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1.
Summary Transepithelial current fluctuations were recorded inNecturus gallbladder, clamped at negative as well as positive potentials up to 64 mV. With NaCl-Ringer's (+10mm TAP) on both sides a mucosa-negative potential enhanced the relaxation noise component, present at zero potential, and produced peaking in the power spectrum at potentials above –36mV. Concomitantly at these potentials an inductive as well as a capacitive low-frequency feature appeared in the impedance locus. Clamping at positive potentials of 18 mV suppressed the relaxation noise component. At potentials above 51mV the spectral values increased predominantly at low frequencies. In this case the power spectrum showed only a 1/f
noise component. The experiments confirm the previous finding that a K+ efflux through fluctuating apical K+ channels exists under normal conditions. With serosal KCl-Ringer's the initial Lorentzian component was enhanced at negative but suppressed at positive potentials. The increase at negative potentials was less pronounced than in experiments with NaCl-Ringer's on both sides, indicating saturation of the fluctuating K+ current component. With mucosal KCl-Ringer's a negative potential depressed the initial relaxation noise component, whereas it was enhanced at +18 mV clamp potential. In the latter case an additional Lorentzian component became apparent at higher frequencies. At potentials of 36 mV and above the low-frequency Lorentzian disappeared whereas the corner frequency of the high-frequency component increased. The latter experiments demonstrate that the relaxation noise component inNecturus gallbladder consists of two superimposed Lorentzians. As the relaxation times of these two components behave differently under an electrical field, there may exist two different types of K+ channels. It is demonstrated that peaking in the plateau of power spectra can be explained by frequency-dependent attenuation effects, caused by a polarization impedance. 相似文献
2.
Summary Enhanced cellular cAMP levels have been shown to increase apical membrane Cl– and HCO
3
–
conductances in epithelia. We found that the phosphodiesterase inhibitor 3-isobutyl-1-methyl-xanthine (IBMX) increases cAMP levels inNecturus gallbladder. We used conventional open-tip and double-barreled Cl–-selective microelectrodes to study the effects of IBMX on membrane conductances and intracellular Cl– activities in gallbladders mounted in a divided chamber and bathed with Ringer's solutions at 23°C and pH 7.4. In HCO
3
–
-free media, 0.1mM IBMX added to the mucosal medium depolarized the apical membrane potentialV
a
, decreased the fractional resistanceF
R
, and significantly reduced intracellular Cl– activity (a
Cl
i
). Under control conditions,a
Cl
i
was above the value corresponding to passive distribution across the apical cell membrane. In media containing 25mM HCO
3
–
, IBMX caused a small transient hyperpolarization ofV
a
followed by a depolarization not significantly different from that observed in HCO
3
–
-free Ringer's. Removal of mucosal Cl–, Na+ or Ca2+ did not affect the IBMX-induced depolarization inV
a
. The basolateral membrane ofNecturus gallbladder is highly K+ permeable. Increasing serosal K+ from 2.5 to 80mM, depolarizedV
a
. Mucosal IBMX significantly reduced this depolarization. Addition of 10mM Ba2+, a K+ channel blocker, to the serosal medium depolarizedV
a
and, essentially, blocked the depolarization induced by IBMX. These results indicate that mucosal IBMX increases apical HCO
3
–
conductance and decreases basolateral K+ conductance in gallbladder epithelial cells via a cAMP-dependent mechanism. The latter effect, not previously reported in epithelial tissues, appears to be the major determinant of the IBMX-induced depolarization ofV
a
. 相似文献
3.
