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Ca2+-controlled conformational states of the Ca2+ transport enzyme of sarcoplasmic reticulum.

The fluorescent reagent, S-mercuric N-dansyl-cysteine, reacts specifically with thiols of the purified Ca2+-ATPase of the sarcoplasmic reticulum, producing an increase of fluorescence of fluorescence intensity at 500 nm (lambda ex = 335 nm). The reaction is stoichiometric, and the increase of the fluorescence intensity is proportional to the number of blocked thiols. Twelve reactive thiols per 10(5) daltons of ATPase peptide fall into roughly three classes. Blocking of the most reactive thiol entails little inhibition of enzyme activity. Blocking of the five thiols reacting next (intermediate class) results in almost complete inhibition of both phosphorylated intermediate formation and ATP hydrolysis. The second order rate constants of the reaction of thiols have been determined by stopped flow studies. The most reactive thiol and the six least reactive thiols can each be treated as a single class with respect to the rate constant; five thiols of intermediate reactivity appear to have different rate constants (k2, k3, ..k6). Of these constants, k1, corresponding to the most reactive thiol, does not change with [Ca2+]. Upon increasing [Ca2+] from 10(-9) to 10(-5) M, k2 increase and k7-12 decreases; the changes roughly parallel the activation of ATPase activity and the Ca2+ binding to the high affinity alpha sites (Ikemoto, N. (1975) J. Biol. Chem. 250, 7219-7224). Upon further increase of [Ca2+] k2 decreases and k7-12 increase, in parallel with the inhibition of ATPase activity and with the Ca2+ binding to the low affinity gamma sites.

Animals↗

[Low temperature effects on sarcoplasmic reticulum membrane permeability for Ca2+].

The effect of rapid freezing down to--196 degree C was studied as applied to the functional activity of sarcoplasmic reticulum (SR) membranes Ca2+-pump. It is found that the SR Ca-transport system is damaged under the effect of low temperatures: the transport activity of Ca ions across the reticulum membrane is reduced simultaneously with a slight increase in the ATPase activity. The rate of Ca ions accumulation by SR vesicles decreases and the magnitude of Ca: ATP ratio is reduced. The damage of the SR membrane Ca-transport system after freezing is related to an increase in the rate of the accumulated Ca2+ rapid leak from the vesicles through the system of active transport at the moment of ATPase "work" and to an increase in the rate of passive diffusion.

Animals↗

[Effect of substances inhibiting the ion transport on Mg2+, Ca2+-ATPase activity of synaptic plasma membranes].

The Mg2+, Ca2+-ATPase activity of plasma membranes in bull brain synaptosomas was studied as affected by ruthenium red, hexamine cobalt, aminazine, verapamyl, melipramin, lanthanum acetate and oligomycin. Lanthanum acetate in a concentration of 5.10(-5)M is shown to inhibit completely the enzyme activity. Ruthenium red and hexamine cobalt in a concentration of 10(-4) inhibit this ATPase activity by 50-60%. Melipramin, aminazine, verapamyl in concentrations of 10(-6)-10(-4)M and oligomycin in a concentration of 0.01-5 microgram/ml have no effect on the enzyme activity.

Animals↗

Odontoblast alkaline phosphatases and Ca2+ transport.

The same isoenzyme of nonspecific alkaline phosphatase (APase), assayed with p-nitrophenylphosphate (p-NPP), was shown be present in different calcifying tissues, bone, calcifying cartilage, odontoblasts and enamel organ. Indications were also found that the enzymatic degradation of inorganic pyrophosphate (PPi) in calcifying tissues is mediated by APase. By using specific APase inhibitors, it was shown that two enzymes capable of degrading ATP exist. These were characterized in dentinogenically active odontoblasts, and it was concluded that one is the classical APase, the other is a Ca2+ and Mg2+ activated ATPase, named Ca2+-ATPase. The two phosphatases were solubilized from odontoblasts and separated. The localization of APase and Ca2+-ATPase in odontoblasts was investigated by subcellular fractionation and EM histochemistry. Routine methods for fixation were found to almost completely inactivate the enzymes. By using a mild fixation technique that preserved 80% of the enzyme activity, the main localization for both APase and Ca2+-ATPase was found to be in the membranes of intercellular vesicles located in the cell body and odontoblasts process. No activity was found in the cell membranes. It is concluded that there are at least two enzymes able to degrade phosphate compounds at alkaline pH in hard tissue forming cells. One is the nonspecific alkaline phosphatase (APase; EC 3. 1. 3. 1), which is active against p-NPP, PPi, glycerophosphates and ATP among other substrates. The other is a more specific Ca2+-ATPase (EC 3. 6. 1. 3). There seems to be an intimate relation between these two enzymes in the tissue. The function of APase in biological calcification is still obscure. In contrast, the finding of an ATP dependent, intravesicularly directed, transmembranous Ca2+-transport in vesicles derived from the microsomal fraction of odontoblasts may explain the role of Ca2+-ATPase.

