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1.
  • 1.1. In a continuing investigation of phycocyanin-membrane surface interaction, fluorescence quenching experiments were performed with a mixture of two populations of fluorescence probe-encapsulated phospholipid bilayer vesicles in the presence and absence of phycocyanin.
  • 2.2. These membrane vesicles were prepared with 1,2-dimyristoyl phosphatidylcholine (DMPC), cholesterol and a probe molecule.
  • 3.3. A fluorophore was encapsulated in one population of membrane vesicles, while a quencher was encapsulated in another population of membrane vesicles.
  • 4.4. The result was compared with those of experiments in the presence of other biomolecules, including albumin, cytochrome c, hemoglobin, myoglobin or RNA.
  • 5.5. Interestingly, a one-third reduction of the fluorescence intensity was observed in the mixture of these two populations of membrane vesicles in phycocyanin's presence.
  • 6.6. In contrast, the other biomolecules caused no significant reduction in the fluorescence intensity.
  • 7.7. These findings were evidence of a phycocyanin-induced membrane perturbation.
  • 8.8. This was further demonstrated by a phycocyanin-induced change in the thermotropic behavior of DMPC vesicles, as measured by differential scanning microcalorimetry.
  • 9.9. Such a unique property of phycocyanin is believed to be associated with its known membrane surface-interacting character.
  • 10.10. A possible phycocyanin-modulated membrane-membrane interaction was discussed.
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2.
3.
  • 1.1. Seven natural populations of Dacus dorsalis were analyzed for a dimeric esterase by means of horizontal starch-gel electrophoresis.
  • 2.2. The electrophoretic phenotypes were governed by nine codominant Est-D alleles.
  • 3.3. The commonest allele in all seven population samples was Est-D100 which encoded an electrophoretic band with intermediate mobility.
  • 4.4. The distribution of EST-D phenotypes were in accordance with Hardy-Weinberg expectations.
  • 5.5. There was no geographic variation in the distribution of Est-D alleles.
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4.
  • 1.1. Preparative Isoelectric focusing (PIEF) was used to isolate hydroxylasic and dehydrogenasic activities, at different pI.
  • 2.2. The fraction at pI 4.7 and 4.9 displays a pure dehydrogenase activity (substrate l-DOPA).
  • 3.3. This fraction did not react with tyrosine, either in the spot-test or in absorption spectra (200–620 nm), and did not exhibit any oxygen consumption.
  • 4.4. The fraction at pI 4.1 and 4.3 reacted with both l-DOPA and tyrosine as substrate, showing dehydrogenase and hydroxylase activity.
  • 5.5. The latter activity was confirmed by the oxygen consumption test, showing that molecular oxygen is used to ortho-hydroxylate tyrosine.
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5.
  • 1.1. Ninety-one pairwise comparisons of 14 populations yielded highly significant T2 values for inter-breed differences while four subpopulations of Thoroughbred horses were nearly identical.
  • 2.2. Generalized Mahalanobis distance was carried out by comparing simultaneously all 14 populations with respect to 26 variables (phenotypes) contributing most to the discriminant function.
  • 3.3. The number of variables could be reduced to 12 phenotypes in final comparisons.
  • 4.4. In general the calculated distances agreed with known relationships between horse breeds.
  • 5.5. However the obtained distances are thought to be biased due to the nature of selected phenotypes which do not always correspond to “breed-markers”.
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6.
  • 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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7.
  • 1.1. Common carp (Cyprinus carpio) exposed to experimental temperatures of 12, 18, 24, 30 or 36°C for a 4-week period were used to investigate the effect of temperature acclimation on the frequency of opercular movement (FOM), growth and cytochrome c oxidase (CCO) activity in heart, liver and muscle.
  • 2.2. An exponential relationship between FOM and temperature after the first week (1010 =1.76) disappeared after the second week.
  • 3.3. The initially high FOM at temperatures of 30 or 36°C and the low FOM at 18 or 12°C changed over 4 weeks to approach the FOM of fish at 24°C.
  • 4.4. This change in the relationship of FOM to temperature from highly dependent to independent appeared to be thermal compensation.
  • 5.5. Heart and liver CCO activities were significantly affected by temperature, with the lowest activity at the approximate optimum temperature for growth, 24°C.
  • 6.6. Highest CCO activities for heart and liver occurred at both the highest and lowest temperatures.
  • 7.7. Among the three tissues, heart CCO activity was generally the highest and most affected by acclimation temperature.
  • 8.8. Muscle tissue had the lowest CCO activity and was unaffected by temperature.
  • 9.9. The high CCO activity at a cold acclimation of temperature 12°C was probably due to thermal compensation and the high activity at 36°C may have been a result of thermal stress.
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8.
  • 1.1. An esterase which hydrolyzes 4-nitrophenyl(phenyl)phosphonic acid (4-NPPP) was purified from M. senile (sea anemone).
