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1.
  • 1.1. Several mollusc glycosidases have been studied for their activities towards natural substrates. α-l-Fucosidases from Chamelea gallina, Tapes rhomboideus and Mytilus edulis hydrolyze oligosaccharides (di, tri and pentasaccharides) with α1 → 2, α1 → 3 and α1 → 4 bonds, fucose-containing glycopeptides from bovine thyroglobulin and the porcine submandibular mucin (devoid of sialic acid); α-l-fucosidase from Littorina littorea hydrolyzes fucose-containing glycopeptides from bovine thyroglobulin.
  • 2.2. β-d-Glucuronidase from L. littorea hydrolyzes hyaluronic acid, chondroitin 4-sulfate and heparin with a very low activity; however, it is much more active on oligosaccharides (from the above-mentioned macromolecules) containing non-reducing terminal glucuronyl residues.
  • 3.3. β-N-Acetylhexosaminidase from Helicella ericetorum acts mainly with an endo-hydrolase activity on β1 → 4N-acetylhexosamine linkages of ovalbumin, ovomucoid, chitin, hyaluronic acid and chondroitin
  • 4.4-sulfate; it has also a secondary exo-hydrolase activity on these substrates.
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2.
  • 1.1. To characterize an enzyme which metabolizes retinal in liver microsomes, several properties of the enzymatic reaction from retinal to retinoic acid were investigated using rabbit liver microsomes.
  • 2.2. The maximum pH of the reaction in the liver microsomes was 7.6.
  • 3.3. The Km and Vmax values for all-trans, 9-cis and 13-cis-retinals were determined.
  • 4.4. The reaction proceeded in the presence of NADPH and molecular oxygen.
  • 5.5. The incorporation of one atom of molecular oxygen into retinal was confirmed by using oxygen-18, showing that the reaction comprised monooxygenation, not dehydrogenation.
  • 6.6. The monooxygenase activity was inhibited by carbon monoxide, phenylisocyanide and antiNADPH-cytochrome P-450 reductase IgG, but not by anti-cytochrome b5 IgG.
  • 7.7. The enzymatic activity inhibited by carbon monoxide was photoreversibly restored by light of a wavelength of around 450 nm.
  • 8.8. The retinal-induced spectra of liver microsomes with three isomeric retinals were type I spectra.
  • 9.9. The microsomal monooxygenase activity induced by phenobarbital or ethanol were more effective than that by 3-methylcholanthrene, clotrimazole or β-naphthoflavone.
  • 10.10. These results showed that the monooxygenase reaction from retinal to retinoic acid in liver microsomes is catalyzed by a cytochrome P-450-linked monooxygenase system.
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3.
  • 1.1. The effect of intraventricular injections of various cations or ethylene glycol bis [β-amino ethyl ether]-N,N,N'N-tetra acetic acid (EGTA) on cloacal body temperature (Tc) of young chicks (Gallus domesticus) was investigated.
  • 2.2. K+ and Mg2+ had no effect on Tc while Mn2+ caused a significant decrease.
  • 3.3. Na+ and EGTA caused a significant increase in Tc.
  • 4.4. The control of the set point for body temperature of chicks is similar to that observed in mammals.
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4.
Polysialic acids     
  • 1.1. Polysialic acids are linear homopolymers of N-acetylneuraminic acid (Neu5Ac), N-glycolylneuraminic acid (Neu5Gc) and deaminated neuraminic acid (KDN) residues joined by α 2,8, α 2–9 or α2,8/α2,9 ketosidic linkages.
  • 2.2. They occur in glycoproteins of embryonic neural membranes (playing a role of neural cell adhesion molecules), in non-neural tissues (postnatal kidney), tumours, (neuroectodermal tumours), fish eggs and in the capsule of certain bacteria such as Neisseria meningitidis group B.
  • 3.3. These polymers are synthesized through reactions which involve (a) the synthesis of sialic acid; (b) its activation to a cytidine monophosphate sugar nucleotide and (c) the polymerization of the different residues by a polysialyl-transferase complex.
