes of ST receptors were solubilized from the lipid and cytoskeleton compartments.
  • 6.5. In the presence of ATPγS, ST selectively activated the guanylate cyclase solubilized from the cytoskeleton compared to that solubilized from the lipid bilayer.
  • 7.6. Crosslinking experiments demonstrated a preferential solubilization of the 130 kDa receptor subunit from the cytoskeleton and the 56 kDa subunit from the lipid bilayer.
  • 8.7. Development of a procedure to solubilize ST receptors and guanylate cyclase from the intestinal membrane cytoskeleton will permit purification and further detailed studies of the coupling of these activities.
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8.
  • 1.1. Insulin stimulated intracellular accumulation of α-amino-isobutyric acid (AIB) in kidney cortex slices from young lambs and piglets.
  • 2.2. The effect was similar in the absence or presence of glucose.
  • 3.3. The induction of the stimulatory effect on renal AIB transport was blocked by cycloheximide. an inhibitor of protein synthesis.
  • 4.4. The insulin stimulation of intracellular AIB accumulation is due to an increased influx and not to a reduced efflux of AIB.
  • 5.5. Analysis of transport kinetics for AIB showed that insulin increased Vmax but did not change Km.
  • 6.6. It is concluded that insulin stimulates uptake of certain neutral amino acids into kidney cortex cells in young animals.
  • 7.7. The effect on renal amino acid transport appears to be mediated through increased synthesis of a membrane carrier.
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9.
  • 1.1. Four ostrich pancreatic α-amylase isoenzymes were isolated by isoelectric focusing, following affinity chromatography on cyclohepta-amylose-Sepharose 4B.
  • 2.2. Amino acid compositions of the four isoenzymes are very similar with only one charged amino acid (Arg) being significantly different.
  • 3.3. The molecular weights, as determined by SDS-PAGE and amino acid composition, are nearly identical (52–53 kDa) for all four isoenzymes.
  • 4.4. The four α-amylase isoenzymes appear to be kinetically distinct enzymes with a requirement for calcium.
  • 5.5. Ostrich α-amylase isoenzymes appear to be non-glycosylated and contain one free thiol group.
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10.
  • 1.l. High amino acid concentrations were found in the anterior coelomic fluid of a Polychaeta (Sabella pavonina Savigny).
  • 2.2. The concentrations being much higher in the fluid which penetrates the nephrostomia into the nephridia lumen than in the final urine indicates that the nephridia reabsorbs large amounts of amino acids.
  • 3.3. Nephridial perfusion experiments showed that an amino acid analogue (α-amino-iso-butyric acid, AIB) is transported by the nephidia.
  • 4.4. The transport took place across the nephridial wall owing to the presence of a carrier-mediated transport system and a diffusion system.
  • 5.5. For the carrier-mediated transport, the Vmax was 0.234 ± 0.025 nmol·min and the Km 3.715 ± 0.315mmol·l.
  • 6.6. AIB accumulated in the nephridial cells up to a maximum rate of 01.17 nmol·min.
  • 7.7. Intracellular accumulation stopped increasing when the Vmax for reabsorption was reached.
  • 8.8. These results indicate that the carrier-mediated transport of AIB is located at the apical membrane of the nephridial cell, and that AIB transport by simple diffusion takes place through the paracellular pathway.
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11.
  • 1.1. A pathway for a-methylnoradrenaline oxidation to α-methylnoradrenochrome, by tyrosinase, is proposed. Characterization of intermediates in this oxidative reaction and stoichiometry determination have both been performed.
  • 2.2. It has been possible to detect spectrophotometrically o-quinone-H+ as the first intermediate in this pathway after oxidizing α-methylnoradrenaline with mushroom tyrosinase or sodium periodate in a pH range from 5 to 6.
  • 3.3. The steps for α-methylnoradrenaline transformation into its aminochrome could be: α-methylnoradrenaline → o -α-methylnoradrenaline — H+oα -methylnoradrenalinequinone → leuko — α — methylnora — drenochrome→α-methylnoradrenochrome.
  • 4.4. No participation of oxygen was detected in the conversion of leuko-α-mehtylnoradrenochrome into α -methylnoradrenochrome.
  • 5.5. Matrix analysis of the spectra obtained with a rapid scan spetrophotometer verified that o-quinone-H+ was transformed into aminochrome in a constant ratio.
