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F Lacaz-Vieira

Publications and source records attributed to F Lacaz-Vieira.

At least 19 recordsLinked to original sources

Lanthanum effect on the dynamics of tight junction opening and closing.

We present a comparative study in frog urinary bladders (FUB) and A6 cell monolayers (A6CM) on the effect of La3+ on tight junction (TJ) dynamics. These tissues react similarly to changes of basolateral Ca2+ (Ca(2+)bl), while responding differently to the action of La3+(bl). In FUB, La(3+)bl shows a Ca(2+)-antagonistic effect that promotes TJ opening in the presence of a normal Ca(2+)bl concentration. In A6CM, in contrast, La(3+)bl always shows a clear Ca(2+)-agonistic effect. The fact that a concentration of La(3+)bl one fifth of the normal Ca(2+)bl leads in FUB to TJ opening and in A6CM to a complete recovery of the TJ seal indicates a high affinity of La3+ for the Ca(2+)-binding sites in both tissues. In FUB, apical La3+ (La(3+)ap) exhibits, differently from its basolateral effect, an evident Ca(2+)-agonistic effect, suggesting a dual effect of La3+, depending on which side of the bladder La3+ is applied. In A6CM La(3+)ap has a Ca(2+)-agonistic effect similar to La(3+)bl. The effects of La(3+)bl in FUB and in A6CM are consistent, according to our previous publications, with La3+ acting antagonistically or agonistically, respectively, on the Ca2+ binding sites of zonula adhaerens. Despite the fact that the effect of La(3+)ap is clear in both tissues, its site of action is yet to be determined. Protonation of the Ca(2+)-binding sites causes a decrease of its agonistic effect on A6CM, consistent with a negatively charged binding site. In A6CM La3+ apparently replaces Ca2+, mimicking the effect of Ca2+ triggering the cascade of events leading to TJ closure. In FUB, La3+ interacts with the binding sites, dislodging Ca2+, with a high affinity, but this interaction is inadequate to initiate or sustain the process of junction closing. Possibly, the difference between the two preparations resides in subtle conformation differences of the outer segment of E-cadherin molecules.

Animals↗

Pulses of cell Ca(2+) and the dynamics of tight junction opening and closing.

A mathematical modeling of tight junction (TJ) dynamics was elaborated in a previous study to better understand the dynamics of TJ opening and closing, as well as oscillations of TJ permeability that are observed in response to changes of extracellular Ca(2+) levels. In this model, TJs were assumed to be specifically controlled by the Ca(2+) concentration levels at the extracellular Ca(2+) binding sites of zonula adhaerens. Despite the fact that the model predicts all aspects of TJ dynamics, we cannot rule out the likelihood that changes of intracellular Ca(2+) concentration (Ca(2+) (cell)), which might result from changes \ of extracellular Ca(2+) concentration (Ca(2+) (extl)), contribute to the observed results. In order to address this aspect of TJ regulation, fast Ca(2+)-switch experiments were performed in which changes of Ca(2+) (cell) were induced using the Ca(2+) ionophore A23187 or thapsigargin, a specific inhibitor of the sarco-endoplasmic reticulum Ca(2+)-ATPase. The results indicate that the ionophore or thapsigargin per se do not affect basal tissue electrical conductance ( G), showing that the sealing of TJs is not affected by a rise in Ca(2+) (cell). When TJs were kept in a dynamic state, as partially open structures or in oscillation, conditions in which the junctions are very sensitive to disturbances that affect their regulation, a rise of Ca(2+) (cell) never led to a decline of G, indicating that a rise of Ca(2+) (cell) does not trigger per se TJ closure. On the contrary, always the first response to a rise of Ca(2+) (cell) is an increase of G that, in most cases, is a transient response. Despite these observations we cannot assure that a rise of Ca(2+) (cell) is without effect on the TJs, since an increase of Ca(2+) (cell) not only causes a transient increase of G but, in addition, during oscillations a rise of Ca(2+) (cell) induced by the Ca(2+) ionophore transiently halted the oscillatory pattern of TJs. The main conclusion of this study is that TJ closure that is observed when basolateral Ca(2+) concentration (Ca(2+) (bl)) is increased after TJs were opened by Ca(2+) (bl) removal cannot be ascribed to a rise of Ca(2+) (cell) and might be a consequence of Ca(2+) binding to extracellular Ca(2+) sites.