  • 4.4. Polysialic acids are involved in organogenesis and in cell growth. In several tissues they act as oneodevelopmental antigens, and in bacteria are also virulent determinants.
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5.
  • 1.1. The locust vitellogenin (VTG) receptor which is embedded in oocyte plasma membranes is a glycoprotein.
  • 2.2. With various lectins oligosaccharide units have been identified, among them neuraminic acid linked to Gal or GalNAc, mannose chains, Gal linked to GalNAc or GlcNAc and fucose linked to GlcNAc.
  • 3.3. With specific enzymes it could be shown that mannose and most other oligosaccharides are O-linked while others like fucose are N-linked.
  • 4.4. Enzymatic removal of all O-linked carbohydrates resulted in a drop of the molecular mass of the receptor protein from 200,000 to 110,000.
  • 5.5. A total of N- and O-linked oligosaccharides of 54% was calculated.
  • 6.6. The isoelectric point of the receptor was found to be at pH 3.4 increasing slightly after removal of neuraminic acid.
  • 7.7. Removal of neuraminic acids destroyed the binding ability for VTG.
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6.
  • 1.1. The disaccharide sequences of a heparan sulfate isolated from Anomantidae sp. was determined with the aid of heparitinase I, heparitinase II from Flavobacterium heparinum, mollusc β-glucuronidase and α-N-acetylglucosaminidase besides nitrous acid degradation and chemical analyses.
  • 2.2. Like the mammalian heparan sulfates the mollusc heparan sulfate is composed of different oligosaccharide blocks of N-acetylated disaccharides, N-sulfated disaccharides and N,6-sulfated disaccharides and has in its nonreducing end the monosaccharide glucosamine 2,6-disulfate.
  • 3.3. The oligosaccharides produced by heparitinase I degradation contain at their reducing ends a N-acetylated, 6-sulfated disaccharide.
  • 4.4. These and other results lead to the conclusion that the general structure of the heparan sulfate is maintained through evolution.
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7.
  • 1.1. The hydrolysis of glycol chitin preparations by several β-N-acetylglucosaminidases was monitored colorimetrically with the potassium ferriferrocyanide reagent.
  • 2.2. Glycol chitin samples from crab and insect sources varied considerably in chemical composition and susceptibility to enzymatic hydrolysis.
  • 3.3. Insect endochitinase preferred crab glycol chitin as substrate while hen's egg white lysozyme preferred commercial glycol chitin.
  • 4.4. Insect glycol chitin was well hydrolyzed by both enzymes.
  • 5.5. Insect exochitinase did not digest glycol chitin.
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8.
  • 1.1. The binding of 8-anilino-l-naphthalene sulfonate (ANS) by M-line creatine kinase (CPK) and the 165,000 dalton protein component was studied by fluorescence.
  • 2.2. One mole of ANS binds to a mole of each M-protein and the binding site on these two M-proteins is hydrophobic in nature.
  • 3.3. M-line proteins labeled with ANS were used to demonstrate their interaction with myosin and myosin subfragments 1 and 2.
  • 4.4. A unique finding of this study, that labeled M-line CPK binds to subfragment 2 of myosin, is of significance from a structural view point, since only the rod portions of myosin molecules are exposed at the M-line and therefore able to interact with CPK.
  • 5.5. The use of a sulfhydryl fluorescent probe, N-(2-iodoacetyl)-N-(5-sulfo-l-napthyl) ethylene diamine, (1,5-AEDANS), has shown that the essential sulfhydryl group on CPK is very important for its interaction with both myosin and the 165,000 dalton M-line protein component.
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9.
  • 1.1. The metabolic fate of 1-14C-acetate administered to the marine bivalve mollusc Mytilus edulis was investigated.
  • 2.2. The active incorporation of the label in 20:2 non-methylene-interrupted dienoic (NMID) fatty acids was found.
  • 3.3. Acetate incorporation patterns and specific radioactivity of mussel acids suggest that 22:2Δ7,13 and 22:2/gD7,15 arose by C2 elongation of 20:2Δ5,11 and 20:2Δ5,13 respectively.
  • 4.4. The proposed pathway of NMID fatty acid biosynthesis in molluscs is discussed.