  • 6.6. The stoichiometry for this conversion followed the equation: 2 α-methylnoradrenalinequinone-H+α-methylnoradrenaline + α-methylnoradrenochrome.
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12.
  • 1.1. Glutamate dehydrogenase flux by rat kidney mitochondria incubated with 1 mM glutamine plus 2–3 mM glutamate was stimulated by aminooxyacetate. This effect was inhibited by α-ketoglutarate.
  • 2.2. Studies with intact mitochondria and mitochondrial sonicates revealed a linear inverse relationship between glutamate deamination and α-ketoglutarate levels.
  • 3.3. The data revealed that α-ketoglutarate is a competitive inhibitor of glutamate dehydrogenase with an apparent Ki of 0.6mM.
  • 4.4. The data suggest that aminooxyacetate stimulates glutamate deamination by a mechanism mediated by α-ketoglutarate.
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13.
  • 1.1. Three different species of native vitellogenin, designated Vgα, Vgβ and Vgγ, were detected by gradient polyacrylamide gel electrophoresis (2–16%) in the plasma of untreated mature female quail and in the plasma of estrogen-induced female or male quail. The molecular weights of Vgγ, Vgβ and Vgα (in order of increasing size) were estimated to be 400,000 to 450,000 (by PAGE) or 466,000 (by analytical ultracentrifugation).
  • 2.2. DEAE-cellulose chromatography resolved vitellogenin-containing plasma into peak IV, fractions of which contained Vgα and Vgβ in equal quantities, and peak III, fractions of which contained Vgα, Vgβ and Vgγ in varying proportions.
  • 3.3. Peak IV fractions disssociated to give two bands (designated Vg1 and Vg2) on SDS-polyacrylamide gel electrophoresis. Pooled peak III fractions and plasma from untreated female or estrogen-induced female and male quail dissociated to give three bands (Vg1, Vg2 and Vg3). The mol. wt of Vg1, Vg2 and Vg3 were approx. 232,500, 212,000 and 194,000, respectively.
  • 4.4. Peak III and peak IV vitellogenin fractions were shown to have similar amino acid compositions except that the peak III vitellogenin fraction contained twice as much cystine as the peak IV vitellogenin fraction (2.2 vs 1.1 mol%). The peak IV vitellogenin fraction contained more serine than the peak III vitellogenin fraction (11.8 vs 10.9 mol%) and more phosphorus (0.584 vs 0.516 nmol/μg protein).
  • 5.5. Vgα or Vg1, in trace amounts, were detected in the plasma of untreated male quail.
  • 6.6. The amino acid contents, phosphorus contents, and mol. wt of quail vitellogenins were similar to published values for other egg-laying species.
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14.
  • 1.1. A new α component, α2(Pr), was successfully isolated from the pepsin-solubilized collagen from the muscle of kuruma prawn.
  • 2.2. The component α2(Pr) was genetically distinct from components comprising Type AR-I and AR-II collagens by peptide mapping with proteases, amino acid analysis, and immunoblotting, and had high contents of leucine and hydroxylsine, and a low content of alanine.
  • 3.3. The effect of pepsin digestion on the molecule containing the α2(Pr) component was examined by using immunological techniques. The component α2(Pr) in intact form consisted of several types of components. Although they were all identical to each other in the helical region, each of them had a distinct form of non-helical region with a slight modification.
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15.
  • 1.1. The effects of some synthetic α2-adrenoceptor agonists on the mechanical activity and on contractile responses to catecholamines were examined in smooth muscle strips isolated from rainbow trout stomach.
  • 2.2. Contractile responses to noradrenaline and adrenaline in the rainbow trout stomach strips were due to α2-adrenoceptor activation.
  • 3.3. Clonidine, p-aminoclonidine, naphazoline and guanabenz caused no mechanical response but concentration-dependently inhibited the contractile responses to noradrenaline and adrenaline without affecting the responses to acetylcholine, carbachol, 5-hydroxytryptamine and methionine-enkephalin. The order of potency was naphazoline >p-aminoclonidine > clonidine > guanabenz.
  • 4.4. It is suggested that in the smooth muscle preparation of the trout stomach, some synthetic compounds (clonidine, p-aminoclonidine, naphazoline and guanabenz), which act on mammalian preparations as α2-adrenoceptor agonists, show an antinoradrenaline (-adrenaline) effect; those compounds can be classified as α2-adrenoceptor antagonists.
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16.