Alkaline Phosphatase↗

[Disruption of the Ca++ transport enzyme system in sarcoplasmic reticulum membranes upon exposure to phospholipid hydroperoxides and fatty acid hydroperoxides].

It was shown that when injected into a suspension of sarcoplasmic reticulum (SR) vesicles phosphatidyl ethanol-amine hydroperoxide (HP) slightly activated Ca++-dependent ATPase and increased the permeability of SR membranes for Ca++ during the enzyme function. Linoleic acid HP had no effect on the parameters of the enzymatic Ca++- transporting system (activity of Ca++-dependent ATPase, Ca/ATP ratio, rate of Ca++ efflux) in the SR membranes due to its insufficient incorporation into the SR fragments. It is concluded that among the primary molecular products of lipid peroxidation (free fatty acid HP, phospholipid HP) induced both in vitro (by the Fe++ + ascorbate system) and in vivo (ischemia, E-avitaminosis), only the phospholipid HPs were modifiers of Ca++ transport in the SR membranes.

Animals↗

[Effect of beryllium salts on the activity of sarcoplasmic reticulum Ca2+,Mg2+-dependent ATP-ase].

In the presence of Mg2+ and Ca2+ ions beryllium compounds inhibit the Ca2+, Mg2+-dependent ATPase activity and the transport of Ca2+ in the sarcoplasmatic reticulum vesicles. The inhibition is reversible and concurrent with respect to the Mg2+ ions. In the absence of the Mg2+ ions an addition of beryllium compounds stimulates the ATPase activity, the dependence of the degree of its stimulation on the beryllium compounds concentration is characterized by a curve with a maximum. On the membranous Ca2+, Mg2+-dependent ATPase preparations beryllium compounds produce a stronger inhibiting effect than in the case of the purified enzyme, which is, apparently, due to their ability to influence the membranous structure. The hydrophobic spin probe method shows that beryllium compounds reduce the microviscosity of the lipid sections of the membrane.

Animals↗

Optical probe responses on sarcoplasmic reticulum. Oxacarbocyanines.

Absorbance and fluorescence changes of oxacarbocyanine dyes during ATP-induced Ca2+ transport in rabbit sarcoplasmic reticulum were analyzed. The response of the probes is complex and contains contributions from the binding of Ca2+ and ATP to the membrane. In a medium of 0.12 M KCl and 5 mM MgCl2, the fluorescence of Di-O-C5(3) is decreased by Ca2+ or ATP with apparent dissociation constants of 0.2 and 5 micron, respectively. This suggests that oxacarbocyanines respond to binding of Ca2+ and ATP at the active site of Ca2+ transport ATPase. The effect of ATP is observed in the absence of divalent cations. Further changes in the fluorescence or absorbance of cyanine dyes occur at millimolar concentrations of Ca2+ or during ATP-induced Ca2+ uptake, which can be related to Ca2+ binding to low affinity, relatively nonspecific binding sites on the membrane, that can also bind K+ and Mg2+. The optical changes due to Ca2+ accumulation are most pronounced in media of 0.25 M sucrose and much reduced in 0.12 M KCl and 5 mM MgCl2, in accord with competition by K+ and Mg2+ for the low affinity Ca2+ binding sites. These effects must be taken into account in the evaluation of the magnitude and direction of membrane potential in sarcoplasmic reticulum vesicles during Ca2+ uptake and release.

Adenosine Triphosphate↗

[Effect of thyroid hormones on the calcium pump in sarcoplasmic reticulum].

In vitro thyroxine inhibited accumulation of Ca2+ by fragments of sarcoplasmic reticulum, isolated from rabbit sceletal muscles. The inhibitory effect of thyroxine was responsible for its direct action on Ca2+ dependent ATPase. Half-maximal inhibition of the enzymatic activity occurred at the same concentrations of thyroxine using both membrane-bound and highly purified solubilized forms of Ca2+-ATPase (15--20 micrometer and 10 micrometer of the hormone, respectively). Triiodothyronine was similar in the effect but not diiodothyrosine, which did not possess the hormonal activity. The data obtained suggest that thyroid hormones affect the mechanism of dephosphorylation in ATP-hydrolase reaction.

