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1.
  • 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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2.
  • 1.1. Phospholipase A activity was found in the culture broth of growing cultures of Streptococcus mutans strain 6715.
  • 2.2. The amount of enzyme activity was proportional to the cell density of the cultures.
  • 3.3. The enzyme had a pH optimum of 7.0 and was inactivated at temperatures greater than 45°C.
  • 4.4. The enzyme was Ca2+-dependent, since both EDTA and EGTA were inhibitory and Ca2+ was stimulatory.
  • 5.5. Analysis of the fatty acid products resulting from the enzyme's action on 1-palmitoyl-2-oleoyl phosphatidylcholine indicated the enzyme to be a phospholipase A1, (EC 3.1.1.32).
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3.
  • 1.1. The activation energy of the membrane bound H+-pyrophosphatase is 44.9 k J·mol−1, for the detergent solubilized enzyme is 55.9 kJ·mol−1.
  • 2.2. The Arrhenius plots obtained for pyrophosphatases of Rhodospirillum rubrum show no breaks.
  • 3.3. At 70°C, the membrane-bound pyrophosphatase is more stable in the presence of either Mg2+ or Zn2+ than in their absence.
  • 4.4. At 65°C, an activator effect of Mg2+ or Zn2+ was observed. Nevertheless, at 70°C no activation was obtained.
  • 5.5. The activator effects of Mg2+ or Zn2+ were depended of their concentration.
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4.
  • 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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5.
  • 1.1. Subcellular distribution of (NA+, K+-ATPase and ouabain-insensitive ATPase (Mg2+-ATPase) are compared in branchial tissues of the euryhaline crab, Eriocheir sinensis, acclimated to fresh water.
  • 2.2. Both the anterior and posterior gills contain cAMP-dependent protein kinase and endogenous protein substrate for phosphorylation.
  • 3.3. Phosphorylation occurs in both “particulate” and “soluble” subcellular fractions but its stimulation by cAMP is restricted to the “soluble” fraction.
  • 4.4. serotonin (5-HT) and dopamine receptors are present only in the “light particulate” fraction isolated from the posterior gills.
  • 1.(a) Serotonin and dopamine have no effect on the phosphorylation observed in a subcellular fraction alone.
  • 2.(b) Activation of the phosphorylation by serotonin and dopamine is found when the soluble fraction (source of cAMP-dependent protein kinase) is added to the fraction P3 from the posterior gills.
  • 3.(c) No activation occurs with the fractions P3 as well as P1 or P2 (not shown) from anterior gills of fresh water crab.
  • 4.(d) Cyproheptadine, a serotonin receptor antagonist, inhibits the 5-HT dependent increase in phosphorylation.
  • 5.(e) The dopamine receptor antagonist, chlorpromazine, inhibits dopamine-stimulated phosphorylation.
  • 6.5. Ouabain mimics the effect of cyproheptadine on the serotonin-stimulated phosphorylation found in the posterior gills.
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6.
  • 1.1. The ambient temperature of embryos of pipped eggs was reduced from 38 to 28°C for a period of 45 min.
  • 2.2. The blood PCO2 was lower and the blood more alkaline at 28°C than at 38°C.
  • 3.3. At 28°C plasma [HCO3] ] was lower than predicted from the blood buffer line determined in vitro.
  • 4.4. The plasma concentrations of strong ions and lactate were the same at both temperatures.
  • 5.5. After the ambient temperature had been returned to 38°C for a period of 45 min, blood pH was more acidic than before cooling, but there was no difference in blood PCO2.
  • 6.6. The plasma [HCO3] was the same as that at 28°C and plasma [K+] was higher than before cooling.
  • 7.7. The results arc discussed in relation to the factors affecting blood pH in embryos at this stage of development.
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7.
  • 1.1. A thermostable orthophosphoric monoester phosphohydrolase (EC 3.1.3.1) from Thermus sp strain Rt41A has been purified 400-fold to give a specific activity of 25 U/mg at 60°C in IM diethanolamine (pH 11.1).
  • 2.2. The enzyme has a Mr of 160,000 and is trimeric.