  • 1.1. The location of genetically distinct types of collagen in muscular tissue of the kuruma prawn was examined using immunohistochemical techniques.
  • 2.2. Collagen was distributed not only in muscle connective tissues, which were classified into three forms, epimysium, perimysium and endomysium, but also in subcuticular membrane, which was mainly composed of two layers, hypodermis and subcuticular connective tissue.
  • 3.3. The α1(Pr) component existed in all connective tissues in the kuruma prawn muscle. Type AR-II collagen was distributed in all the connective tissues except for the hypodermis, while the α2(Pr) component existed in the thin connective tissues, the perimysium and endomysium, and in the hypodermis.
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17.
  • 1.1. SDS causes significant polar exposure of aromatic amino acids of enolase. The α-helix content remains unchanged. The enzyme lost all its activity.
  • 2.2. The presence of 1 M KBr in enzyme solution results in a smaller increase of polarity of aromatic amino acids residues environment. The amount of α-helix does not decrease in comparison to native enzyme. Enzyme lost nearly 80% of its initial activity.
  • 3.3. The extreme pH values and the presence of 6 M Gnd.HCl influence the whole structure of enolase. It is accompanied by a large polar shift of aromatic amino acids and significant decrease of α-helix content of the protein.
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18.
  • 1.1. Trypsin inhibitors in serum from adult and suckling rats and in rat milk were studied by gel filtration and electrophoresis in casein-agarose gels. In addition trypsin binding properties and inhibiting activity in the presence of low mol. wt substrates were studied.
  • 2.2. In adult rat serum 6 trypsin inhibitors were found, most of these having not been described before. One inhibitor, di-macroglobulin is a homologue of human α2-macroglobulin. Two inhibitors in the α1- and α2-regions of the electropherogram had a mol. wt of about 200,000. The third group of inhibitors was eluted together with albumin and had electrophoretic mobilities in the di-α2- and β-region.
  • 3.3. In the serum of the newborn rat the inhibitors of the third protein peak dominated, especially that in the α2-region. In later developmental stages the inhibitor pattern became increasingly similar to that of the adult. A specific inhibitor, α2-acute phase globulin, was found in the neonatal rat but disappeared in later developmental stages.
  • 4.4. The trypsin inhibitors in rat milk were dominated by inhibitors in the third protein peak after gel nitration and had the same electrophoretic mobilities as the inhibitors of the corresponding fraction in serum. No low mol. wt trypsin inhibitors specific for milk were found.
  • 5.5. Rat milk trypsin inhibiting activity seems to have a higher resistance to low pH-values than the inhibiting activity of rat serum.
  • 6.6. The trypsin inhibitor pattern in the serum of the suckling rat is similar to that of milk, indicating an absorption of inhibitors from milk. The milk inhibitors may have the function of preventing protein breakdown in the intestine of the suckling rat.
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19.
  • 1.1. Three calcium-binding proteins have been purified from Ehrlich ascites tumor cells.
  • 2.2. They were identified by amino acid sequence analysis on selected fragments obtained by tryptic digestion.
  • 3.3. The proteins belong to the annexin family and were identified as annexins II, III and V.
  • 4.4. Antibodies raised against the proteins were used to examine for their presence in a number of murine tissues.
  • 5.5. The occurrence was found to be in reasonable accordance with earlier reports.
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20.
  • 1.1. Glycerolphosphate acyltransferase (GPAT) was solubilized from the rat liver mitochondrial membranes using sodium cholate. Dithiothreitol was necessary to stabilize the solubilized enzyme on storage.
  • 2.2. Unlike the enzyme in situ in mitochondrial membranes, the solubilized mitochondrial GPAT was susceptible to inhibition by N-ethylmaleimide; a property more characteristic of the distinct microsomal form of GPAT.
  • 3.3. Solubilized mitochondrial GPAT retained its very high preference for saturated acyl-CoA substrate (palmitoyl-CoA) and had no activity whatever with any tested concentration of the unsaturated substrate oleoyl-CoA.
  • 4.4. Solubilization increased the affinity of mitochondrial GPAT for palmitoyl-CoA whilst decreasing the Km for glycerol phosphate.
  • 5.5. After separation of liver mitochondrial outer and inner membranes and estimation of cross-contamination by appropriate markers it was concluded that the mitochondrial inner membrane contains significant GPAT activity. This was established with preparations from fed, 48 hr-starved and streptozotocin-diabetic rats.
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