Search PubMedSearch

Biomedical subjects

I M Glynn

Publications and source records attributed to I M Glynn.

At least 19 recordsLinked to original sources

Evidence for the ordered release of rubidium ions occluded within individual protomers of dog kidney Na+,K+-ATPase.

1. When magnesium and orthophosphate are added to Na+,K+-ATPase containing occluded rubidium ions, and suspended in a medium containing free rubidium ions, only 50% of the occluded rubidium is released rapidly. This is because the release of occluded rubidium is ordered, and the replacement (by rubidium ions from the medium) of the first occluded rubidium ions to leave slows the departure of the remaining occluded ions. 2. Since the Na+,K+-ATPase probably exists in the membrane as a structural dimer, the ordered release might represent either the ordered emptying of the two halves of the dimer, or the ordered release of the two rubidium ions thought to be contained in each promoter. 3. The present experiments were designed to decide between these possibilities by examining the behaviour of Na+,K+-ATPase in which about half of the protomers had been randomly inactivated by pre-treatment either with fluorescein isothiocyanate or with alpha-chymotrypsin. 4. The results show that the release of rubidium ions from each protomer is ordered.

Animals

Comparison of rates of cation release and of conformational change in dog kidney Na, K-ATPase.

1. It is now widely believed that the main rate-limiting step in the sodium-potassium pump (Na, K-ATPase) cycle is a conformational change between two forms of the dephosphoenzyme (E2 and E1) and that this change releases to the cell interior potassium ions occluded within the E2 form. 2. If this hypothesis is correct, and if occluded ions cannot be released directly from dephosphoenzyme in the E2 conformation, we should expect that, under any given conditions, the rate of release of the occluded ions would be identical with the rate of the conformational change. 3. Using the potassium congeners 86Rb, 137Cs and 204Tl, the rates of release of the occluded ions can be measured by a rapid ion-exchange technique. Using the fluorescence probes fluorescein isothiocyanate (FITC), eosin or 5-iodoacetamido-fluorescein (5-IAF), the rates of the conformational change can be measured by stopped-flow fluorimetry. 4. A comparison of the two rates in the absence of ATP showed that the rate of release of the occluded ions was usually somewhat faster than the rate of the fluorescence change. The discrepancy was probably caused by a very slow direct release of occluded ions from enzyme in the E2 form, but we cannot exclude the possibility that it is the result of systematic errors. In the presence of 5 microM-ATP, both rates were increased and there was no significant difference between them. 5. The results are compatible with the hypothesis that the same conformational change alters the fluorescence of the fluorescent probes and releases the occluded potassium congener ions.

Animals

Evidence for the ordered release of rubidium ions occluded within the Na,K-ATPase of mammalian kidney.

When Na,K-ATPase containing occluded rubidium ions is exposed to orthophosphate, in the presence of magnesium ions, there is a rapid release of half or all of the occluded ions. This behaviour is observed irrespective of whether the occluded-rubidium form of the enzyme is generated by putting the unphosphorylated enzyme in a sodium-free medium containing rubidium ions, or by allowing rubidium ions to catalyse the hydrolysis of phosphoenzyme made by adding ATP to enzyme suspended in a medium containing sodium and magnesium ions. The release of occluded rubidium ions by orthophosphate requires the presence of magnesium, presumably because phosphorylation is necessary. Whether the addition of orthophosphate causes the rapid release of all or of half of the occluded rubidium depends on whether free rubidium (or potassium, thallium or (probably) caesium ions) are present in the medium at the time the orthophosphate is added. In the absence of free ions of these species, all of the occluded rubidium is released. In their presence (in adequate concentration), only half of the occluded rubidium is released. The relative effectiveness of the different potassium congeners in preventing the rapid release of 50% of the occluded rubidium when orthophosphate is added is: thallium greater than rubidium greater than potassium greater than caesium. Lithium and sodium are ineffective even at high concentrations, and sodium ions strongly antagonize the effect of free rubidium ions. In a sodium-free, Tris medium, the concentration of free rubidium ions necessary for a half-maximal effect is about 30 microM. In a medium containing 250 microM-free rubidium, the concentration of sodium necessary to reduce the effect of free rubidium by 50% is about 500 microM. These figures are compatible with the hypothesis that the free rubidium or other ions act at the potassium-loading sites at the extracellular face of the pump. By starting with enzyme occluding unlabelled rubidium, and using 86Rb-labelled free rubidium, it is possible to show that the free ions that prevent the rapid release of half of the occluded ions themselves become occluded. These experiments are significant in two ways. First, they provide direct evidence for the existence of a second route for the release of occluded rubidium (and therefore presumably of occluded potassium) ions. Secondly, they seem to require that the release of occluded ions by this route occurs in an ordered fashion.