Animals↗

Protein kinase inhibitors and the dynamics of tight junction opening and closing in A6 cell monolayers.

This study focuses, in A6 cell monolayers, on the role of protein kinases in the dynamics of tight junction (TJ) opening and closing. The early events of TJ dynamics were evaluated by the fast Ca++-switch assay (FCSA), which consisted of opening the TJs by removing basolateral Ca++ (Ca++(bl)), and closing them by returning Ca++(bl) to normal values. Changes in TJ permeability can be reliably gauged through changes of transepithelial electrical conductance (G) determined in the absence of apical Na+. The FCSA allows the evaluation of the effects of drugs and procedures acting upon the mechanism controlling the TJs. The time courses of TJ opening and closing in response to the FCSA followed single-exponential time courses. A rise of apical Ca++ (Ca++(ap))causes a reduction of TJ opening rate in an FCSA or even a partial recuperation of G, an effect that is interpreted as mediated by Ca++(ap) entering the open TJs. Protein kinase C (PKC) inhibition by H7 at low concentrations caused a reduction of the rate of junction opening in response to Ca++(bl) removal, without affecting junction closing, indicating that PKC in this preparation is a key element in the control of TJ opening dynamics. H7 at 100 microm completely inhibits TJ opening in response to Ca++(bl) withdrawal. Subsequent H7 removal caused a prompt inhibition release characterized by a sharp G increase, a process that can be halted again by H7 reintroduction into the bathing solution. Differently from the condition in which Ca++ is absent from the apical solution, in which H7 halts the process of G increase in response to a FCSA, when Ca++ is present in the apical solution, addition of H7 during G increase in an FCSA not only induces a halt of the G increase but causes a marked recuperation of the TJ seal, indicated by a drop of G, suggesting a cooperative effect of Ca++ and H7 on the TJ sealing process. Staurosporine, another PKC inhibitor, differently from H7, slowed both G increase and G decrease in an FCSA. Even at high concentrations (400 nm) staurosporine did not completely block the effect of Ca++ withdrawal. These discrepancies between H7 and staurosporine might result from distinct PKC isoforms participating in different steps of TJ dynamics, which might be differently affected by these inhibitors. Immunolocalizations of TJ proteins, carried out in conditions similar to the electrophysiological experiments, show a very nice correlation between ZO-1 and claudin-1 localizations and G alterations induced by Ca++ removal from the basolateral solution, both in the absence and presence of H7.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

Tight junction dynamics: oscillations and the role of protein kinase C.

The present study aimed to characterize the role of protein kinase C (PKC) on the dynamics of tight junction (TJ) opening and closing in the frog urinary bladder. The early events of TJ dynamics were evaluated by the fast Ca(++) switch assay (FCSA), which consisted in opening the TJs by removing basolateral Ca(++) ([Ca(++)](bl)), and closing them by returning [Ca(++)](bl) to normal values. Changes in TJ permeability can be reliably gauged through changes of transepithelial electrical conductance (G) determined in the absence of apical Na(+). The FCSA allows the appraisal of drugs and procedures acting upon the mechanism controlling the TJs. The time courses of TJ opening and closing in an FCSA were shown to follow single exponential time courses. PKC inhibition by H7 (100 microm) caused a reduction of the rate of junction opening in response to removing [Ca(++)](bl), without affecting junction closing, indicating that PKC is a key element in the control of TJ opening dynamics in this preparation. H7 at 250 microm almost completely inhibits TJ opening in response to basolateral Ca(++) withdrawal. Subsequent H7 removal caused a prompt inhibition release characterized by a sharp G increase which, however, once started cannot be stopped by H7 reintroduction, Ca(++) being necessary to allow TJ recovery. A step rise of apical Ca(++) concentration ([Ca(++)](ap)) causes a reduction of the rate of TJ opening in a FCSA, an effect that is believed to be mediated by apical Ca(++) entering the open TJs. The specific condition of having Ca(++) only in the apical solution and the TJs located midway between the Ca(++) source (apical solution) and the Ca(++)-binding sites presumably located at the zonula adhaerens, might configure a situation in which a control feedback loop is set up. A rise of [Ca(++)](ap) during the phase of G increase in an FCSA causes a transient recovery of G followed by a subsequent escape phase where G increases again. Oscillations of G also appear in response to a rise of apical Ca(++). Both escape and oscillations result from the properties of the TJ regulatory feedback loop. In conclusion, the present results indicate that PKC plays a key role in TJ opening in response to extracellular Ca(++) withdrawal without major effect on the reverse process. In addition, PKC inhibition by H7 not only prevents TJ opening in response to basolateral Ca(++) removal but induces a prompt blockade of TJ oscillations induced by apical Ca(++), oscillations which reappear again when H7 is removed.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

