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Characterization of N-ethylmaleimide-sensitive thiol groups required for the GTP-dependent fusion of endoplasmic reticulum membranes.

The GTP-dependent fusion activity of endoplasmic reticulum membranes is thought to be required for the structural maintenance and post-mitotic regeneration of the endoplasmic reticulum. This fusion is sensitive to the thiol-alkylating agent N-ethylmaleimide. In many intracellular fusion events N-ethylmaleimide-sensitivity is associated with a homotrimeric ATPase called N-ethylmaleimide-sensitive fusion protein or NSF. The addition of cytosol containing NSF is known to restore fusion activity to N-ethylmaleimide-treated membranes. We found that the inhibition of fusion of rat liver endoplasmic reticulum membranes (microsomes) by N-ethylmaleimide was not reversed by the addition of untreated cytosol. Fusion was also unaffected by treatment with a buffer known to remove NSF from membranes. Accordingly, no membrane-associated NSF was detected by immunoblot analysis. These data suggest that microsome fusion requires an N-ethylmaleimide-sensitive component distinct from NSF. This component was tightly associated with the membranes, so we used a number of chemical probes to characterize it in situ. Its thiol groups did not appear to be part of a GTP-binding site. They showed relatively low reactivity with sodium periodate, which induces the formation of disulphide bonds between proximate thiol groups. The thiols were not protected against N-ethylmaleimide by Zn2+, a potent inhibitor of fusion which is known to efficiently co-ordinate thiol groups. To characterize the topology of the fusion-related thiol groups we used bulky thiol-specific reagents prepared by conjugating BSA or 10 kDa aminodextran to the bifunctional reagent N-succinimidyl 3-(2-pyridyldithio)propionate. The inhibition of fusion by these reagents indicated that these thiols are highly exposed on the membranes. This exposure might be important for the function of these groups during GTP-triggered fusion.

Animals↗

Influence of the energetic state of mitochondria on the inhibition of oxidative phosphorylation by N-ethylmaleimide.

N-Ethylmaleimide inhibitory effect on oxidative phosphorylation, adenylic nucleotide translocation, succinate dehydrogenase and succinoxidase activities was studied as a function of the energetic state of mitochondria. 1. Using a reversible thiol reagent (mersalyl), in order to protect the phosphate carrier against irreversible action of N-ethylmaleimide, it was found that: (a) when mersalyl-pretreated mitochondria were in a 'non-energized' state, i.e. preincubated without a substrate and in the presence of rotenone, only a slight inhibition of succinate oxidation coupled to ATP synthesis by N-ethylmaleimide was observed. (b) when mersalyl-pretreated mitochondria were in an 'energized' state, i.e. preincubated in the presence of an oxidizable substrate, N-ethylmaleimide strongly inhibited the coupled oxidation of succinate. 2. Mitochondrial energization was also shown to enhavce the inhibitory effect of N-ethylmaleimide on adenylic nucleotide translocation and succinoxidase activity. However, other sulphydrul groups seem to be involved in the inhibition mechanism, but their function is unknown. 3. As N-ethylmaleimide inhibitory effect increased, an enhancement of N-[14C]ethylmaleimide binding to mitochondrial sulphydryl groups was obtained.

Adenosine Triphosphate↗

Production of monoclonal antibodies recognising N-ethylmaleimide during attempted generation of monoclonal antibodies to human type I procollagen.

Mice were immunised for the production of monoclonal antibodies to human procollagen (I) using antigen purified from fibroblast conditioned medium. The procedure for procollagen (I) preparation included the addition of proteinase inhibitors N-ethylmaleimide, phenylmethylsulphonyl fluoride and ethylenediaminetetraacetic acid to prevent damage by proteolytic cleavage. Four of the five monoclonal antibodies subsequently produced were found to recognise the thiol proteinase inhibitor N-ethylmaleimide but not type I procollagen prepared in the absence of N-ethylmaleimide. One of these monoclonal antibodies was examined further and shown to recognise beta-galactosidase after it had been reacted with N-ethylmaleimide. As far as we are aware this is the first time that monoclonal antibodies have been produced which recognise N-ethylmaleimide. Our findings indicate an unexpected reaction between procollagen and N-ethylmaleimide and prompt the suggestion that the use of N-ethylmaleimide in the purification of procollagen and other proteins should be reexamined.

Antibodies, Monoclonal↗

ADP-ribosylation factor-1 is sensitive to N-ethylmaleimide.