  • 2.2. The enzyme showed no 5′-nucleotide phosphodiesterase activity with 5′-(4-nitrophenyl) TMP or phosphomonoesterase activity with 4-nitrophenylphosphate.
  • 3.3. Addition of excess Zn2+ restored activity after inactivation by EDTA.
  • 4.4. Thiol reagents and phenylmenthanesulfonylfluoride did not inactivate, whereas, dithiothreitol inactivated.
  • 5.5. Aminoethylphosphonic acid (AEP) was a competitive inhibitor of 4-NPPP indicating possible activity with phosphonomonoesters of AEP.
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9.
  • 1.1.|Intraspecific variation in the thermal physiology of Rana sylvatica was examined.
  • 2.2.|Heat and cold tolerances of both adult and larval representatives were determined for animals representing populations from New York, Maryland, Kentucky, Ohio, Michigan and Canada.
  • 3.3.|In general, frogs from more northern localities exhibited lower heat tolerances.
  • 4.4.|There was no evidence of interpopulational differences in cold tolerance. Similar trends were revealed by larval testing.
  • 5.5.|Interpopulational differences among laboratory-reared tadpoles suggests a strong genetic component to Rana sylvatica thermal physiology.
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10.
  • 1.1. We used protein gel-electrophoresis to investigate genetic heterogeneity at 33 protein coding loci in a total of 46 blue wildebeest (C. taurinus) kept under different management regimes.
  • 2.2. Average heterozygosity ranged from 2.14 to 4.3% and within-population differences accounted for 97.2% of total relative gene diversity.
  • 3.3. Comparatively little divergence was found between animals sampled from populations with very diverse population sizes and management histories, with the largest genetic distance estimated between any two populations being only 0.0021.
  • 4.4. We discuss our results with particular emphasis on the influence of management history on genetic diversity and divergence in C. taurinus.
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11.
  • 1.1. The P50 values of extracellular hemoglobin (Hb) of five Artemia populations from different geographical origin are affected by temperature.
  • 2.2. The free oxygen binding energy is high for all the populations (ΔH between −34.7 and −56.2kj/mol).
  • 3.3. A possible correlation between thermal sensitivity of Hb and the ambient temperature of the habitat must be considered very carefully.
  • 4.4. The occurence of different quantities of Hb1 (αα chains) Hb2 (αβ chains) and Hb3 (ββ chains) in the different populations possibly influences thermal sensitivity.
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12.
  • 1.1. Hide protease activity was detected in 6 species of stored product mites; Acarus siro Linnaeus, Glycyphagus destructor (Schrank), Glycyphagus domesticus (De Geer), Rhizoglyphus callae (Oudemans), Rhizoglyphus robini Claparede and Tyrophagus longior (Gervais).
  • 2.2. Significant differences in specific activity were found between, but not within, species.
  • 3.3. A. siro L. and Glycyphagus spp. show relatively high activity, Rhizoglyphus spp. and T. longior (Gervais) relatively low activity.
  • 4.4. Possible explanations for these results are discussed.
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13.
  • 1.1. Fundamental chitin digestion characteristics of Crassostrea virginica crystalline style were investigated.
  • 2.2. Optimum temperature and pH were 34°C and 4.8. respectively.
  • 3.3. The colloidal regenerated chitin (0.56mol/0.5 ml: GlcNAc equivalents) was saturating under all enzyme levels encountered.
  • 4.4. There was no evidence of end product inhibition, even after 100 hr incubation.
  • 5.5. Calculated Km for the chitinase complex was 1.19mM when determined using a 30 min assay, but was only 0.70 mM when determined using a 4.6 hr assay.
  • 6.6. Both Km values are lower than reported for similar assays in other molluscs and for most bacteria.
  • 7.7. Effect of substrate preparation on the kinetics are discussed.
  • 8.8. Eight peaks of chitinase activity were resolved by DEAE-Fractogel ion exchange chromatography.
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14.
  • 1.1. Crude extract of the whole digestive tract from the brown shrimp (P. californiensis) was investigated for digestive amylase activity.
  • 2.2. Considerable amylase activity was found at pH 6.5–8.0, with optimum pH at around 7.5.
  • 3.3. Optimum temperature was found between 30–40°C, similar to amylases from other crustaceans.
  • 4.4. Amylase activity was highly halotolerant, having 50% maximum activity at 3 M NaCl.
  • 5.5. Maximum amylase activity was found at 0.01 M NaCl.
  • 6.6. Amylase activity was partially inhibited by the divalent ions Hg2+, Zn2+, Cu2+ and Cr2+.
  • 7.7. Mg2+ and Ca2+ ions seemed to enhance amylase activity.
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15.
  • 1.1. The activity of l-gulonolactone oxidase (EC 1.1.3.8) in livers of 49 species of eutherian mammals varied intraspecifically among individuals; coefficients of variation were 0.2 to 0.4 in many species.