Animals

The occlusion of sodium ions within the mammalian sodium-potassium pump: its role in sodium transport.

The hypothesis that the ADP-sensitive form of phosphorylated Na+, K+-ATPase contains occluded sodium ions has been tested by a procedure which involves (i) modifying the enzyme with alpha-chymotrypsin or N-ethylmaleimide (NEM) so that the ADP-sensitive form is more stable than it is in the native enzyme, (ii) phosphorylating the modified enzyme with ATP in the presence of labelled sodium ions, and (iii) forcing the phosphorylated enzyme rapidly through a cation-exchange column and measuring the labelled sodium in the effluent. The results show that ADP-sensitive phosphoenzyme prepared from alpha-chymotrypsin- or NEM-modified Na+, K+-ATPase is able to carry labelled sodium ions through a cation-exchange resin. This behaviour was not seen with native Na+, K+-ATPase or when phosphorylation was prevented by the omission of magnesium ions or by the substitution of adenylyl(beta, gamma-methylene)diphosphonate (AMP-PCP) for ATP. The occluded sodium ions were rapidly released when the phosphoenzyme was dephosphorylated by ADP. When alpha-chymotrypsin-modified enzyme was phosphorylated by ATP with 1 mM-sodium in the medium, close to three sodium ions were occluded per phospho group. The stoicheiometry at much lower sodium concentrations could not be determined satisfactorily. A consideration of the rate constants of the reactions thought to be involved in the occlusion of sodium and in the release of sodium from the occluded state shows that, so far as they are known, these constants are compatible with the hypothesis that the occluded-sodium form of the phosphoenzyme plays a central role in sodium transport through the pump.

Adenosine Diphosphate

Occlusion of rubidium ions by the sodium-potassium pump: its implications for the mechanism of potassium transport.

1. The occlusion of rubidium ions by Na, K-ATPase has been investigated by suspending enzyme prepared from pig kidney outer medulla in media containing low concentrations of (86)Rb, forcing the suspensions rapidly through small columns of cation-exchange resin, and measuring the amounts of radioactivity emerging from the columns.2. When the suspension media contained 2 mM-ATP or ADP, or 15 mM-NaCl, the amounts of radioactivity emerging from the columns were greatly (and similarly) reduced, presumably because both nucleotides and sodium ions stabilized the enzyme in the E(1) form. (See p. 19 for definition of E(1) and E(2)). The extra radioactivity carried through the columns when nucleotides and sodium were absent was taken as a measure of the amount of rubidium occluded within the enzyme (in the E(2) form) when it emerged from the resin.3. By varying the flow rate, and therefore the time spent by the enzyme on the resin, and relating this to the amount of radioactivity emerging from the columns, we have been able to estimate the rate constant for the conformational change (E(2) --> E(1)) that allows the occluded rubidium ions to escape. At 20 degrees C, and in the absence of nucleotides, it is about 0.1 S(-1).4. The rate constant for rubidium release was the same in a sodium-containing as in a potassium-containing medium. The opposite effects of sodium and potassium ions on the poise of the equilibrium between the E(1) and the E(2) forms of the enzyme must, therefore, be due solely to opposite effects of these ions on the rate of conversion of E(1) to E(2).5. The rate constant for rubidium release was greatly increased by ATP and by ADP. Both nucleotides appeared to act at low-affinity sites and without phosphorylating the enzyme.6. Orthovanadate, in the presence of magnesium ions, stabilized the enzyme in the occluded-rubidium (E(2)Rb) form.7. Ouabain, in the presence of magnesium ions, prevented the occlusion of rubidium ions.8. We have measured the amount of rubidium occluded by the enzyme as a function of rubidium concentration, and estimate that at saturating rubidium concentrations about three rubidium ions can be occluded per phosphorylation site (or per ouabain-binding site).9. We have found that the occluded-rubidium form of the enzyme can also be formed by allowing rubidium ions to catalyse the hydrolysis of phosphoenzyme generated by the addition of ATP to enzyme suspended in a high-sodium medium.10. The properties of the occluded-rubidium form of the enzyme, and of the two routes that can lead to its formation, suggest that an analagous occluded-potassium form plays a central role in the transport of potassium ions through the sodium-potassium pump. This hypothesis is supported by a detailed consideration of the probable magnitudes of the rate constants of the individual reactions making up the two routes.