  • 3.3. The half-life of the enzyme is 5 min at 85°C.
  • 4.4. The enzyme has a wide specificity for a number of phosphate monoesters.
  • 5.5. The Hm of the enzyme is pH dependent, so the pH optimum of the enzyme is affected by the substrate concentration.
  • 6.6. The enzyme is inhibited 50% by 20 mM Ca2+ or Mg2+.
  • 7.7. The Ki for phosphate, EDTA-di sodium salt and arsenate (in 1 M diethanolamine, pH 11.1) is approx 1.2, 1.6 and 4mM respectively.
  • 8.8. Urea (200 mM) is not inhibitory.
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8.
  • 1.1. Alkaline phosphatase (EC 3.1.3.1) from the dinoflagellate Peridinium cinctum, the Lake Kinneret bloom alga, has been partially purified by gel filtration.
  • 2.2. The enzyme could be easily extracted using a distilled water/chloroform mixture suggesting that the alkaline phosphatase of Peridinium is particularly labile.
  • 3.3. The molecular weight of the enzyme was estimated as 158,000 ± 5000. The enzyme showed a broad pH optimum (in the range pH 8.0–8.5), had a Km of 0.45 mM for p-nitrophenylphosphate as substrate and was stable to repeated freeze/thawing cycles.
  • 4.4. The enzyme was strongly activated by Mg2+ whereas Zn2+ (and to a lesser extent Cd2+) was an effective inhibitor of the enzyme. Cu2+ activated the enzyme at low concentrations, although at higher concentrations inhibited the enzyme. This effect of metals on the Peridinium alkaline phosphatase could be environmentally important since underwater hot springs, containing high concentrations of copper, enter the lake.
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9.
  • 1.1. Ion dependence and vanadium-induced inhibition on branchial sac ATPase in five species of ascidian Phlebobranchiata (vanadium-accumulating) and Stolidobranchiata (iron-accumulating) were studied.
  • 2.2. The ATPase was obtained from the microsomal fraction, which was prepared from each ascidian branchial sac.
  • 3.3. The ATPase was dependent on Mg2+ and activated by exogenous Na+ + K+.
  • 4.4. Ouabain inhibited the ATPase activity in vitro, 10 μM to 100 μM vanadate, in vitro, suppressed the (Na+, K+)-ATPase.
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10.
  • 1.1. An alkaline p-nitrophenylphosphate phosphatase has been purified 440-fold from extracts of Hatobacterium halobium.
  • 2.2. The enzyme has an apparent molecular weight of 24,000.
  • 3.3. A Km value for p-nitrophenylphosphate of 1.12mM has been found under optimal conditions.
  • 4.4. The enzyme is selectively activated and stabilized by Mn2+.
  • 5.5. It requires high salt concentrations for stability and maximum activity.
  • 6.6. It displays an unusual restricted substrate specificity of 25 phosphate esters tested, only phosphotyrosine and casein were hydrolysed besides p-nitrophenylphosphate.
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11.
  • 1.1. Alkaline p-nitrophenylphosphate phosphatase of Halobacterium halobiium, either purified or in crude extracts, was progressively inactivated by treatment with several metal chelators.
  • 2.2. The activity of treated crude extracts was fully restored in the presence of 25–50 μM Mn2+ or 1 mM Co2+, and partially restored in the presence of 1 mM Cd2+.
  • 3.3. Zn2+ ions, as well as other divalent cations tested, were without effect.
  • 4.4. In the presence of a saturating concentration of Mn2+, but not Co2+ or Cd2+, the activity of the metal-depleted enzyme reached values well over the native control activity.
  • 5.5. Activation of the metal-depleted enzyme by Mn2+ showed cooperative kinetics, whereas activation by Co2+ showed Lineweaver-Burk kinetics.
  • 6.6. The results suggest that the enzyme contains two different types of metal-binding sites: essential site(s), occupied by endogenous Mn2+ ions, and regulatory site(s), that can be occupied by exogenous Mn2+ with an activating effect.
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12.
  • 1.1. Some aspects of the gas exchange system of a diving lizard, Physignathus lesuewii were studied.
  • 2.2. Breathing patterns were analysed.