The treatment of normal rat kidney cells with N-ethylmaleimide caused the release of beta-COP, a component of coatomer, from the Golgi apparatus without causing disassembly of the organelle. The release of beta-COP, which was not due to depolymerization of microtubules, was markedly blocked by the activation of GTP-binding proteins by aluminum fluoride or a nonhydrolyzable analogue of GTP. To determine which component is N-ethylmaleimide-sensitive, we reconstituted the recruitment of coatomer from the bovine brain cytosol onto the Golgi apparatus in digitonin-permeabilized cells. In cells treated with N-ethylmaleimide before permeabilization, beta-COP was still recruited onto the Golgi apparatus. In contrast, beta-COP was not recruited when N-ethylmaleimide-treated bovine brain cytosol was used. These results suggest that the N-ethylmaleimide-sensitive factor(s) are present in the cytosol. It is known that coatomer and ADP-ribosylation factor-1 (ARF1) are the only cytoplasmic proteins needed for the assembly of Golgi-derived coated vesicles. N-Ethylmaleimide treatment of a coatomer-rich fraction did not affect the binding of beta-COP to the Golgi apparatus, whereas the same treatment of an ARF-rich fraction abolished beta-COP binding. Similar results were obtained using purified recombinant ARF1. Concomitant with inactivation, 0.85 mol of N-ethylmaleimide was incorporated into 1 mol of ARF1. ARF1 contains only one cysteine residue (Cys-159), which is located near the base moiety of the bound guanine nucleotide.

ADP-Ribosylation Factor 1↗

Sulfhydryl groups of renal D1A dopamine receptors: differential sensitivity of receptors to N-ethylmaleimide in normotensive and hypertensive rats.

OBJECTIVES: To determine whether sulfhydryl groups are present on D1A receptors of spontaneously hypertensive rats (SHR) and to test the hypothesis that failure of agonists to bind to such receptors is linked to microstructural changes involving sulfhydryl groups. METHOD: Alkylation of renal proximal tubule membranes by N-ethylmaleimide caused 70% loss of D1A dopamine receptor binding sites in the normotensive Wistar-Kyoto (WKY) rat and the SHR. RESULTS: The concentration of N-ethylmaleimide (IC50) required to produce half-maximal loss of receptor binding was 5.2 and 1200 mumol/l in WKY rats and SHR, respectively. Previous receptor occupancy of WKY rat D1A sites by the D1A agonist SKF R-38393 completely protected the binding sites from N-ethylmaleimide-mediated inactivation. Occupancy with the D1A antagonist SCH 23390 partially protected the binding sites and produced a 500-fold increase in the IC50 of N-ethylmaleimide. In SHR, receptor occupancy either by SKF R-38393 or by SCH 23390 failed to protect the D1A sites from N-ethylmaleimide or to alter the IC50 of N-ethylmaleimide-mediated inactivation. CONCLUSION: These results indicate that D1A dopamine receptors both of WKY rats and of SHR contain sulfhydryl groups at or near the ligand binding site, which display differential sensitivity to N-ethylmaleimide.

Animals↗

Influence of N-ethylmaleimide on action potential and force of contraction of guinea-pig papillary muscles.

1. Standard microelectrode techniques were used to investigate the influence of N-ethylmaleimide on the action potential, slow response action potential and force of contraction of guinea-pig papillary muscles. 2. N-ethylmaleimide, 3 x 10(-5) to 10(-4) mol l-1, concentration-dependently increased the force of contraction. The positive inotropic effect developed quickly and, with the largest drug concentration, was followed by a progressive decline of the contractile force. The action potential duration was progressively shortened by N-ethylmaleimide. 3. The effects of N-ethylmaleimide were not prevented in the presence of tetrodotoxin 3 x 10(-8) mol l-1 and propranolol 4 x 10(-6) mol l-1 or by a reduction of the Na(+)-concentration to 70 mmol l-1. 4. Verapamil, 10(-6) mol l-1, reduced the positive inotropic, but not the action potential shortening effect of N-ethylmaleimide. 5. In K(+)-depolarized muscles in the presence of propranolol and tetrodotoxin, N-ethylmaleimide 10(-4) mol l-1 increased the maximum depolarization velocity and the duration of the slow response action potential. The latter effect was transient and was followed by a progressive reduction of the action potential duration. 6. The most likely explanation for the action potential shortening effect of N-ethylmaleimide seems to be an increase of an outward potassium current while the transient inotropic effect of the drug may be caused, at least in part, by an increase of the slow inward calcium current.

