Search PubMed⌕ Search

Biomedical subjects

E T Wallick

Publications and source records attributed to E T Wallick.

At least 19 recordsLinked to original sources

Combined allosteric and competitive interaction between extracellular Na(+) and K(+) during ion transport by the alpha(1), alpha(2), and alpha(3) isoforms of the Na, K-ATPase.

A combined allosteric and competitive model describes the interaction between extracellular Na(+) and Rb(+) during ion transport mediated by the Na, K-ATPase. The model was developed from experiments based on (86)Rb uptake by whole cells transfected with rat isoforms of the enzyme. In the absence of Na(+), only a single transport site for extracellular Rb(+) exists. After the occupation of the Na(+)-specific allosteric site, the Rb(+) transport pocket opens to allow occupation by an additional Rb(+) and the subsequent transport of the two Rb(+) ions into the cells. Na(+) can also directly compete with Rb(+) for binding to at least one of the transport sites. While the model derived here applies to each of the three rat isoforms of the Na, K-ATPase expressed in HeLa cells, subtle differences exist among the isoforms. The alpha(3)* isoform has an increased intrinsic affinity for Rb(+) and a lower affinity for the allosteric Na(+) site than alpha(1) or alpha(2)*. The stimulation of uptake observed according to the best-fit model is due to the displacement by Rb(+) of inhibitory Na(+) bound to the transport site.

Allosteric Regulation↗

Mutational analysis of Glu-327 of Na(+)-K(+)-ATPase reveals stimulation of 86Rb+ uptake by external K+.

A competition assay of 86Rb+ uptake in HeLa cells transfected with ouabain-resistant Na(+)-K(+)-ATPase mutants revealed a stimulation of 86Rb+ uptake at low external concentrations (1 mM) of competitor (K+). Of the models that were tested, those that require that two K+ be bound before transport occurs gave the worst fits. Random and ordered binding schemes described the data equally well. General models in which both binding and transport were allowed to be cooperative yielded parameter errors larger than the parameters themselves and could not be utilized. Models that assumed noncooperative transport always showed positive cooperativity in binding. E327Q and E327L mutated forms of rat alpha 2 had lower apparent affinities for the first K+ bound than did wild-type rat alpha 2 modified to be ouabain resistant. The mutations did not affect the apparent affinity of the second K+ bound. Models that assumed noncooperativity in binding always showed positively cooperative transport, i.e., enzymes with two K+ bound had a higher flux than those with one K+ bound. Increases in external Na+ decreased the apparent affinity for K+ for all models and decreased the ratio of the apparent influx rate constants for E327L.

Amino Acid Substitution↗

Amino acid substitutions in the rat Na+, K(+)-ATPase alpha 2-subunit alter the cation regulation of pump current expressed in HeLa cells.

1. To study the functional role of negatively charged amino acids (E327 and D925) located in the transmembrane region of the rat alpha 2-isoform of the Na+, K(+)-ATPase (rat alpha 2*) in ion transport, the effects of mutations on external K+ dependence and internal Na+ dependence of pump currents were assessed by the patch-clamp technique in combination with a system for rapid solution changes. 2. Amino acid residues were replaced by glutamine (E327Q) or leucine (D925L) and were introduced into rat alpha 2* cDNA which encodes a ouabain-resistant isoform. These mutant enzymes were stably expressed in HeLa cells. The endogenous ouabain-sensitive HeLa cell Na+, K(+)-ATPase activity was selectively inhibited by 1 microM ouabain present in both the growing media and the assay solution. 3. External K(+)- and internal Na(+)-dependent pump activation was observed in all cells expressing rat alpha 2*, E327Q or D925L; however, the apparent affinities were significantly reduced by the mutations. 4. In E327Q, the activation of pump current was slightly slower than for rat alpha 2*, whereas the deactivation rate was faster. In contrast, D925L produced pump current having dramatically slower activation and deactivation kinetics. 5. These results indicate that these negatively charged amino acids (E327 and D925) are important in cation-induced conformational changes of the protein, which are intermediate steps in the pump mechanism.