  • 2.2. Differences observed in l-gulonolactone oxidase activity among strains of laboratory rats and domestic rabbits are probably genetically controlled.
  • 3.3. Pronounced sex differences in l-gulonolactone oxidase activity were found in some species, particularly in the genera Peromyscus, Reithrodontomys and Onychomys.
  • 4.4. Mormota monax exhibited seasonal variation in l-gulonolactone oxidase somewhat like that previously observed in Sylvilagus floridanus; no such seasonal variation was found in Sciurus carolinensis.
  • 5.5. Hibernation did not affect l-gulonolactone oxidase activity in Spermophilus tridecemlineatus.
  • 6.6. In four species of rodents, Microtus ochrogaster, Tylomys panamensis, Octodon degus and Sigmodon hispidus, l-gulonolactone oxidase activity was not affected by the level of dietary ascorbate.
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16.
  • 1.1. Haemoglobin was labelled in vivo in normal mice and in mice with iron deficiency anaemia due to the X-linked gene mutation, sla.
  • 2.2. Two main red cell populations are found in normal mice, one subject to accelerated destruction and the second with a longer finite life span.
  • 3.3. In iron deficient sla / Y mice, haem and globin labelling indicate random haemolysis and shortened red cell survival.
  • 4.4. Specific activity curves of faecal urobilinogen show complex “early” labelling patterns. They confirm mean red cell survival in both normal and anaemic mice. and indicate increased ineffective erythropoiesis in the sla/Y animals with iron deficiency.
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17.
  • 1.1. Pupae of Galleria mellonella and Pieris brassicae given an injection with live, non-pathogenic Enterobacter cloacae or abiotic foreign molecules induce an acquired immunity that corresponds with the synthesis of haemolymph proteins of antibacterial activity.
  • 2.2. This humoral defensive response which persists for several days, differs quantitatively between insect species and between the inducers used, although very different foreign bodies induced the same immune proteins in both lepidopteran insects.
  • 3.3. A stronger and longer lasting response was consistently noticed in pupae immunized with non-pathogenic bacterium than after sterile nutrient broth injections.
  • 4.4. A demonstrably elevated activity of haemolymph lysozyme and trace activity of cecropins found in pupae of Galleria treated with saline W, a salt solution physiological to moths, disappear soon after 36 hr from injection.
  • 5.5. In P. brassicae, however, sterile insect Ringer can give a varying, if present at all, immune response.
  • 6.6. A mechanical injury (sterile wounding of insect body) can occasionally induce a similar but much weaker response.
  • 7.7. The antibacterial activity was drastically reduced in Pieris or completely depressed in most pupae of Galleria when actinomycin D or cycloheximide was given at an early time post-immunization with E. cloacae.
  • 8.8. It is concluded that the de novo synthesis of ribonucleic acid and immune proteins is required for expression of antibacterial activity in pupal haemolymphs.
  • 9.9. The synthesis of an immune mRNA was completed about 7 hr after the injection of the immunizing bacteria.
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18.
  • 1.1. An elastase-like enzyme was purified from the pyloric caeca of rainbow trout by hydrophobic interaction, cation exchange and gel-filtration chromatography.
  • 2.2. The approximate molecular weight of the elastase was 27 kDa and the isoelectric point was remarkably basic.
  • 3.3. The pH optimum of this enzyme was 8.0, when assayed with Succinyl-Ala-Ala-Ala-p-Nitroanilide.
  • 4.4. When assayed with Succinyl-Ala-Ala-Ala-p-Nitroanilide, the enzyme activity had a temperature optimum of 45°C, and the enzyme was stable up to this temperature.
  • 5.5. The trout elastase exhibited a higher specific activity than porcine elastase against Succinyl-Ala-Ala-Ala-p-Nitroanilide and elastin-orcein.
  • 6.6. The trout elastase was inhibited by elastatinal, PMSF, TPCK, SBTI and Bowman-Birk inhibitor.
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19.
  • 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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20.
  • 1.1. The specific activity of Na-K ATPase was determined from the microsomal preparation of gills dissected from adult Macrobrachium rosenbergii.
  • 2.2. Maximal ATPase activity was achieved at a substrate concentration of 0.5 mM ATP.
  • 3.3. Optimal enzyme activity was obtained at pH of 7.5.
  • 4.4. The Arrhenius plot of Na-K ATPase activity revealed a marked discontinuity at 30°C. “Mg” ATPase activity did not exhibit a marked discontinuity.
  • 5.5. The Ea for Na-K ATPase and “Mg” ATPase was 14.6 kCal/mole and 9.31 kCal/mole respectively. Q10 values for Na-K ATPase was 2.34 and for “Mg” ATPase 1.65.
  • 6.6. ATPase activity and gill homogenate protein concentration exhibited a linear relationship up to 130 μg protein/ml.
  • 7.7. Na-K ATPase activity was inhibited by 10−3 M ouabain. It was equally inhibited by the removal of K+ from the reaction medium.
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