Action Potentials↗

ATPase and phosphatase activities from human red cell membranes: I. The effects of N-ethylmaleimide.

In human red cell membranes the sensitivity to N-ethylmaleimide of Ca2+-dependent ATPase and phosphatase activities is at least ten times larger than the sensitivity to N-ethylmaleimide of (Na+ + K+)-ATPase and K+-activated phosphatase activities. All activities are partially protected against N-ethylmaleimide by ATP but not by inorganic phosphate or by p-nitrophenylphosphate. (ii) Protection by ATP of (Na+ + K+)-ATPase is impeded by either Na+ or K+ whereas only K+ impedes protection by ATP of K+-activated phosphatase. On the other hand, Na+ or K+ slightly protects Ca2+-dependent activities against N-ethylmaleimide, this effect being independent of ATP. (iii) The sensitivity to N-ethylmaleimide of Ca2+-dependent ATPase and phosphatase activities is markedly enhanced by low concentrations of Ca2+. This effect is half-maximal at less than 1 micron Ca2+ and does not require ATP, which suggests that sites with high affinity for Ca2+ exist in the Ca2+-ATPase in the absence of ATP. (IV) Under all conditions tested the response to N-ethylmaleimide of the ATPase and phosphatase activities stimulated by K+ or Na+ in the presence of Ca2+ parallels that of the Ca2+-dependent activities, suggesting that the Ca2+-ATPase system possesses sites at which monovalent cations bind to increase its activity.

Adenosine Triphosphatases↗

Mitochondrial phosphate transport and the N-ethylmaleimide binding proteins of the inner membrane.

Mitochondria have been prepared from the flight muscles of mature blow-flies (Sarcophaga bullata). Phosphate transport by these mitochondria, determined by rates of passive swelling in ammonium phosphate, is sensitive to inhibition by N-ethylmaleimide. 20 nmol of N-ethylmaleimide/nmol cytochrome A inhibit the swelling by 90%. When the mitochondria are inhibited by N-[3H]ethylmaleimide, then solubilized in dodecyl sulfate/mercaptoethanol at 100 degrees C and then electrophoresed on dodecyl sulfate-polyacrylamide gels, many labeled protein bands can be detected, including a large labeled peak that has the same mobility as the tracking dye, bromophenol blue. Sonic submitochondrial particles that are prepared from the N-[3H]ethylmaleimide-labeled mitochondria, solubilized, and electrophoresed on dodecyl sulfate-polyacrylamide gels, possess only seven major labeled protein bands with no radioactive peak at the tracking dye. These labeled proteins have molecular weights of 71, 68, 64, 45, 32, 30, and approx. 10 . 10(3). The nmol N-[3H]ethylmaleimide bound to each of these proteins per nmol cytochrome A are 0.15, 0.19, 0.35, 0.45, 0.87, 0.10, and 0.17, respectively, when the mitochondria are inhibited with 21.5 mol N-[3H]ethylmaleimide/mol cytochrome a at 10 micron cytochrome A. Coty and Pedersen (1975) J. Biol. Chem. 250, 3515-3521) sensitized rat liver mitochondria to N-[3H]ethylmaleimide and identified five labeled proteins. Only the labeled 32 . 10(3) dalton and the 45 . 10(3) dalton proteins are common to both systems.

Animals↗

Effect of N-ethylmaleimide on leucine transport in Chang liver cells. I. stimulatory effect on Na+ -independent transport at low concentrations of leucine.

Pretreatment of Chang liver cells with N-ethylmaleimide (0.5 or 1 mM) stimulated Na+ -independent uptake of leucine at low concentrations (less than or equal to 1 mM). The stimulatory effect of N-ethylmaleimide on the uptake of leucine measured in Na+ -replete medium was completely blocked by the addition of beta-2-aminobicyclo[2,2,1]heptane-2-carboxylate (5 mM), which shows that the L system participates in the stimulation. The Na+ -dependent uptake of glycine was depressed by N-ethylmaleimide pretreatment. The stimulation of the Na+ -independent component of leucine uptake continued for at least 30 min after N-ethylmaleimide treatment, while the inhibition of glycine uptake was progressive with time and the Na+ -dependent uptake of leucine became depressed later, after the treatment. It has been demonstrated that treatment of cells with N-ethylmaleimide is capable of increasing the Na+ -independent influx of leucine and at the same time slightly decreasing the efflux of it. These results suggest that N-ethylmaleimide attacks the Na+ -independent system of amino acid transport at the reactive SH groups(s) of relevant protein(s) in favor of specific activation of that system in this cell.