Amino Acid Sequence↗

Amino acid replacement of Asp369 in the sheep alpha 1 isoform eliminates ATP and phosphate stimulation of [3H]ouabain binding to the Na+, K(+)-ATPase without altering the cation binding properties of the enzyme.

Modification of aspartic acid 369 in the sheep alpha 1 Na+,K(+)-ATPase to asparagine results in a membrane-associated form of Na+,K(+)-ATPase that can bind [3H]ouabain with high affinity in the presence of Mg2+ alone (KD = 20.4 +/- 2.6 nM). Ouabain binding to the D369N mutant is not stimulated by inorganic phosphate, confirming that Asp369 is both the catalytic phosphorylation site and the only Pi interaction site which stimulates ouabain binding. Cation inhibition of Mg(2+)-stimulated ouabain binding to the D369N mutant demonstrated that three Na+ and two K+ ions inhibit [3H]ouabain binding and suggests that this inhibition must occur via a cation-sensitive conformational change which does not directly involve dephosphorylation of the enzyme. In the presence of 10 mM Mg2+, ATP stimulates ouabain binding to the wild type protein, (AC50 = 21.4 +/- 2.7 microM) but inhibits the binding to the D369N mutant (IC50 = 2.52 +/- 0.17 microM) indicating that the mutation does not destroy the high affinity site for MgATP but does change the nature of the protein conformation normally induced by a nucleotide-Na+,K(+)-ATPase interaction. Increasing the Mg2+ from 1 to 10 mM did not alter the AC50 or IC50 values for ATP and reveals that the Mg2+ interaction which stimulates ouabain binding in the absence of nucleotide involves a distinct divalent cation site not associated with the binding of the magnesium-nucleotide complex. Thus, altering the catalytic phosphorylation site of Na+,K(+)-ATPase does not affect the expression of the ouabain-sensitive protein in the membrane fraction of NIH 3T3 cells and does not disrupt the binding of Na+, K+, Mg2+, ouabain, or ATP to the enzyme. However, the D369N substitution does inhibit the formation of a nucleotide-protein complex with high affinity for ouabain.

Adenosine Triphosphate↗

Glutamic acid 327 in the sheep alpha 1 isoform of Na+,K(+)-ATPase is a pivotal residue for cation-induced conformational changes.

The cation binding characteristics of the mutant E327A formed in the sheep alpha 1 isoform of the Na+,K(+)-ATPase were examined using [3H]ouabain binding as a function of monovalent cation concentrations. Equilibrium competition binding assays in the presence of Mg2+, inorganic phosphate and various amounts of unlabelled ouabain indicated that both wild-type sheep alpha 1 protein and the E327A mutant expressed in 3T3 cells had similar affinities for ouabain (KD = 1.53 and 1.31 nM respectively). Sodium inhibition of ouabain binding appeared competitive in both enzymes. However, binding of three Na+ ions was required to explain the steep character of the Na+ inhibition curve for the wild-type Na+,K(+)-ATPase (Ki = 12.8 +/- 1.6 mM), whereas the binding of two Na+ ions was detected for the mutant E327A (Ki = 19.2 +/- 2.5 mM). Potassium binding of [3H]ouabain binding displayed a partially competitive nature with Hill coefficients of 2 for both wild-type sheep alpha 1 (Ki = 0.743 +/- 0.044 mM) and E327A (Ki = 0.875 +/- 0.067 mM). At concentrations of K+ above 10 mM, the sheep alpha 1 competition curve levelled off whereas the inhibition curve for E327A displayed a stimulation in ouabain binding. This stimulation in [3H]ouabain binding also occurred with Rb+, Cs+ and Li+, but was never observed with choline or Na+, suggesting that this effect was not due to ionic strength. From these [3H]ouabain-binding studies, it is obvious that the mutant enzyme E327A in the presence of Mg2+, Pi and ouabain, interacts with monovalent cations in a unique fashion. One interpretation of these data is that the glutamic acid residue at position 327 is involved in a conformational transition induced by the binding of monovalent cations to the Na+,K+-ATPase and that this transition is inhibited by the mutation of E327A.

3T3 Cells↗

Comparison of the effects of potassium on ouabain binding to native and site-directed mutants of Na,K-ATPase.