Small synthetic peptides homologous to segments of the first external loop of occludin impair tight junction resealing.

This study shows that resealing of opened tight junctions (TJs) is impaired by interaction with oligopeptides homologous to the external domain of chick occludin. The experiments were carried out with confluent A6 cell monolayers grown on collagen supports under stable transepithelial electrical resistance (TER). The monolayers were bathed on the apical side with a 75 mm KCl solution and on the basolateral side by NaCl-Ringer's solution. TJ opening was induced by basolateral Ca2+ removal and was characterized by a marked drop of TER. The reintroduction of Ca2+ triggered junction resealing as indicated by an elevation of TER to control values. Custom-made peptides SNYYGSGLSY (corresponding to the residues 100 to 109) and SNYYGSGLS (residues 100 to 108), homologous to segments of the first external loop of chick occludin molecule, impaired junction resealing when the peptides were included in the apical bathing fluid (concentrations in the range of 0.5 to 1.5 mg/ml). Peptide removal from the apical solution usually triggered a slow recovery of TER, indicating a slow recovery of the TJ seal. Changes in localization of ZO-1, a cytoplasmic protein that underlies the membrane at the TJs, were evaluated immunocytochemically following Ca2+ removal and reintroduction. The presence or absence of the oligopeptides showed no influence on the pattern of change of ZO-1 localization. These observations support the hypothesis that the TJ seal results from the interaction of specific homologous segments of occludin on the surface of adjacent cells. Additionally, our results show that small peptides homologous to segments of the occludin first external loop can be used as specific reagents to manipulate the permeability of tight junctions.

Animals↗

An automatic temperature-control system for solutions in free flow.

We describe a temperature-control system for solutions in free flow, suitable for electrophysiological or optical studies of isolated cells, natural epithelia or cell culture monolayers. The system is small enough to be located close to the preparation and was designed specifically to be coupled to the inlets of a modified, continuous-flow Ussing chamber, allowing rapid change of the solutions bathing tissue surfaces. The system consists of a highly compact monoblock heating unit and a control circuit. Solutions from different reservoirs, kept at room temperature or lower (from an ice bath), can be rapidly switched at the inlet of the heating unit by manually or electrically actuated microvalves without affecting the temperature of the fluid leaving the heating unit. The control unit consists of a bead thermistor firmly placed close to the heating unit outlet and an electronic circuit which is basically a proportional controller. This unit continuously regulates the electric current through the Ni-Cr heater, keeping the temperature of the fluid leaving the heating unit constant at a preset value. The system allows control of fluid temperature (normally 37 degrees C) for flow rates in the range of 1.0 ml/min to 12 ml/min. However, the temperature can be set at any value above that of the incoming fluid.

Cell Separation↗

Calcium site specificity. Early Ca2+-related tight junction events.