Aminoisobutyric Acids↗

Studies on (Na+ +K+) activated ATPase. XLI. Effects of N-ethylmaleimide on overall and partial reactions.

1. Preincubation with N-ethylmaleimide inhibits the overall activity of highly purified (Na+ +K+)-ATPase (ATP phosphohydrolase, EC 3.6.1.3) preparations of rabbit kidney outer medulla. 2. This inhibition is decreased by addition of ATP or 4-nitrophenylphosphate under non-phosphorylating conditions, and also by addition of ADP or adenylylimidodiphosphate. 3. N-ethylmaleimide treatment leads to inhibition of K+-stimulated 4-nitrophenylphosphatase activity, Na+-stimulated ATPase activity, and phosphorylation by ATP as well as by inorganic phosphate. These inhibitions strictly parallel that of the overal (Na+ +K+)-ATPase reaction. 4. N-ethylmaleimide lowers the number of sites which are phosphorylated by inorganic phosphate, without affecting the dissociation constant of the enzyme-phosphate complex. 5. N-ethylmaleimide does not affect the relative stimulation by ATP of the K+-stimulated 4-nitrophenylphosphatase activity. 6. These effects of N-ethylmaleimide can be explained as a complete loss of active enzyme, either by reaction of N-ethylmaleimide inside the active center, or by alterations in the quaternary structure through reactions outside the active center.

4-Nitrophenylphosphatase↗

N-ethylmaleimide inhibits Ca2+ influx induced by collagen or arachidonate on rabbit platelets.

N-Ethylmaleimide dose dependently inhibited platelet aggregation induced by collagen or arachidonate but did not inhibit the aggregation by thrombin or ionophore A23187 within the concentrations tested. [3H]Arachidonate release from membrane phospholipids of the collagen-stimulated platelets was inhibited by N-ethylmaleimide in parallel with the inhibition of aggregation, but not in response to A23187. N-Ethylmaleimide prevented 45Ca2+ influx into platelet cells from outer medium induced by collagen, and also inhibited the increase in the concentration of cytoplasmic free Ca2+, which probably results from Ca2+ influx, as monitored by quin2 fluorescence, under stimulation with arachidonate. The concentration of N-ethylmaleimide giving a complete inhibition of Ca2+ influx was consistent with that required to inhibit collagen- or arachidonate-induced aggregation. Prostaglandin metabolism from arachidonate to thromboxane A2 was not disturbed by N-ethylmaleimide, while phosphatidate formation induced by arachidonate was slightly inhibited by it at concentrations at which aggregation was completely inhibited. These data suggest that N-ethylmaleimide preferentially suppresses increase in cytoplasmic free Ca2+ which is linked to thromboxane A2-receptor occupation in collagen- or arachidonate-stimulated platelets, probably due to blockage of Ca2+ influx through Ca2+-channel protein, thereby inhibiting aggregation induced by these agonists.

Animals↗

The sulfhydryl reagent N-ethylmaleimide induces hyperphosphorylation on tyrosine residues in the Jurkat T-cell line.

Tyrosine protein kinases have been shown to be functionally involved in regulation of cellular signalling, proliferation and transformation. The activity of tyrosine protein kinases is counterbalanced by phospho tyrosine phosphatases that maintain constitutively low levels of protein phosphotyrosine in most cells. In this study the effect of N-ethylmaleimide on the protein tyrosine phosphorylation was tested in Jurkat T-cells. Treatment of intact cells for 5-10 mins with 50-100 microM N-ethylmaleimide resulted in a dramatic increase in phosphorylation on tyrosine residues. Phosphoaminoacid analysis revealed an up to ten-fold increase in the content of phosphotyrosine. N-ethylmaleimide blocked the phospho tyrosine phosphatases activity of immunoprecipitated CD45 while in a kinase assay N-ethylmaleimide did not affect the 32P-gamma-ATP phosphorylation of substrates. The N-ethylmaleimide-induced hyperphosphorylation was reversed by treatment with 2 mM dithiotreitol. It is concluded that N-ethylmaleimide offers a novel useful tool for identification of substrates for tyrosine protein kinases and for studies on phosphotyrosine-dependent protein interactions.

Antigens, CD↗

Role of reactive oxygen species in apoptosis induced by N-ethylmaleimide in HepG2 human hepatoblastoma cells.