We examined the effect of K+ on Mg(2+)- and P(i)-supported [3H]ouabain binding to Na,K-ATPases, including partially purified enzyme from sheep kidney and wild-type and mutant sheep alpha 1 isoforms (C104A, Y108A, E116Q, P118K, Y124F, R880P, R880L, and N122D) expressed in NIH3T3 cells. In the presence of increasing concentrations of K+, [3H]ouabain binding to these enzymes decreases but never reaches nonspecific binding levels, consistent with the concept that ouabain is still able to bind to the K(+)-complexed enzyme but with reduced affinity. A partially competitive model for K+ inhibition of ouabain binding is proposed which satisfactorily fits the binding data. The model is consistent with the sequential binding of two K+ ions to the enzyme. Ki values (approximately 1.0 mM) for K+ obtained from this model are comparable to the apparent K+ affinities of the rat alpha isoforms determined by measuring the K+ dependence of Na,K-ATPase activity [E. A. Jewell and J. B. Lingrel (1991) J. Biol. Chem. 266, 16925-16930]. This is consistent with the concept that K+ inhibition of Mg2+ plus P(i) supported ouabain binding is mediated by K+ binding to the same high-affinity binding sites present in the native enzyme under physiological conditions. While the mutants exhibit binding constants for ouabain which vary more than 30-fold from that of the wild-type enzyme, their affinities for K+ differ less than twofold from that of the native enzyme. Our results suggest that the ouabain and K+ binding sites are not the same and are differentially affected by mutations of the enzyme. The system described here should prove useful in the analysis of cation binding to other mutants of the Na,K-ATPase, especially those carrying amino acid replacements which result in an inactive enzyme.

3T3 Cells↗

Glutamic acid 327 in the sheep alpha 1 isoform of Na+,K(+)-ATPase stabilizes a K(+)-induced conformational change.

By combining the tools of site-directed mutagenesis and [3H]ouabain binding, the functional role of glutamic acid 327 in the fourth transmembrane domain of the sheep alpha 1 isoform of Na+,K(+)-ATPase was examined with respect to its interactions with ouabain, Na+,K+,Mg2+, and inorganic phosphate. Using site-directed mutagenesis, this glutamic acid was substituted with alanine, aspartic acid, glutamine, and leucine. The mutant proteins were constructed in a sheep alpha 1 protein background such that [3H]ouabain binding could be utilized as a highly specific probe of the exogenous protein expressed in NIH 3T3 cells. Na+ competition of [3H]ouabain binding to the mutant forms of Na+,K(+)-ATPase revealed only slight alterations in their affinities for Na+ and in their abilities to undergo Na(+)-induced conformational changes which inhibit ouabain binding. In contrast, K+ competition of [3H]ouabain binding to all four mutant forms of Na+,K(+)-ATPase displayed severely altered interactions between these proteins and K+. Interestingly, [3H]ouabain binding to the mutant E327Q was not inhibited by the presence of K+. This mutant was previously reported to be functionally able to support cation transport with a 5-fold reduced K0.5 for K(+)-dependent ATPase activity (Jewell-Motz, E. A., and Lingrel, J.B. (1993) Biochemistry 32, 13523-13530; Vilsen, B. (1993) Biochemistry 32, 13340-13349). Thus, it appears that this glutamic acid in the fourth transmembrane domain may be important for stabilizing a K(+)-induced conformation within the catalytic cycle of Na+,K(+)-ATPase that is not rate-limiting in the overall ATPase cycle but that displays a greatly reduced affinity for ouabain.

3T3 Cells↗

Ouabain binding kinetics of the rat alpha two and alpha three isoforms of the sodium-potassium adenosine triphosphate.