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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. Indian River male broiler chickens growing from 7 to 28 days of age were fed diets containing 12, 18, 24 and 30% protein + 0 or 1 mg triiodothyronine (T3)/kg of diet to study energetic costs of lipogenesis and the use of various substrates for in vitro lipogenesis.
  • 2.2. De novo lipid and CO2 production were determined in the presence of [1-14C]pyruvate, [2-14q]pyruvate, [3-14C]pyruvate, [2-14C]acetate and [U-14C]alanine.
  • 3.3. Oxygen consumption was determined in mitochondrial preparations to estimate the energetic costs in expiants synthesizing lipid.
  • 4.4. Radiolabeled CO2 derived from [1-14C]pyruvate was used as an estimate of coenzyme A availability in liver expiants. Lipids derived from [2-14C]pyruvate, [2-14C]acetate and [U-14C]alanine estimate relative substrate efficiency.
  • 5.5. Labeled CO2 production from [1-14C]pyruvate was greatest in that group fed a 12% protein diet and least in the group fed a 30% protein diet.
  • 6.6. In addition, T3 increased CO2 production from [1-14C]pyruvate.
  • 7.7. The production of 14CO2 from the second carbon of pyruvate or acetate was increased by T3.
  • 8.8. The low-protein diet (12% protein) increased (P <0.05) lipogenesis.
  • 9.9. Adding T3 to the diets decreased carbon flux into lipid from all substrates, but increased CO2 production from all substrates without changing stage 3 and 4 respiration rates in mitochondrial preparations.
  • 10.10. These observations imply that coenzyme A availability may have regulated de novo lipogenesis in the present study.
  • 11.11. It was also concluded that previously noted effects of T3 on intermediary metabolism may involve metabolic pathways that do not involve changes in mitochondrial function.
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13.
  • 1.1. Adenylylation, a posttranslational modification of proteins, was investigated in saponin-permeabilized acinar cells of the rat parotid gland.
  • 2.2. When cells were incubated with [2,8-3H]ATP, several proteins, including a 26 kDa protein in the particulate fraction, were labeled.
  • 3.3. Upon incubation of cells with [α-32P]ATP in the presence of cAMP and 3-isobutyl-lmethylxanthine, 32P-labeling of the 26 kDa protein was observed.
  • 4.4. After treatment with snake venom phosphodiesterase, [32P]AMP was released from the 26kDa protein. Such release was not observed when cells were labeled with [γ-32P]ATP.
  • 5.5. The 32P-labeling pattern of proteins with [α-32P]ATP was clearly different from that with [adenylate-32P]NAD+.
  • 6.6. The results suggest that the 26 kDa protein is one of the adenylylation substrates in rat parotid acinar cells.
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14.
  • 1.1. β2-Glycoprotein I is a sialic acid microheterogeneous protein and contains on the average 11 mol sialic acid/mol.
  • 2.2. Linear correlation was found between sialic acid content and pI of isolated subfractions.
  • 3.3. Asialo-β22-glycoprotein I consists of 2 isoforms. Each of which can originate from the same subfraction.
  • 4.4. The isolated subfractions exhibited almost the same amino acid composition.
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15.
  • 1.1. The structure of carbohydrate chains in the low and high molecular weight mucus glycoprotein forms from submandibular-sublingual saliva of individuals with blood group B was investigated.
  • 2.2. Alkaline borohydride reductive cleavage of the glycoproteins yielded in each case a population of neutral (55%) and acidic (45%) oligosaccharide alditols ranging in size from 3 to 16 sugar units.
  • 3.3. The predominant neutral oligosaccharides in both glycoprotein forms consisted of 16 and 15 sugar units arranged in triantennary fashion, and carried blood group B and I antigenic determinants.
  • 4.4. Three of the oligosaccharides in each glycoprotein contained sialic acid and ranged in size from 3 to 12 sugar units. In two oligosaccharides sialic acid was linked to C3 of galactose and in one to C6 of N-acetylgalactosamine. The sulfated oligosaccharide in both glycoproteins was identified as a pentasaccharide with the sulfate ester group at C6 of N-acetylglucosamine.