We have previously reported that N-ethylmaleimide induces apoptosis through activation of K(+), Cl(-)-cotransport in HepG2 human hepatoblastoma cells. In this study, we investigated the role for reactive oxygen species as a mediator of the apoptosis induced by N-ethylmaleimide. N-ethylmaleimide induced a significant elevation of intracellular level of reactive oxygen species. Treatment with antioxidants (N-acetyl cysteine, N,N'-diphenyl-p-phenylenediamine) which markedly suppressed generation of reactive oxygen species, significantly inhibited the N-ethylmaleimide-induced activation of K(+), Cl(-)-cotransport and apoptosis. Inhibitors of NADPH oxidase (diphenylene iodonium, apocynin, D-(+)-neopterine) also significantly blunted the generation of reactive oxygen species, activation of K(+), Cl(-)-cotransport and apoptosis induced by N-ethylmaleimide. These results suggest that reactive oxygen species generated through activation of NADPH oxidase may play a role in the N-ethylmaleimide-induced stimulation of K(+), Cl(-)-cotransport and apoptosis in HepG2 cells.

Apoptosis↗

Effects of N-ethylmaleimide on conformational equilibria in purified cardiac muscarinic receptors.

Muscarinic receptors purified from porcine atria and devoid of G protein underwent a 9-27-fold decrease in their apparent affinity for the antagonists quinuclidinyl benzilate, N-methylscopolamine, and scopolamine when treated with the thiol-selective reagent N-ethylmaleimide. Their apparent affinity for the agonists carbachol and oxotremorine-M was unchanged. Conversely, the rate of alkylation by N-ethylmaleimide, as monitored by the binding of [(3)H]quinuclidinyl benzilate, was decreased by antagonists while agonists were without effect. The receptor also underwent a time-dependent inactivation that was hastened by N-ethylmaleimide but slowed by quinuclidinyl benzilate and N-methylscopolamine. The destabilizing effect of N-ethylmaleimide was counteracted fully or nearly so at saturating concentrations of each antagonist and the agonist carbachol. Similar effects occurred with human M(2) receptors differentially tagged with the c-Myc and FLAG epitopes, coexpressed in Sf9 cells, and extracted in digitonin/cholate. The degree of coimmunoprecipitation was unchanged by N-ethylmaleimide, which therefore was without discernible effect on oligomeric size. The data are quantitatively consistent with a model in which the purified receptor from porcine atria interconverts spontaneously between two states (i.e. R R*). Antagonists favor the R state; agonists and N-ethylmaleimide favor the comparatively unstable R* state, which predominates after purification. Occupancy by a ligand stabilizes both states, and antagonists impede alkylation by favoring R over R*. Similarities with constitutively active receptors suggest that R and R* are akin to the inactive and active states, respectively. Purified M(2) receptors therefore appear to exist predominantly in their active state.

Animals↗

The reaction of N-ethylmaleimide at the active site of succinate dehydrogenase.

Since 1938 mammalian succinate dehydrogenase has been thought to contain thiol groups at the active site. This hypothesis was questioned recently, because irreversible inhibition by bromopyruvate and N-ethylmaleimide appeared not to satisfy the requisite criteria for reaction at the active site. These recent observations of incomplete inactivation of succinate dehydrogenase by N-ethylmaleimide and incomplete protection by substrates can, however, be explained adequately by the presence of oxalacetate and other strong competitors of the inactivation process in the enzyme used in these studies. Substrates, competitive inhibitors, and anions which activate succinate dehydrogenase protect the enzyme from inhibition by N-ethylmaleimide. Inhibition of succinate dehydrogenase by N-ethylmaleimide involves at least two second order reactions which are pH dependent, with pKa values of 8.0 to 8.2. This pH dependence, the known reactivity of N-ethylmaleimide toward thiols, and the protection by substrate and competitive inhibitors indicate that sulfhydryl residues are required for catalytic activity and perform an essential, not secondary, role in the catalysis. Just as the presence of tightly bound oxalacetate prevents inhibition by N-ethylmaleimide, alkylation of the sulfhydryl residue(s) at the active site prevents the binding of [14C]oxalacetate. Thus, these thiol groups at the active site also may be the site of tight binding of oxalacetate during the activation-deactivation cycle.

Animals↗

Role of two nucleotide-binding regions in an N-ethylmaleimide-sensitive factor involved in vesicle-mediated protein transport.

