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Adenosine 5'-triphosphate synthesis energized by an artificially imposed membrane potential in membrane vesicles of Escherichia coli.

Adenosine 5'-triphosphate (ATP) synthesis driven by an artificially imposed membrane potential in right-side-out membrane vesicles of Escherichia coli was investigated. Membrane vesicles prepared in the presence of adenosine diphosphate were loaded with K+ by incubation with 0.5 M potassium phosphate. Addition of valinomycin resulted in the synthesis of 0.2 to 0.3 nmol of ATP/mg of membrane protein, whereas no synthesis was observed after addition of nigericin. Addition of K+, dicyclohexylcarbodiimide, carbonylcyanide p-trifluoromethoxyphenylhydrazone, or azide to the assay buffer inhibited ATP synthesis. Adenosine diphosphate and Mg2+ were found to be required. Ca2+, which can replace Mg2+ for the hydrolytic activity of the Mg2+-adenosine triphosphatase (ATPase) (EC 3.6.1.3), could not replace Mg2+ in the synthetic reaction and, in fact, inhibited ATP synthesis even in the presence of Mg2+. Strain NR-70, a mutant lacking the Mg2+-ATPase, was unable to synthesize ATP using an artificially imposed membrane potential. Additionally, the Mg2+-ATPase was found to contain tightly bound ATP.

Adenosine Diphosphate↗

Effects of acetaldehyde on the membrane potential and membrane resistance of the identified neurons in the abdominal ganglion of Aplysia kurodai.

Actions of acetaldehyde on membrane potentials and membrane resistances of Aplysia neurons were studied using an intracellular recording and current injection technique. Several functionally different neurons in the abdominal ganglion of A. kurodai were identified on the basis of their morphological and electrophysiological characteristics. Application of between 5 and 50 mM acetaldehyde produced depolarization of the membrane, in all types of cells investigated. This depolarization was accompanied by an increase in the rate of spike discharge. The amplitude and the rates of rise and fall of the action potential were reduced and the duration of the spike was prolonged. Acetaldehyde had no significant effect on the input resistances of ganglion cells. These actions of the aldehyde were observed to be similar in the completely isolated neuron-soma preparation separated from the neighbouring cells or synapses.

Acetaldehyde↗

Relationship of transepithelial electrical potential to membrane potentials and conductance ratios in frog skin.

Previous studies in anuran epithelia have shown that, after clamping the transepithelial voltage in symmetrical sequences for 4-6 min there is near-constancy of the rate of active Na transport and the associated oxidative metabolism, with a near-linear potential dependence of both. Here we have investigated in frog skin the cellular electrophysiolgical events associated with voltage clamping (Vt = inside-outside potential). Increase and decrease of Vt produced converse effects, related directly to the magnitude of Vt. Hyperpolarization resulted in prompt decrease in inward transepithelial current It and increase in fractional outer membrane resistance fRo (as evaluated from small transient voltage perturbations) and in outer membrane potential Vo. Overshoot of Vo was followed by relaxation to a quasi-steady state in minutes. Changes in fRo were progressive, with half times of some 1-5 sec. Changes in transepithelial slope conductance gt were more variable, usually preventing precise evaluation of the outer and inner cell membrane conductances go and gi. Nevertheless, it was shown that go is related inversely to Vt and Vo. Presuming insensitivity of gi to Vt, the dependence of Go on Vo in the steady state much exceeds that predicted by the constant field equation. Apparent inconsistencies with earlier results of others may be attributable to differences in protocol and the complex dependence of go on Vo and/or cellular-current. In contrast to previous findings in tight epithelia at open circuit, differences in Vt were associated with substantial differences in fRo and inner membrane potential Vi. Hyperpolarization of Vt over ranges commonly employed in studies of active transport ad metabolism appears to increase significantly the electrochemical work per Na ion transported.

Animals↗

Central respiratory drive potentials and membrane potential trajectories in phrenic motoneurons.

Membrane potential trajectories were quantitatively assessed during the burst phase of cat phrenic motoneuron discharges. During burst progression the after-hyperpolarization shifted in the depolarizing direction with little change in spike threshold. Argument is made that these results constitute indirect evidence for the accumulation of potassium ions in the extracellular space of the phrenic motoneuron pool. Functional consequences regarding cell synchronization and recruitment are also discussed.

Action Potentials↗

Changes in membrane potential and membrane fluidity in Tetrahymena pyriformis in association with chemoreception of hydrophobic stimuli: fluorescence studies.