Carl J. Bentzel Michael Fromm Carlos E. Palant Ulrich Hegel 《The Journal of membrane biology》1987,95(1):9-20
Summary Protamine is a naturally occurring basic protein (pI; 9.7 to 12.0). We have recently reported that protamine dissolved in the mucosal bath (2 to 20 m), induces about a twofold increase in transepithelial resistance inNecturus gallbladder within 10 min. Conductance decreased concomitantly with cation selectivity.In this leaky epithelium, where >90% of an applied current passes between cells, an increment in resistance of this magnitude suggests a paracellular actiona priori. To confirm this, ionic conductance across the apical cell membrane was studied with microelectrodes. Protamine increased transepithelial resistance without changing apical cell membrane voltage or fractional membrane resistance. Variation in extracellular K concentration (6 to 50mm) caused changes in apical membrane voltage not different from control.To determine if protamine-induced resistance changes were associated with structural alteration of tight junctions, gallbladders were fixedin situ at peak response and analyzed by freeze-fracture electron microscopy. According to a morphometrical analysis, the tight junctional intramembranous domain expands vertically due to incorporation of new strands (fibrils) into the main compact fibrillar meshwork.Since morphologic changes are complete within 10 min, strands are probably recycled into and out of the tight junctional membrane domain possibly by the cytoskeleton either from cytoplasmic vesicles or from intramembranous precursors. Regulation of tight junctional permeability by protamine and other perturbations may constitute a common mechanism by which leaky epithelia regulate transport, and protamine, in concentrations employed in this study, seems reasonably specific for the tight junction. 相似文献
4.
Summary Gallbladders transport isotonically over a wide range of osmolarities. This ability has been assumed to depend on the geometry of the lateral intercellular spaces. We report that this geometry in theNecturus gallbladder varies extensively with the external osmolarity and dependsin vitro on the integrity of the subepithelial tissues. The structure of the living epithelium was studied by Nomarski light microscopy while ultrastructural effects were revealed by electron microscopy. The short-term effects (<60 min) of low external osmolarities were: 1) the cells became bell-shaped with an increased cell height measured centrally, 2) lateral intercellular spaces lost their convoluted character; and 3) numerous membrane-bound cavities appeared in the cells. Furthermore, long-term exposure to the low external osmolarities caused an uneven density of epithelial cells. With subepithelial tissues intact, blistering of the epithelium cell layer was evident. Qualitative electron-microscopic data indicate that the membrane of the cavities was recruited from the basolateral cell membrane. This agrees well with light-microscopic observation that the cavities were initiated as invaginations of this cell membrane. 相似文献
5.
Peter D. Brown Donald D. F. Loo Ernest M. Wright 《The Journal of membrane biology》1988,105(3):207-219
Summary The properties of Ca2+-activated K+ channels in the apical membrane of theNecturus choroid plexus were studied using single-channel recording techniques in the cell-attached and excised-patch configurations. Channels with large unitary conductances clustered around 150 and 220 pS were most commonly observed. These channels exhibited a high selectivity for K+ over Na+ and K+ over Cs+. They were blocked by high cytoplasmic Na+ concentrations (110mm). Channel activity increased with depolarizing membrane potentials, and with increasing cytoplasmic Ca2+ concentrations. Increasing Ca2+ from 5 to 500nm, increased open probability by an order of magnitude, without changing single-channel conductance. Open probability increased up to 10-fold with a 20-mV depolarization when Ca2+ was 500nm. Lowering intracellular pH one unit, decreased open probability by more than two orders of magnitude, but pH did not affect single-channel conductance. Cytoplasmic Ba2+ reduced both channel-open probability and conductance. The sites for the action of Ba2+ are located at a distance more than halfway through the applied electric field from the inside of the membrane. Values of 0.013 and 117mm were calculated as the apparent Ba2+ dissociation constants (K
d
(0 mV) for the effects on probability and conductance, respectively. TEA+ (tetraethylammonium) reduced single-channel current. Applied to the cytoplasmic side, it acted on a site 20% of the distance through the membrane, with aK
d
(0 mV)=5.6mm. A second site, with a higher affinity,K
d
(0 mV)=0.23mm, may account for the near total block of chanel conductance by 2mm TEA+ applied to the outside of the membrane. It is concluded that the channels inNecturus choroid plexus exhibit many of the properties of maxi Ca2+-activated K+ channels found in other tissues. 相似文献
6.