  • 3.3. Breathing rate increases logarithmically with temperature and Q10 = 1.8. LogBR = −0.237 + 0.0256 T.
  • 4.4. Gas tensions in lung air and arterial and venous blood were measured. Arterial pH declines with increasing temperature.
  • 5.5. Temperature has a marked effect on oxygen affinity of the blood (ΔH = −10.1 kcal mol). A Bohr effect was also noted.
  • 6.6. CO2 equilibrium curves were drawn.
  • 7.7. The results are considered with a view to anticipating the efficiency of the gas exchange system of this species under conditions of variable temperature and during diving.
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13.
  • 1.1. The potassium contracture in the anterior byssus retractor muscle of Mytilus edulis relaxed spontaneously, and the relaxation was accelerated by 5-HT (10−6 M), but the contractile activation and inactivation was not affected significantly.
  • 2.2. By reducing [Ca]0, the “activation curve” was shifted downward at higher [K]0, and the “inactivation curve” was shifted toward lower [K]0 and the rate of inactivation was increased.
  • 3.3. The steady-state inactivation was maintained for at least 2 hr without complete inactivation.
  • 4.4. The half-inactivation time was dependent on [K]0, while the half-relaxation time in the contracture induced by conditioning K solutions was not.
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14.
  • (1)The preferred temperatures of Macrobrachium acanthurus were determined for prawns acclimated to 20°C, 23°C, 26°C, 29°C and 32°C, and the final preferendum estimate was (29.5°C).
  • (2)The critical thermal minima (CTMin) and maxima (CTMax) were 11.0°C, 12.1°C, 13.0°C and 14.8°C, and 34.2°C, 35.0°C, 36.1°C and 39.8°C, respectively.
  • (3)The zone of thermal tolerance assessed using the CTMin and CTMax boundaries was 644°C2.
  • (4)The acclimation response ratio was between 0.33 and 0.62.
  • (5)To cultivate this species in the southeastern region of México it should be done in not <15°C (CTMin) during the winter and below 38°C in summer (CTMax).
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15.
  • 1.1. Differential thermal acclimatory responses of maximal catalytic rates (Vmax) of digestive enzymes have been measured in both sexes of Periplaneta americana adapted to 16 and 32°C.
  • 2.2. Salivary amylase of females and gastric protease of males exhibit “translational” acclimation, the former showing a “complete” but the latter only a “partial” compensation. The value of Q10 is not altered in the adaptive response.
  • 3.3. An alteration of the thermal coefficient is evidenced by the “translational-cum-rotational” compensation of gastric amylolytic activity, with significant warm acclimation but no cold acclimation in both sexes.
  • 4.4. Gastric protease of female cockroaches and gastric lipase of both sexes are characterized by the lack of an adaptive compensation to temperature, while salivary amylase of male appears to manifest an “inverse” acclimation.
  • 5.5. Sexual dimorphism in the levels of the activities and in the patterns of thermal acclimation of the digestive enzymes is indicated.
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16.
  • 1.1. The magnesium ion [Mg2+] plays an important role as a co-factor in enzyme systems and as a modulator of the haemocyanin of crustacean arthropods.
  • 2.2. Mg2+ is actively regulated in most decapod crustaceans via the antennal gland. The degree of regulation can be correlated to some extent with the “activity” of a particular species although there are “exceptions to the rule”.
  • 3.3. Intraspecific studies indicate that there is a clear relationship between haemolymph [Mg2+] and the level of activity in particular crustacean species.
  • 4.4. A plea is made for the investigation of temporal changes in the [Mg2+] of the haemolymph of a number of crustaceans and for more studies of Mg2+ homoeostasis in general.
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17.
  • 1.1. Quick sinusoidal temperature fluctuations (constant average 10°C) cause an increase in metabolism in comparison to an invariable constant ambient temperature of the same dimension.
  • 2.2. At the observed mean value of 10°C metabolism is increased by 0.8% per 1 K/hr based on the values of resting metabolic rate (correlation: M = 53.5 + 0.445 Ta, M in J/K g hr, Ta = ambient temperature change in K/hr) and 0.6% based on the values of activity metabolism (M = 70.4 + 0.425 Ta).