The molecular mechanisms by which Ca2+ and metal ions interact with the binding sites that modulate the tight junctions (TJs) have not been fully described. Metal ions were used as probes of these sites in the frog urinary bladder. Basolateral Ca2+ withdrawal induces the opening of the TJs, a process that is abruptly terminated when Ca2+ is readmitted, and is followed by a complete recovery of the TJ seal. Mg2+ and Ba2+ were incapable of keeping the TJ sealed or of inducing TJ recovery. In addition, Mg2+ causes a reversible concentration-dependent inhibition of the Ca2+-induced TJ recovery. The effects of extracellular Ca2+ manipulation on the TJs apparently is not mediated by changes of cytosolic Ca2+ concentration. The transition elements, Mn2+ and Cd2+, act as Ca2+ agonists. In the absence of Ca2+, they prevent TJ opening and almost immediately halt the process of TJ opening caused by Ca2+ withdrawal. In addition, Mn2+ promotes an almost complete recovery of the TJ seal. Cd2+, in spite of stabilizing the TJs in the closed state and halting TJ opening, does not promote TJ recovery, an effect that apparently results from a superimposed toxic effect that is markedly attenuated by the presence of Ca2+. The interruption of TJ opening caused by Ca2+, Cd2+, or Mn2+, and the stability they confer to the closed TJs, might result from the interaction of these ions with E-cadherin. Addition of La3+ (2 microM) to the basolateral Ca2+-containing solution causes an increase of TJ permeability that fully reverses when La3+ is removed. This effect of La3+, observed in the presence of Ca2+ (1 mM), indicates a high La3+ affinity for the Ca2+-binding sites. This ability of La3+ to open TJs in the presence of Ca2+ is a relevant aspect that must be considered when using La3+ in the evaluation of TJ permeability of epithelial and endothelial membranes, particularly when used during in vivo perfusion or in the absence of fixatives.

Animals↗

Tight junction dynamics in the frog urinary bladder.

In a previous study in frog skin (Castro et al., J. Memb. Biol. 134:15-29, 1993), it was shown that TJs experimentally disrupted by a selective deposition of BaSO4 could be resealed upon addition of Ca2+ to the apical solution; in the absence of apical Ca2+, the normal Ca2+ activity of the Na2SO4-Ringer's bathing the basolateral side was not able to induce TJ resealing. We now show that apical Ca2+ also activates the TJ sealing mechanism in frog urinary bladders. Three known procedures were utilized to increase TJ permeability, all in the absence of apical Ca2+: (i) exposure to high positive transepithelial clamping potentials; (ii) exposure of the apical surface to hypertonic solutions; and (iii) selective deposition of BaSO4 in the TJs. The resealing of the TJs was promoted by raising the concentration of Ca2+ in the apical solution. This effect of Ca2+ is not impaired by the presence of Ca2+ channel blockers (nifedipine, verapamil, Mn2+ or Cd2+) in the apical solution, indicating that junction resealing does not depend on Ca2+ entering the cells through the apical membrane. TJ resealing that occurs in response to raised apical Ca2+ most likely results from a direct effect of Ca2+, entering the disrupted TJs from the apical solution and reaching the zonula adhaerens Ca2+ receptors (E-cadherins). Protein kinase C (PKC) must play a significant role in the control of TJ assembly in this tight epithelia since the PKC inhibitor (H7) and the activator (diC8) markedly affect TJ recovery after disruption by apical hypertonicity. H7 treated tissues show marked recuperation of conductance even in the absence of apical Ca2+. In contrast, diC8 prevents tissue recuperation which normally occurs after addition of Ca2+ to the apical solution.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

pH- and voltage-dependent conductances in toad skin.

The present study focuses on two closely related topics on ion conductance in toad skins: (i) the interaction of apical protons with the apical voltage-dependent Cl(-)-activated channels of the mitochondria-rich cells, and (ii) the description and characterization of a novel subject, a voltage-dependent H(+)-activated conductance. The Cl- conductance (GCl) is activated by tissue hyperpolarization (which leads to apical membrane depolarization) and the presence of Cl- ions in the apical solution. Increasing apical proton concentration (from pH 8 to pH 4) impairs the process of activation of the Cl- conductive pathway, slowing the kinetics of It activation and reducing the steady-stage values of Gt and It. This effect is markedly voltage-dependent since no effect is seen at Vt = -100 mv and is fully present at -50 mV. The voltage-dependence of the pH effect suggests that the critical protonation sites of the apical Cl- channels are not freely exposed to the apical solution but dwell within the membrane electric field. An also coherent interpretation is that titration of apical proton binding sites affects the gating of the voltage-dependent Cl- channels, shifting the conductance-vs.-voltage curve to more negative clamping potentials. Tissue conductance in the absence of apical Cl- ions can be importantly affected by the pH of the apical solution (pHa), the effect being markedly dependent on the clamping potential. Generally speaking, the effect of rising apical proton concentration can be conspicuous at negative clamping potentials, while at positive potentials changes in tissue conductance were never observed. For a clamping potential of -100 mV, a turning point somewhere between pHa = 4 and pHa = 3 was observed. Apical acidification to pH 4 has no effect upon tissue conductance while apical acidification to pH 3 leads to a marked, slow and reversible increase of tissue conductance. A striking similitude exists between the voltage-dependent Cl(-)-gated conductance and the voltage-dependent proton-gated conductance regarding: (i) slow time courses of activation and deactivation, (ii) requirement for a negative clamping potential and the presence of a specific ion species in the apical solution for activation to take place, (iv) instantaneous ohmic behavior, and (v) steady-state rectification. However, so far the results do not permit one to conclude definitely that the voltage-dependent Cl(-)-gated conductance and the voltage-dependent proton-gated conductance share a common pathway.