The Na,K-ATPase has three alpha isoforms which differ in cardiac glycoside sensitivity and tissue distribution. The rodent alpha 1 isoform is relatively resistant to cardiac glycosides, while the alpha 2 and alpha 3 isoforms are quite sensitive. Because both the alpha 2 and alpha 3 isoforms are generally expressed in the same tissue, it has been difficult to differentiate and accurately determine the kinetics of ouabain binding to these isoforms. To more fully understand the interactions of the alpha 2 and alpha 3 isoforms with cardiac glycosides, the association and dissociation rates of ouabain binding were measured in transfected cell lines. cDNA's coding for the rat alpha 2 and alpha 3 isoforms were transfected into NIH 3T3 cells and characterized by Na,K-ATPase activity and [3H]ouabain binding. By individually expressing the alpha 2 and alpha 3 isoforms in ouabain-insensitive NIH 3T3 cells, the ouabain-binding characteristics of each isoform could be accurately determined. The association rate constants of the alpha 2 and alpha 3 isoforms were similar while the dissociation rate constant was 33 times slower for the alpha 3 isoform than the alpha 2 isoform. Calculation of the dissociation constant (Kd) from these rate constants yielded values of 115 and 1.6 nM for rat alpha 2 and alpha 3 isoforms, respectively. Scatchard analysis of the rat alpha 2 isoform produced a similar value for Kd of 37 +/- 9 nM. Inhibition of Na,K-ATPase activity indicates the rodent alpha 1 isoform has an IC50 1000-fold higher than the alpha 2 or alpha 3 isoform at 4.8 x 10(-5) M. The results are consistent with the hypothesis that the order of ouabain affinity between the rat alpha isoforms of the Na,K-ATPase is alpha 3 > alpha 2 >> alpha 1.

3T3 Cells↗

Kinetic analysis of ouabain binding to native and mutated forms of Na,K-ATPase and identification of a new region involved in cardiac glycoside interactions.

Cardiac glycosides inhibit the Na,K-ATPase by binding to the catalytic alpha subunit of the enzyme. Site-directed mutagenesis of the H1-H2 domain has demonstrated the importance of this region in determining cardiac glycoside affinity. In this study, random mutagenesis was used to identify an amino acid, arginine 880, in the COOH-terminal portion of the alpha subunit which influences the sensitivity of the enzyme to ouabain. This residue is predicted to reside in the H7-H8 extracellular loop. Conversion of arginine 880 to a proline causes a 10-fold increase in the dissociation rate constant and a 2-fold increase in the association rate constant for [3H]ouabain binding. This results in an enzyme with a KD for ouabain 5-fold higher than the wild-type sheep alpha 1 isoform. These data are compatible with arginine 880 comprising a portion of the ouabain binding site. Furthermore, if arginine 880 is at the physical binding site, then this finding lends support to models that place this amino acid extracellularly since cardiac glycosides interact with the extracellular surface of the Na,K-ATPase. The ouabain binding characteristics of substitution R880P were compared with those of several different Na,K-ATPases, each of which contains a single amino acid substitution in the H1-H2 region of the alpha subunit. The substituted enzymes, C104A, Y108A, E116Q, P118K, and Y124F, vary considerably in their rates of dissociation (1-4-fold increase in the dissociation rate constant). In addition, the rate of association of [3H]ouabain binding to substitution P118K is 2-fold slower than that of the wild-type enzyme. These results suggest that the H1-H2 domain may participate directly in ouabain binding as well as be involved in conformational changes, both of which could affect the sensitivity of the enzyme to ouabain.

3T3 Cells↗

Amino acid residues of the Na,K-ATPase involved in ouabain sensitivity do not bind the sugar moiety of cardiac glycosides.

The identification of amino acid substitutions in the alpha subunit of the Na,K-ATPase that alter cardiac glycoside sensitivity provides a unique opportunity to examine the role these residues play in binding to the structural domains of these drugs. Substitution of a residue(s) involved in binding to the sugar moiety of cardiac glycosides would be expected to yield similar affinities for ouabain and its aglycone, ouabagenin. Sheep Na,K-ATPase alpha 1 subunit amino acid substitutions previously shown to influence ouabain sensitivity were tested for activity in the presence of ouabain and ouabagenin. These substitutions included both transmembrane and extracellular regions: C104F, D121E, N122D, Q111K, N122K, and Q111R, A112S. Na,K-ATPase activity versus drug concentration curves yielded I50 values over a 1000-fold range for wild type HeLa and HeLa transfectants. Interestingly, the I50 ratio for ouabagenin to ouabain in all mutants tested indicated a 19-24-fold lower affinity of the Na,K-ATPase for ouabagenin. This constant ratio among all mutations tested implies that the first transmembrane region and the first extracellular loop (H1-H2) do not participate in the binding of the sugar moiety of cardiac glycosides.