  • 3.3. The absolute augmentation of metabolism per 1 K/hr is, by comparison, the same for day and night. Its amount is 0.42 and 0.43 J/K g hr respectively.
  • 4.4. In the response of metabolism to temperature fluctuations no differences could be found with respect to the amplitude and frequency modifications of temperature.
  • 5.5. The increase of energy consumption is probably caused to a greater extent by “overshoot” of the feedback control system in the course of adjusting metabolism to new levels according to the ambient temperature conditions.
  • 6.6. Short term ambient temperature changes (i.e. measuring different temperature levels in one night to test basic metabolism vs ambient temperature) cannot produce reasonable values for basic metabolic rate, since these artificially high values reflect the testing procedure.
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18.
  • 1.1. Anoxia exposure resulted in a stable modification of the kinetic properties of 6-phosphofructo-1-kinase (PFK) from the anterior byssus retractor muscle (ABRM) of the sea mussel Mytilus edulis L.
  • 2.2. Compared to the aerobic enzyme, the anoxic form of PFK. showed a reduced affinity for both substrates, fructose-6-phosphate (F6P) and ATP, and an increased sensitivity to inhibition by phosphoenolpyruvate.
  • 3.3. To analyze the involvement of protein kinases in the modification of PFK, extracts from aerobic or anoxic muscle were incubated with ATP and Mg2+ plus protein kinase second messengers cyclic 3',5'-adenosine monophosphate (cAMP), cyclic 3',5'-guanosine monophosphate (cGMP) or Ca2+ plus phorbol 12-myristate 13-acetate (PMA).
  • 4.4. Both forms of the enzyme responded to the presence of cAMP with a strong increase in affinity for F6P.
  • 5.5. In response to cGMP affinity of the aerobic enzyme for F6P decreased whereas that of the anoxic enzyme form was not affected (at 0.5 mM ATP) or increased (at 3 mM ATP).
  • 6.6. Incubation with Ca2+ + PMA had only a limited effect on PFK kinetics but appeared to enhance the response to cGMP when the three compounds were given together.
  • 7.7. Treatment of PFK-aerobic with alkaline phosphatase resulted in a strong decrease in enzyme activity and affinity for F6P; subsequent treatment with cAMP reversed the effect on S0.5 F6P.
  • 8.8. The data indicate that PFK activity is altered during the aerobic-anaerobic transition by a change in the phosphorylation state of the enzyme and that cAMP and cGMP act oppositely to regulate PFK activity, and thereby alter glycolytic rate, during this transition.
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19.
  • 1.1. In the contents of the oesophagus and stomach, one form of acid phosphatase is found. Its electrophoretic mobility is identical to that of the multiple form 3 of acid phosphatase from the hepatopancreas.
  • 2.2. The enzyme is not stimulated by divalent cations. It is inhibited by molybdate, Cu2+, Hg2+. F and tartrate L+.
  • 3.3. The optimum pH of the enzyme is 4.5. The Km for paranitrophenylphosphate as substrate amounts to 0.25 mM. The enzyme is stable at a temperature of up to 55°C.
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20.
  • 1.1. Among all metals tested (Cu2+, Ni2+, Co2+, Mn2+, Zn2+) only Cu2+ and Ni2+ can exert an inhibitory effect on catalysis.
  • 2.2. The effect of divalent cations (copper and nickel) on alcohol dehydrogenase 1 (ADH1) from Kluyveromyces marxianus is a mixed type inhibition.
  • 3.3. The ionization constants of the oxidative and reductive reaction indicate that the interaction of metals with both enzyme-cofactor (ECI) and enzyme-cofactor-substrate (ECIS) produces a light effect base—strengthening on the acid ionizing groups but displays a stronger effect acid—strengthening (almost 2 pH U for the oxidative reaction and almost 0.5 pH U for the reductive reaction) on the basic ionizing groups of the enzyme-cofactor complex.
  • 4.4. The metals can also decrease the ampholytic nature of the catalytic site (from almost 2.5 U to almost 0.5 pH U for the oxidative reaction).
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