Animals↗

Deposition of BaSO4 in the tight junctions of amphibian epithelia causes their opening; apical Ca2+ reverses this effect.

Selective deposition of BaSO4 in the tight junctions (TJs) of frog skins led to profound and reversible functional alterations of these structures, as revealed by changes of tissue conductance (G), clamping current (I), and fluxes of extracellular markers (sulfate (JSO4) and sucrose (JSUC)). Experiments were performed with nominally Ca(2+)-free simple salt solutions on the apical side (usually KCl) and Na2SO4-Ringer on the inner side of skins. The deposition of BaSO4 in the TJs was obtained by diffusion and/or migration through the paracellular path of Ba2+ from the apical solution and SO4(2-) from the inner solution. A brief presence (2 to 6 min) of apical Ba2+ (Ba2+ pulse) is followed (i.e., when Ba2+ is removed from the apical fluid) by a large increase of G, I, JSO4 and JSUC, above pre-Ba2+ levels. These attain a steady state within 15 to 30 min (overshoot phase), characterizing a conspicuous increase of the paracellular permeability. During the overshoot phase, a second Ba2+ pulse blocks the paracellular route while apical Ba2+ is present, leading to a new and larger overshoot when the Ba2+ pulse is terminated. Addition of apical Ca2+ triggers the resealing of the TJs, resulting in a full recovery of G, I, JSO4 and JSUC. This Ca(2+)-induced recovery persists when apical Ca2+ is removed. The presence of a normal Ca2+ concentration in the inner bathing Ringer does not induce the recovery process. Tissues remain viable after being submitted to the Ba2+ treatment and the subsequent overshoot. Experiments performed in the urinary bladder of Rana catesbeiana and skins and urinary bladders of Bufo marinus indicate that Ba2+ effect can also be elicited in these tissues. The above results seem to report general properties of the TJs. Incidentally, they warn about the use of Ba2+ as an ion channel blocker in epithelial membranes in association with SO4(2-)-containing solutions on the contralateral side.

Animals↗

Effect of mucosal halides on Ca(2+)-blockable currents through the skin of Rana ridibunda.

The present study deals with the interaction of mucosal anions with apical Ca(2+)-blockable cation channels of the skin of Rana ridibunda. The intracellular potential was depolarized by exposing the basolateral membranes to K2SO4 Ringer solution. The apical bathing medium consisted of nominal Ca(2+)-free K+ or Na+ solutions with SO4(2-), Cl-, Br-, or I- as the major anion. The effects of mucosal anion substitutions were studied by analyzing 1) the fluctuation in K+ current across the apical membrane driven by imposed transepithelial clamping potentials and 2) alterations of the transepithelial current (It) and conductance (Gt) as well as the Lorentzian parameters in response to anion substitution in the mucosal bathing solution. It and current noise spectra were recorded at different transepithelial potentials (Vt). A Lorentzian component was present in the power density spectrum when Vt was clamped at mucosa-positive voltages. Such noise components were never observed with mucosa-negative potentials. These findings suggest a rectifying behavior of the transepithelial cation currents. The Lorentzian noise component and the inward-oriented cation currents were depressed by the addition of micromolar concentrations of Ca2+ to the apical solutions as well as by replacing mucosal K+ or Na+ by N-methyl-D-glucamine. The Ca(2+)-blockable current and Lorentzian noise plateau (So) were gradually increased by raising Vt. Both parameters, as well as the corner frequency (fc), depended strongly on the major anion species in the apical solution; replacing mucosal SO4(2-) by one of the halides tested reduced fc and elevated So, It, and Gt considerably.