Adenosine Diphosphate

Radiation inactivation of (Na+ + K+)-ATPase. A small target size for the K+-occluding mechanism.

Radiation inactivation of partially purified (Na+ + K+)-ATPase (ATP phosphohydrolase, EC 3.6.1.3) from pig kidney outer medulla shows that the target size for Rb+ occlusion by the enzyme (in the absence of phosphorylation) is much smaller than the target size for p-nitrophenyl phosphatase activity, which is itself smaller than the reported target size for (Na+ + K+)-ATPase activity.

Animals

The equilibrium between different conformations of the unphosphorylated sodium pump: effects of ATP and of potassium ions, and their relevance to potassium transport.

1. Changes in the intrinsic fluorescence of Na, K-ATPase protein have been used to monitor the interconversion of E(1) (low fluorescence) and E(2) (high fluorescence) forms of the unphosphorylated enzyme.2. In media lacking sodium and nucleotides, 1 mM-potassium was sufficient to convert practically all of the enzyme into the E(2) form. In media containing 1 mM-potassium, 1 mM-EDTA, and no sodium or magnesium, the addition of ATP, or its beta, gamma-imido or methylene analogues, converted the enzyme back into the E(1) form. The relation between nucleotide concentration and the fraction of the enzyme that was in the E(1) form could be described by a rectangular hyperbola, with a K((1/2)) of about 15 muM for ATP, 65 muM for adenylyl-imidodiphosphate (AMP-PNP) and 180 muM for adenylyl (beta, gamma-methylene)-diphosphonate (AMP-PCP). ADP also converted the enzyme back into the E(1) form, with a K((1/2)) of about 25 muM, but the relation between concentration and fraction converted was not well described by a rectangular hyperbola.3. In similar media containing 50 mM-potassium, much higher concentrations of ATP were required to convert the enzyme back into the E(1) form, and the conversion was probably incomplete.4. If we assume that ATP and potassium ions affect each other's binding solely by altering the equilibrium between E(1) and E(2) forms of the enzyme, we are able to conclude (i) that potassium ions bind to the E(1) form with a moderately low affinity, (ii) that, in the absence of nucleotides, the equilibrium between E(1)K and E(2)K is poised strongly in favour of E(2)K, (iii) that the binding of ATP to a low-affinity site alters the equilibrium constant for the interconversion of E(1)K and E(2)K by two to three orders of magnitude, so that, at saturating levels of ATP, the equilibrium is probably slightly in favour of E(1)K, and (iv) that in sodium-free, potassium-containing media, ATP will appear to bind to the enzyme more tightly than would be expected from the dissociation constant of the E(2)K. ATP complex.5. The pattern of the equilibrium constants for the various reactions between E(1), E(2), ATP and potassium is compatible with the hypothesis that the ATP-accelerated conversion of E(2)K into E(1)K, and the subsequent release of potassium ions from low-affinity inward-facing sites, are part of the normal sequence of events during potassium influx in physiological conditions.

Adenosine Diphosphate