N-Ethylmaleimide-sensitive factor (NSF) was originally characterized as the protein that restores in vitro protein transport activity of the Golgi membranes inactivated by N-ethylmaleimide. This protein has two homologous regions, each containing the consensus sequence for nucleotide binding, and possesses ATPase activity. To investigate the role of the two nucleotide-binding regions in NSF, we have replaced two lysyl residues (Lys-274 and Lys-557) located in the consensus sequences with glutamine or methionine via site-directed mutagenesis. The mutant NSF proteins in which Lys-274 was replaced had no ability to restore protein transport between N-ethylmaleimide-treated Golgi membranes and, in addition, inhibited the protein transport assay using normal Golgi membranes. This inhibition, which was eliminated by N-ethylmaleimide treatment, was caused by the impairment of the function of donor Golgi membranes. Although wild-type NSF showed a protective effect against inhibition by the Lys-274 mutant NSF protein when added at the start of the protein transport assay, its protective effect diminished after the time for the formation of transport vesicles had passed. These results support the idea that NSF incorporated into transport vesicles is nonexchangeable for exogenously added NSF. On the other hand, the mutant proteins in which Lys-557 was replaced had slight but significant protein transport activity. They did not inhibit the protein transport assay using normal Golgi membranes. The mutant NSF proteins in which Lys-274 and Lys-557 were replaced had about 20 and 25% of the ATPase activities of wild-type NSF, respectively. Their ATPase activities were sensitive to N-ethylmaleimide and dependent on their protein concentrations, as observed in wild-type NSF.

Adenosine Triphosphatases↗

Energy transduction in photosynthetic bacteria. VII. Inhibition of the coupling ATPase by N-ethylmaleimide related to the energized state of the membrane.

N-Ethylmaleimide, at millimolar concentrations, irreversibily inhibits photophosphorylation and ATPase activity of photosynthetic membranes from Rhodopseudomonas capsulata. The inhibitory effect of N-ethylmaleimide is evident only the membranes are preincubated with the inhibitor in the light and in the absence of phosphorylation substrates. ADP and orthophosphate (or arsenate) exert a protective effect against the inhibition if they are present during the preillumination stage. The energization of the membrane by ATP hydrolysis, measured as ATP-induced quenching of 9-aminoacridine fluorescence, also is inhibited irreversibly by N-ethylmaleimide. Uncouplers protect the ATPase from inhibition by N-ethylmaleimide at concentrations at which they inhibit photophosphorylation. The ATPase, as measured either in the dark or in the light, is also inhibited by carbonylcyanide p-trifluoromethoxypenylhydrazone in parallel with photophosphorylation. These results are interpreted as evidence that the high-energy state of the membrane induces a conformational change of the ATPase, making it sensitive to attack by N-ethylmaleimide; this conformational change might be related to the active state of the ATPase.

Adenosine Diphosphate↗

Erythrocyte Lii-Nao countertransport system. Inhibition by N-ethylmaleimide probes for a conformational change of the transport system.

Human erythrocytes were treated by a series of SH-reagents, including maleimides, iodo compounds, mercurials and oxidizing agents. Rates of Li efflux into Na-rich medium, Li leak and Lii-Nao countertransport were then determined. Of the 13 different reagents studied, only N-ethylmaleimide, iodoacetamide and iodoacetate inhibited selectively the countertransport activity. The effect of the various reagents indicates that the sensitive SH-groups of the countertransport system are not externally exposed. N-Ethylmaleimide was used to probe for changes elicited by substrate cations in Lii-Nao countertransport. In Na- and Li-free medium, inhibition of Lii-Nao countertransport by N-ethylmaleimide of 35% was reached within 2 s. In Na or Li medium, maximal inhibition was twice as great, but was attained much more slowly, within 10 min. Kinetic data and Hill plot analysis indicate the involvement of two classes of SH-groups: one expressed in the various media with and without substrate cations, and an additional one, which becomes specifically available to N-ethylmaleimide in the presence of external Na or Li. The affinity of Na to the site promoting inhibition by N-ethylmaleimide (apparent Km = 12 mM) is higher than the affinity of Na to its external countertransport site (apparent Km = 25 mM, as reported by Sarakadi, B., Alifimoff, J.K., Gunn, R.B. and Tosteson, D.C. (1978) J. Gen. Physiol. 72, 249-265). Reactivity of N-ethyl[14C]maleimide was not modified by the media tested. It is concluded that external Na and Li cause a conformational change in the protein(s) of the countertransport system in human erythrocytes.

Biological Transport↗