Animals↗

Roles of external and cellular Cl- ions on the activation of an apical electrodiffusional Cl- pathway in toad skin.

This study is concerned with the short-circuit current, Isc, responses of the Cl(-)-transporting cells of toad skin submitted to sudden changes of the external Cl- concentration, [Cl]o. Sudden changes of [Cl]o, carried out under apical membrane depolarization, allowed comparison of the roles of [Cl]o and [Cl]cell on the activation of the apical Cl- pathways. Equilibration of short-circuited skins symmetrically in K-Ringer's solutions of different Cl- concentrations permitted adjustment of [Cl]cell to different levels. For a given Cl- concentration (in the range of 11.7 to 117 mM) on both sides of a depolarized apical membrane, this structure exhibits a high Cl- permeability, P(Cl)apical. On the other hand, for the same range of [Cl]cell but with [Cl]o = 0, P(Cl)apical is reduced to negligible values. These observations indicate that when the apical membrane is depolarized P(Cl)apical is modulated by [Cl]o; in the absence of external Cl- ions, intracellular Cl- is not sufficient to activate P(Cl)apical. Computer simulation shows that the fast Cl- currents induced across the apical membrane by sudden shifts of [Cl]o from a control equilibrium value strictly follow the laws of electrodiffusion. For each experimental group, the computer-generated Isc versus [( Cl]cell - [Cl]o) curve which best fits the experimental data can only be obtained by a unique pair of P(Cl)apical and Rb (resistance of the basolateral membrane), thus allowing the calculation of these parameters. The electrodiffusional behavior of the net Cl- flux across the apical membrane supports the channel nature of the apical Cl- pathways in the Cl(-)-transporting cells. Cl- ions contribute significantly to the overall conductance of the basolateral membrane even in the presence of a high K concentration in the internal solution.

Animals↗

Comparative roles of voltage and Cl ions upon activation of a Cl conductive pathway in toad skin.

(1) Combined use of external Cl concentration pulses and apical membrane depolarization permitted to compare the roles of apical voltage and Cl ions upon the activation of a skin Cl conductance, GCl, which is assumed to reflect activation of the permeability of a Cl pathway. (2) Apical membrane depolarization induced by skin hyperpolarization, or by short-circuiting skins with high K Ringer's on the inner side, failed to activate GCl in the absence of external Cl, GCl remaining negligible. Under apical membrane depolarization, a step elevation of [Cl]0 slowly activated GCl as characterized by a sigmoidal current response of slow onset concomitant to a slow conductance increase. External Cl removal had the reverse effect, slowly inactivating GCl. (3) With the apical membrane in the normal polarized state, a step increase of [Cl]0 slowly activated GCl to submaximal values. This indicates that the interaction of Cl ions with the apical membrane partially activates GCl in the absence of apical membrane depolarization. (4) Activation of GCl was interpreted on the basis of a direct effect of Cl ions upon the apical membrane, having been attributed to the apical membrane voltage an indirect role. Voltage would affect the Cl distribution across the apical membrane, and, as a result, the Cl concentration at a proposed regulatory site which modulates the apical membrane permeability to Cl ions.

Animals↗

Chloride transport in amphibian skin: a review.

1. The transport of Cl- ions across amphibian skin is a complex subject since it involves different mechanisms such as electrodiffusion, exchange diffusion and active transport. Cl- translocation occurs predominantly through a transcellular route, the paracellular pathway being of lesser importance. 2. Transcellular Cl- passage takes place mainly through specialized cells, the mitochondria-rich cells. The principal cells of the epithelium, the cells of the stratum granulosum, which handle most of the active transepithelial Na+ transport, have been shown to play an insignificant role in transepithelial Cl- transport. 3. It is accepted that the main limiting barrier to transepithelial Cl- movement is the apical membrane of the outermost epithelial cells. The apical membrane of the mitochondria-rich cells seems to be the site of a Cl- permeability which is modulated by voltage and Cl- ions.

Animals↗

Sodium flux in the apical membrane of the toad skin: aspects of its regulation and the importance of the ionic strength of the outer solution upon the reversibility of amiloride inhibition.