Animals↗

[Investigation of sarcoplasmic reticulum SH-groups].

The amount and the reaction capacity of the thiol groups in the sarcoplasmic reticulum containing up to 86% of Ca-ATPase were determined using 7-chloro-4-nitrobenzo-2-hydroxo-1,3-diazole (NBD-chloride). The total amount of SH-groups interacting with NBD-chloride is about 9 moles/10(5) g of protein as determined in the excess of NBD-chloride (750 micrometers). With respect to their sensitivity to NBD-chloride the SH-groups may be divided into two classes: slow and fast ones (5,3 and 3,5 moles/10(5) g of protein, respectively). The modification constants for the fast and slow SH-groups are 0,16 and 0,015min-1. ATP (30 micrometers) decreases the number of fast groups by 1 mole/10(5) g of protein. At higher concentrations of ATP (1--3 mM) the amount of fast SH-groups is decreased by 3 moles/10(5) g of protein, their modification rate constant being decreased 2-fold. ATP at concentration of 1 mM, decreases the rate constant for the Ca-ATPase inactivation by NBD-chloride from 0.68 down to 0,073 min-1, which coincides with the modification rate constant for fast SH-groups (0,071 min-1) under the same conditions. Ca2+ at concentration of 10(-4) M increases the amount of fast thiol groups by 1 mole/10(5) g of protein, the rate constant of their modification by NBD-chloride being increased 2-fold. A half-maximal effect was observed in the presence of 5.10(-7) M Ca2+ . Mg2+ did not affect the total amount of fast thiol groups; however, it decreased their modification rate constant.

4-Chloro-7-nitrobenzofurazan↗

[Biochemical mechanisms for the effect of alcohol on the brain].

This paper reviews and discusses basic knowledge of biochemical mechanisms of action of ethanol upon the central nervous system, the emphasis being on effects upon cerebral membrane structures and processes as well as mechanisms of chemical synaptic transmission. Results of detailed studies into material and steric changes in membranes, ion-dependent adenosine triphosphatases, variations in ion balance, effects upon cyclic nucleotides, influences on special transmitter systems, and mechanisms of formation of morphine-analogous condensation products are presented. In addition, open questions are derived and formulated in problem complexes.

Acetaldehyde↗

[Studies of the presence of enzymes in various tissues of swine. 5. Studies of the activity and properties of adenosine triphosphatases in the pancreas].

Studies were conducted into the activities of magnesium-ATPase, sodium-potassium-ATPase, and HCO3-ATPase in homogenates of pancreas of 19 foetuses, with body weights between 340 g and 1,642 g, two piglets, with body weights of 9 kg and 10 kg, and four adult pigs. While general enzyme activity was low during foetal development, highest activies usually were recordable from HCO3-ATPase. High activities were recorded from both the piglets and adult pigs. The highest data, again, were recordable from HCO3-ATPase which is essential to the secretion of HCO3 ions. Maximum activity of magnesium-ATPase was based on an ATP-magnesium ratio of 1:1. HCO3-ATPase was best activated by 25 mM NaHCO3 and exhibited high stability to temperature. The activities of magnesium-ATPase and of HCO3-ATPase were inhibited by 10 mM of Rhodanid. Calcium-ATPase reached its maximum activity in response to 5 mM calcium concentration.

Adenosine Triphosphatases↗

[Role of calcium in realization of nervous control during RNA synthesis in skeletal muscles].

The effects of Ca2+ on the RNA polymerase activity of the nuclei isolated from normal and denervated gastrocnemius muscles of the rabbit were studied. It was shown that 18 hrs after denervation the RNA synthesis in vitro, Ca2+ content and the Ca, Mg-ATPase activity of the nuclei are decreased. After addition of exogenous Ca2+ the incorporation of labelled UTP into the nuclei is stimulated in the denervated muscle and is inhibited in the control. Electrostimulation of the denervated muscle at the peripheral part of the sciatic nerve for 3 hrs increases both the RNA synthesis in the nuclei and the Ca2+ content, as well as the Ca, Mg-ATPase activity. Exogenous Ca2+ has an inhibitory effect on the nuclei of the stimulated muscle. The correlation established is indicative of participation of Ca2+ in the transmission of excitation in skeletal muscle sarcolemma to the processes occurring in nuclear structures.

Animals↗