The fluorescence intensity of rhodamine 6G (Rh6G) and 1,6-diphenyl-1,3,5-hexatriene (DPH) in the presence of Tetrahymena pyriformis was measured to monitor changes in the membrane potential and in the gross structure of the surface membrane in response to chemical stimuli. So-called "odorants" for higher vertebrates, which are usually uncharged and hydrophobic compounds, were chosen as chemical stimuli for a model study of the olfactory response. The fluorescence intensity of Rh6G started to increase at the chemotactic thresholds of the stimuli, indicating that negative chemotaxis of T. pyriformis to the hydrophobic stimuli is induced by depolarization of the cell. The fluorescence intensity of DPH increased in close association with chemoreception of the hydrophobic stimuli. The increase in the fluorescence intensity was ascribed mainly to uptake of DPH, suggesting that gross structural changes of the surface membrane occur with the reception of hydrophobic stimuli. The membrane fluidity determined by fluorescence polarization of DPH increased in close association with the chemoreception of the hydrophobic stimuli. Inorganic salts such as NcCl, KCl, and CaCl2 did not change the DPH fluorescence intensity or the fluorescence polarization, although these stimuli induced depolarization and negative chemotaxis in T. pyriformis.

Animals↗

[Correlation between the lymphocyte surface potential and membrane potential in various physiological states].

Present work shows that changes in the surface potential (SP) are linearly connected with alterations of the cell membrane potential (MP) at three physiological states of the organism: control (C), induced cancerogenesis (IC) and total reaction of the organism to damage (TRD). In the control greater SP changes are corresponded with the least MP changes. When SP is changed almost by 100%, MP change is about 20%. In the course of TRD development a reverse relationship is observed: 20% change of the charge is corresponded by a practically 100% change of MP. The relationship indices of MP and SP change in the course of TRD and in the control are equal: with a decrease of MP the lymphocyte SP is also decreased. At the initial stages of IC development the relationship index of MP with SP is changed. In this case a 20% decrease of SP is accompanied by a 60% increase of MP.

Anilino Naphthalenesulfonates↗

Intracellular potassium activity, potassium equilibrium potential and membrane potential of carotid body glomus cells.

The intracellular potassium activity (ai(K)) of glomus cells in isolated rabbit carotid bodies was measured with potassium ion selective microelectrodes (K+ electrodes). The measurements yielded a mean ai(K) value of 33.0 mM in Hepes-buffered Tyrode's solution equilibrated with 100% O2. This value is significantly higher than that predicted by assuming that K+ ions are passively distributed across the membrane of glomus cells. The relationship between the membrane potential (EM) and the equilibrium potential of K+ ions (EK) at various extracellular potassium activities (ao(K] suggests that K+ ions are not involved in the maintenance of the carotid body glomus cell EM.

Animals↗

Human fetal membranes: investigations on membrane potentials and membrane 24Na permeability in vitro and the possible involvement of acetylcholine.

Amnion, chorion and amniochorion from human term placentae were mounted as a membranous partition in a suitable chamber. The existence of membrane potentials was investigated, but no evidence for their generation was seen either in control Earle's buffer or subsequent to the addition of 100 microM acetylcholine (ACh). Sodium movement was measured under isosmotic conditions by assessing the rate of radiosodium exchange down its radioactivity gradient. These measurements revealed that sodium exchange was independent of membrane orientation, occurred by diffusion and was unresponsive to the addition of ACh.

Acetylcholine↗

Cell suspensions from porcine olfactory mucosa. Changes in membrane potential and membrane fluidity in response to various odorants.

A suspension of olfactory epithelial cells was prepared from porcine olfactory mucosa and the physiological functions of the suspension were examined. The membrane potential of the cell suspension, which was monitored by measuring the fluorescence changes of rhodamine 6G, was depolarized by an increase in the K+ concentration in the external medium. Various odorants depolarized the cell suspension in a dose-dependent fashion. The magnitude of depolarization by odorants was either unchanged or slightly increased by a reduction of the concentration of Na+, Ca2+, and Cl- in the external medium, which suggests that changes in the permeabilities of specific ions are not involved in depolarization by odorants. The application of various odorants to the cell suspension induced changes in the membrane fluidity at different sites of the membrane that were monitored with various fluorescent dyes [8-anilino-1-naphthalene sulfonate, n-(9-anthroyloxy) stearic acids, 12-(9-anthroyloxy) oleic acid, and (1,6-diphenyl-1,3,5-hexatriene)], which suggests that the odorants having different odors are adsorbed on different sites in the membrane. On the basis of these results, a possible mechanism of odor discrimination is discussed.

Animals↗

Effects of halothane on membrane potentials and membrane ionic currents in single bullfrog atrial cells.

Halothane exerts negative inotropic and negative chronotropic actions on the isolated heart in experimental animals. In order to assess directly the actions of halothane in myocardium, we studied the effects of halothane on membrane potentials and transmembrane ionic currents in single isolated frog atrial cells obtained by the enzymatic dissociation method. The results show: (a) that the action potential is prolonged and its plateau phase and overshoot are depressed, but the resting potential remains unchanged; (b) that there is a significant inhibition of a time- and voltage-dependent outward K+ current and a slow inward Ca2+ current, with a slight decrease of a fast inward Na+ current following halothane (1.0-4.0%) application; and that halothane has no effect on another K+ current, time-independent current.