Injection of small pulses of concentrate solutions of salts or drugs into the outer bathing fluid led to sudden increases of its solute concentration. Vigorous stirring of the outer bathing solution was used to minimize the thickness of the unstirred layer adjacent to the outer skin surface. Pulses of 1 M NaCl injected into the outer compartment induced sharp increases of the SCC following a time course variable with the magnitude of the pulse and the particular condition of each skin. Comparison of the spontaneous decline of the SCC with the decline induced by a small dose of amiloride, where an increase in R was observed, indicates that the spontaneous decline cannot be explained simply as a reduction of the Na permeability of the apical membrane by self-inhibition of feedback inhibition of the apical membrane Na channels. Reduction of the driving force for Na movement into the epithelial cells must play an important role in the process. Reversibility of the amiloride inhibition of the SCC was highly dependent upon the ionic strength of the solution used to rinse and wash out the inhibitor from the outer skin surface. With H2O, the amiloride molecules washed out slowly as compared to NaCl or KCl solutions. Na or K have the same ability to dislodge the amiloride molecules from their binding sites. This effect is apparently of a purely electrostatic nature.

Amiloride↗

Hydrosmotic salt effect in toad skin: urea permeability and glutaraldehyde fixation of water channels.

The "hydrosmotic salt effect" (HSE), the reversible dependence of skin osmotic water permeability upon the ionic concentration of the outer bathing solution, is known to induce the appearance of sucrose-impermeable pathways in the apical membrane of the outermost epithelial cell layer. Diffusional 14C-urea permeability, measured in the Jv = O condition to prevent solvent drag effects, indicates that the newly formed pathways induced by HSE are narrower than the size of the urea molecule, being therefore highly selective for water molecules. After mild glutaraldehyde (2% solution) fixation of the apical membrane structures, the water channels induced by the HSE are no longer affected by the ionic strength of the outer solution. This indicates that the channel-forming membrane protein can be fixed in different configurations with the water channels in the open or closed states.

Animals↗

Glycerol-induced baroprotection in erythrocyte membranes.

A system for applying hydrostatic pressures up to 10,000 atm upon cell suspensions for time intervals from a few seconds to several minutes is described. The K+ content of toad red blood cells was used as an indication of the degree of membrane injury induced by the hyperbaric condition. It is practically not affected for pressures up to 2000 atm in experiments lasting 3 or 10 min. falling markedly for pressures of 5000 or 8000 atm. The duration of the applied pressure and its intensity are additive regarding the magnitude of the baroinjury. Glycerol, a cryoprotective agent. at 4.0 M, confers partial but significant baroprotection, which is characterized by a smaller decline of the cell K+ content of the glycerol-treated cells in comparison to the untreated cells, submitted to the same conditions of pressure and time. Baroinjury is compatible with a reversible mechanism. However, irreversible membrane damage occurs for a pressure of 8000 atm applied for 10 min. Baroinjury is discussed in terms of alterations of the lipid leaflet or of membrane proteins, and the mechanism of baroprotection in terms of stabilization of membrane components, under the effect of high pressure, by the association of glycerol with the proteins or the phosphate head groups of phospholipids.

Animals↗

Vanadate and ouabain: a comparative study in toad skin.

In this study we compare the effects of two inhibitors of the Na,K-ATPase, ouabain and vanadate, upon transport properties of the isolated short-circuited toad skin: The main conclusions are: Both inhibitors induce a similar decline in short-circuit current (SCC). They differ regarding skin electrical resistance (R). Ouabain induces an increase in resistance that, after some delay, builds up slowly after its addition to the preparation, while vanadate causes a fast increase in resistance that remains constant for most of the experimental period. Vanadate, but not ouabain, promotes an unspecific increase in skin permeability characterized by a delayed and progressive rise of 42K (JK eff) and 14C sucrose (J suc eff) effluxes. Vanadate effect upon skin permeability, as measured by JK eff, is not affected by pre-treating the skin with DIDS, a stilbene derivative, indicating that anion-exchange is not an important step for the entrance of vanadate into the epithelial cells to trigger its effect. Vanadate effect upon JK eff is also not affected by previous ouabain inhibition of the Na,K-ATPase, showing that this effect is not mediated by the inhibition of this enzyme. Vanadate action in toad skin seems to occur at junctional structures opening paracellular routes. A possible mechanism for the effect of vanadate is discussed in terms of cytosolic Ca2+ balance, cytoskeleton and their interplay with the sealing of tight junctions.

Animals↗