Amino Acid Sequence↗

Purification of the alpha and beta subunits of (Na,K)-ATPase by continuous elution electrophoresis.

Covalent structural information on membrane proteins is not easily acquired since it is difficult to obtain pure membrane proteins in sufficient quantities. We have therefore examined the Bio-Rad 491 prep cell continuous elution electrophoresis apparatus as a method for providing the quantities of purified alpha and beta subunits from (Na,K)-ATPase required for these studies. Twenty-four milligrams of crude (Na,K)-ATPase preparation was applied to the prep cell which consisted of a 7% Laemmli separating gel 4.5 cm in length. The prep cell was run under constant power and continuous cooling conditions. Those fractions containing the beta subunit were combined and further purified by wheat germ agglutinin affinity chromatography. Fractions containing the alpha subunit were combined and did not require further purification. The identity and the degree of purity of the proteins obtained using this approach was assessed utilizing SDS-PAGE, amino acid analysis and N-terminal sequencing. This simple and fast method provides approximately 1.8 milligrams of each purified subunit from 24 milligrams of relatively crude microsomes. Recovery of the alpha and beta subunits from the crude (Na,K)-ATPase preparation was estimated to be 28% and 81%, respectively.

Amino Acid Sequence↗

Isolation and purification of the extracellular and intracellular portions of the beta subunit of (Na+,K+)-ATPase.

The beta subunit of lamb kidney (Na+,K+)-ATPase was isolated by size exclusion high performance liquid chromatography. Treatment of the beta subunit with formic acid yielded two peptide fragments which were purified via reversed phase high performance liquid chromatography. These peptides were identified by sodium dodecylsulfate polyacrylamide gel electrophoresis, amino acid analysis and N-terminal sequencing as (Pro 94-Ser 302), a largely hydrophilic peptide which comprises the major portion of the extracellular domain including six Cys residues which participate in disulfide bond formation and three glycosylation sites and a smaller peptide (Ala 1-Asp 93) which contains the single membrane spanning region and the intracellular domain.

Amino Acids↗

Identification of the 5-iodoacetamidofluorescein reporter site on the Na,K-ATPase.

5-Iodoacetamidofluorescein (5-IAF) labels the catalytic (alpha) subunit of dog kidney Na,K-ATPase without inhibiting enzymatic activity and is thus a useful fluorescent reporter of enzyme conformation under conditions of enzyme turnover. In this study conditions for labeling a unique sulfhydryl group are described, and this residue is identified in the cDNA-derived sequence. Reaction with iodoacetate (IAA) prior to fluorescent labeling lowers the stoichiometry of 5-IAF incorporation from 2.1 to 1.2 mol/mol alpha beta protomer, and increases the conformationally dependent fluorescence changes by 40-50%, consistent with the elimination of nonspecific labeling. IAA/IAF-enzyme has the same catalytic activity as the IAF-enzyme. In contrast, treatment with iodoacetamide prior to labeling with 5-IAF abolishes all fluorescence responses, although activity is retained. IAA/IAF-enzyme was digested by extensive trypsinolysis, and the fluorescent peptides released from the membrane were purified by high performance liquid chromatography and sequenced. Several fluorescent peptides were found, containing all or part of the sequence Cys-Ile-Glu-Leu-Cys-Cys-Gly-Ser-Val-Lys, corresponding to residues 452-461 in the sheep alpha subunit. The major site of modification is the second of the vicinal cysteine residues, Cys-457. Phenylarsine oxide, a reagent specific for vicinal sulfhydryl groups, prevents fluorophore incorporation, thereby confirming the identification of the IAF site from the sequence data.

Amino Acid Sequence↗

Human myocardial adenosine triphosphatase activities in health and heart failure.