Animals↗

Interactions of cell volume, membrane potential, and membrane transport parameters.

Equations have been written and solved that describe for animal cells the relationships among membrane transport, cell volume, membrane potential, and distribution of permeant solute. The essential system consists of n + 2 equations, where n is the number of permeant solute species. The n of the equations are the n transport equations for the permeant species, one for each species. The other two equations are statements of 1) the condition for bulk electroneutrality inside the cell and 2) the condition for isotonicity between the interior and exterior of the cell. Numerical solutions have been obtained in both the steady-state and time-varying cases for transport equations that are physically and phenomenologically reasonable. In addition to numerical solutions analytic expressions are presented that show the ranges of membrane parameters essential for volume regulation; for values of membrane parameters beyond explicitly defined bounds, the equations do not have real, positive solutions for cell volume.

Animals↗

In vitro action of bombesin on amylase secretion, membrane potential, and membrane resistance in rat and mouse pancreatic acinar cells. A comparison with other secretagogues.

Bombesin caused depolarization of rat or mouse pancreatic acinar cell membrane, reduction of membrane resistance, and a steep rise in amylase output from superfused pancreatic fragments. These effects were similar to those previously described for acetylcholine, cholecystokinin, and gastrin. The dose-response curves for these three effects of bombesin were very similar, with effects being detectable at concentrations of about 30 pM and maximal effects at about 10 nM. The equilibrium potential for the membrane action of bombesin, i.e., the membrane potential at which bombesin did not cause any change in membrane potential, was -16 mV. Similar values for equilibrium potential were obtained with acetylcholine, caerulein and pentagastrin. Bombesin in the higher dose range (10 nM) caused electrical uncoupling of acinar cells within an acinus, i.e., a marked increase in junctional membrane resistance. Similar uncoupling effects were observed after acetylcholine, caerulein, and pentagastrin stimulation. In conclusion, bombesin acts on the pancreatic acinar plasma membrane in exactly the same way as acetylcholine and cholecystokinin-pancreozymin. The electrical uncoupling caused by stimulation is evidence for an increase in cytosol free calcium ion concentration.

Acetylcholine↗

Chromium (VI)-induced production of reactive oxygen species, change of plasma membrane potential and dissipation of mitochondria membrane potential in Chinese hamster lung cell cultures.

OBJECTIVE: To examine whether Reactive Oxygen Species (ROS) is generated, and whether plasma membrane potential and mitochondrial membrane potential are depolarized in Chinese Hamster Lung (CHL) cell lines exposed to Cr (VI). METHODS: CHL cells were incubated with Cr(VI) at 10 mumol/L, 2.5 mumol/L, 0.65 mumol/L for 3 and 6 hours, respectively. The production of ROS was performed by using 2,7-dichlorofluorescin diacetate; The changes in plasma membrane potential were estimated using fluorescent cationic dye DiBAC4; And the changes in mitochondria membrane potential were estimated using fluorescent dye Rhodamine 123. RESULTS: The ROS levels in CHL cells increased in all treated groups compared with the control group (P < 0.01); The plasma membrane potential and mitochondrial membrane potential in CHL cells dissipated after incubated with Cr(VI) at 10 mumol/L for 3 hours and 6 hours (P < 0.01), at 2.5 mumol/L for 6 hours (P < 0.01 or 0.05). CONCLUSION: Cr(VI) causes the dissipation of plasma membrane potential and mitochondrial membrane potential in CHL cell cultures, and Cr(VI)-induced ROS may play a role in the injuries.

Animals↗

The mechanism of Na+-L-lactate cotransport by brush border membrane vesicles from horse kidney: analysis of rapid equilibrium kinetics in absence of membrane potential.

Membrane transport of lactate was studied using vesicles prepared from horse kidney brush border. It is shown that the carrier-mediated transport of L-lactate is Na dependent and the D-lactate Na dependence seems weaker than the L stereoisomer. Augmented transport rate is observed following imposition of an artificial chemical Na+ gradient of electrical potential difference. The effect of Na+ chemical gradient on the L-lactate uptake was analyzed using membrane vesicles incubated with 50 mM KCl and valinomycin in order to short circuit any contribution of transmembrane electrical potential to the transport. Kinetics results and principally the absence of linearity between l/v (lactate) versus l/Na+ show that the L-lactate transport mechanism fit the properties of an ordered process with two Na+ ions cotransported with one L-lactate anion. The L-lactate and sodium affinities (Km) determined under Na+ chemical gradient were 1.05 and 48 mM for L-lactate and Na, respectively. The sodium activation was shown to be highly cooperative with a Hill number of 2 although no "sigmoidal" activation effect was observed.

Animals↗