  • 5.5. The results demonstrate that contrary to the earlier view the low and high molecular weight mucus glycoprotein forms of human saliva contain identical carbohydrate chains.
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16.
  • 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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17.
  • 1.1. Babesia hylomysci has an aminopeptidase and an acid endoprotease
  • 2.2. The amino-peptidase has properties very similar to the aminopeptidase in Plasmodium yoelii nigeriensis and P. chabaudi.
  • 3.3. The acid endoprotease is specific towards haemoglobin and practically has no action on bovine serum albumin.
  • 4.4. In mouse normal red blood cells we find an acid protease having physico-chemical properties similar to the enzyme present in B. hylomysci extracts.
  • 5.5. The similarity of electrophoretic velocity between acid protease in B. hylomysci and non-infected red blood cells leads us to think that the acid protease of parasitic extracts comes from the host-cell.
  • 6.6. The proteolytic system of Babesia and Plasmodium are similar.
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18.
  • 1.1.|The high-energy phosphorylation metabolism in crayfish, Procambarus clarkii eggs during brooding and juvenile crayfish after hatching was studied by in vivo31P nuclear magnetic resonance (31P NMR) spectroscopy.
  • 2.2.|Inorganic phosphoric acid (Pi) and adenosine-5′-triphosphate ATP(γ-,α-,β-) were detected in the dark brownish red eggs after oviposition.
  • 3.3.|In orange unhatched eggs, only sugar phosphate (SP), Pi and resolved phosphometabolite from ATP were observed.
  • 4.4.|Peaks of SP, Pi, arginine phosphate (Arg-P), and ATP (γ,α,β) appeared in larvae of crayfish after hatching (nauplius, zoea and juvenile crayfish).
  • 5.5.|The high-energy phosphorylation metabolism changed to an anaerobic condition along with a decrease in the concentration of dissolved oxygen in fresh water.
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19.
  • 1.1. A lipoxygenase activity was purified from Thermoactinomyces vulgaris and some of its properties were characterized.
  • 2.2. The enzyme showed a temperature activity range of 40–55°C with still significant activity over 60°C.
  • 3.3. The pH of activity on linoleic acid had a broad range with an optimum at pH 6.0 and a weaker one at pH 11.0.
  • 4.4. On arachidonic acid the pattern was narrow bell-shaped with an optimum at pH 6.5.
  • 5.5. The purified lipoxygenase from Th. vulgaris showed an apparent Km of 1 mM and Vmax of 0.84 μmol diene/min/mg protein.
  • 6.6. It was inhibited by the oxidation products, 9-HPOD and 13-HPOD.
  • 7.7. A 160,000 Da molecular weight of the enzyme was determined by molecular filtration. Methionine, tyrosine, tryptophan and cysteine are apparently involved in its activity.
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20.
  • 1.1. The inhibitory effect of N,N,N′,N′-tetramethylethylene diamine (TEMED) on water soluble (WSAChE) and membrane bound (MBAChE) acetylcholinesterase was investigated.
  • 2.2. TEMED (0.5–4.0 mM) reversibly inhibited WSAChE activity (18–62%) and MBAChE (20–61%) in a concentration dependent manner.
  • 3.3. The IC50 being about 2.8 mM for WSAChE and 2.6 mM for MBAChE.
  • 4.4. Lineweaver-Burk plots indicated that the nature of inhibition is noncompetitive for both water soluble and membrane bound acetylcholinesterase, with Km values 68 μM and 123 μM respectively.
  • 5.5. An Arrhenius plot showed that the transition temperature (TT) is unaffected in the presence of TEMED.
  • 6.6. The activation energy was increased below and above TT in the case of WSAChE only.
  • 7.7. On the basis of this behaviour of TEMED with AChE. it can be proposed that it can be used as an eluting agent for the bounded AChE to affinity ligand and may have beneficial action on the reactivatability of irreversibly-inhibited AChE due to its structure.
  • 8.8. Moreover there is a possibility that it can be used as a therapeutic agent for the treatment of Alzheimer's disease, myasthenia gravia and glaucoma like some other inhibitors of AChE.
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