This study was designed to determine: (1) the myocardial adenosine triphosphatase (ATPase) activities of normal humans and patients with dilated cardiomyopathy and (2) whether ATPase activity is related to age, cause and severity of heart failure, and digitalis therapy. Endomyocardial biopsies were performed in 32 subjects. Results from six were normal. Ventricular failure in the other 26 was idiopathic (n = 15), familial (n = 3), alcohol induced (n = 5), or related to doxorubicin therapy (n = 3). The biopsies were analyzed for total, mitochondrial, Na+-K+, Ca++, and Mg++ ATPase activities. Total and mitochondrial ATPase activities correlated with left ventricular ejection fraction (r = 0.65 and 0.67, respectively; both p = 0.0001). Residual Mg++ ATPase activity correlated weakly with ventricular function as measured by echocardiography (p = 0.05). Na+-K+ ATPase activity was depressed in patients receiving digitalis (p = 0.01). These results suggest that progressive ventricular dysfunction may be associated with a progressive loss of total ATPase, mitochondrial ATPase and, to a lesser extent, Mg++ ATPase activity. Although depressed mitochondrial ATPase activity is not likely to be the primary cause of ventricular dysfunction, it could perpetuate failure by leading to inadequate production of adenosine triphosphate. Further study of ATPase activities may provide additional insight into the pathogenesis of cardiac failure.

Adenosine Triphosphatases↗

Hypertensive dog plasma inhibits the Na+-K+ pump of cultured vascular smooth muscle.

We investigated the effects of plasma from dogs with perinephritic hypertension on the Na+-K+ pump of cultured dog vascular smooth muscle cells. We also measured [3H]ouabain binding by myocardium and vascular tissue. Fresh, unprocessed plasma from healthy dogs during the first 6 weeks of benign one-kidney, one wrapped hypertension and from paired normotensive control dogs was layered over confluent primary cultured puppy aortic smooth muscle cells that had been sodium-loaded with monensin. In 26 paired assays of plasma from four pairs of dogs, cells incubated in the presence of plasma from hypertensive dogs had significantly reduced total (p less than 0.01) and ouabain-sensitive (p less than 0.001) 86Rb+ uptakes, but their intracellular sodium content did not differ from cells incubated in paired normotensive plasma. We no longer detected these uptake differences when passaged cells or cells cocultured with bovine endothelial cells were used for assay or when plasma was treated with protease inhibitors or boiled. However, boiled plasma increased the sodium content of the assay cells, suggesting an ionophorelike effect. Levels of pump inhibitory activity in plasma appeared to remain constant during Weeks 1 to 6 of hypertension. We found no evidence for altered numbers of pump sites in cardiovascular tissues from these hypertensive dogs. These findings support the hypothesis that plasma factors inhibit the membrane Na+-K+ pump in vascular smooth muscle cells in this form of hypertension. These plasma inhibitory factors apparently do not induce pump molecules.

Animals↗

Identification of an essential sulfhydryl group in the ouabain binding site of (Na,K)-ATPase.

Ellman's reagent 5,5'-dithiobis-(2-nitrobenzoic acid) inhibits sodium- and potassium-stimulated ATPase, p-nitrophenyl phosphatase activity, and [3H]ouabain binding to lamb kidney (Na,K)-ATPase. The inactivation of [3H]ouabain binding follows pseudo-first order reaction kinetics at pH values less than or equal to 8.2. The inactivation of [3H]ouabain binding, but not of enzymatic activity, can be blocked by preincubation with ouabagenin, a rapidly reversible aglycone derivative of ouabain. The reduction in [3H]ouabain binding is due to a decrease in the number of binding sites rather than an alteration of the affinity of the enzyme for ouabain. Differential labeling at pH 8.2 with 1.0 mM 5,5'-dithiobis-(2-nitrobenzoic acid), preincubated with or without 5 microM ouabagenin, followed by tryptic digestion and reverse-phase high performance liquid chromatography of the generated soluble peptides reveals a single peptide labeled by the sulfhydryl probe that is protected by ouabagenin. From these results it is concluded that there is a single sulfhydryl group, essential for ouabain binding, presumably located in the ouabain binding site of lamb kidney (Na,K)-ATPase.

Animals↗