Summary In order to assess the contribution of transcellular water flow to isosmotic fluid transport acrossNecturus gallbladder epithelium, we have measured the water permeability of the epithelial cell membranes using a nuclear magnetic resonance method. Spin-lattice (T
1) relaxation of water protons in samples of gallbladder tissue where the extracellular fluid contained 10 to 20mm Mn2+ showed two exponential components. The fraction of the total water population responsible for the slower of the two was 24±2%. Both the size of the slow component, and the fact that it disappeared when the epithelial layer was removed from the tissue, suggest that it was due to water efflux from the epithelial cells. The rate constant of efflux was estimated to be 15.6±1.0 sec1 which would be consistent with a diffusive membrane water permeabilityP
d
of 1.6×103 cm sec1 and an osmotic permeabilityP
os of between 0.3×104 and 1.4×104 cm sec1 osmolar1. Using these data and a modified version of the standing-gradient model, we have reassessed the adequacy of a fluid transport theory based purely on transcellular osmotic water flow. We find that the model accounts satisfactorily for near-isosmotic fluid transport by the unilateral gallbladder preparation, but a substantial serosal diffusion barrier has to be included in order to account for the transport of fluid against opposing osmotic gradients. 相似文献
7.
Z. Shen J. Liu D. C. Marcus N. Shiga P. Wangemann 《The Journal of membrane biology》1995,146(3):283-291
Vestibular dark cell epithelium secretes K+ via I
sKchannels in the apical membrane. The previous observation that disulfonic stilbenes increased the equivalent short circuit current (I
sc) suggested that these agents might be useful investigative tools in this tissue. The present experiments were conducted to determine if the increase in I
scwas associated with an increase in K+ flux and if the effect was directly on the I
sKchannel or indirectly via a cytosolic intermediary. Measurements of transepithelial K+ flux with the K+-selective vibrating probe and of changes in net cellular solute flux by measurements of epithelial cell height showed that 4,4-diisothiocyanatostilbene-2,2-disulfonic acid (DIDS) increased K+ flux by a factor of 1.96±0.71 and caused net solute efflux. The apical membrane was partitioned with a macropatch pipette and DIDS was applied either to the membrane outside the pipette, inside the pipette or to the entire apical membrane. DIDS inside the pipette increased the current across the patch, the membrane conductance, the slowly-inactivating (I
sK) component of the membrane current and shifted the reversal voltage toward the equilibrium potential for K+. DIDS outside the patch decreased the patch current and conductance, consistent with shunting of current away from the membrane patch. These findings strongly support the notion that DIDS increases K+ secretion through I
sKchannels in the apical membrane of vestibular dark cell epithelium by acting directly on the channels or on a tightly colocalized membrane component.We thank Dr. Peter J.S. Smith and Alan Shipley of the National Vibrating Probe Facility at the Marine Biological Laboratory at Woods Hole, MA for their support and assistance in the measurements of K+ flux. This work was supported by National Institutes of Health grants R01-DC00212, R29-DC1098 and P41-RR01395. 相似文献
8.
Summary In this paper we describe current fluctuations in the mammalian epithelium, rabbit descending colon. Pieces of isolated colon epithelium bathed in Na+ or K+ Ringer's solutions were studied under short-circuit conditions with the current noise spectra recorded over the range of 1–200 Hz. When the epithelium was bathed on both sides with Na+ Ringer's solution (the mucosal solution contained 50 m amiloride), no Lorentzian components were found in the power spectrum. After imposition of a potassium gradient across the epithelium by replacement of the mucosal solution by K+ Ringer's (containing 50 m amiloride), a Lorentzian component appeared with an average corner frequency,f
c=15.6±0.91 Hz and a mean plateau valueS
o=(7.04±2.94)×10–20 A2 sec/cm2. The Lorentzian component was enhanced by voltage clamping the colon in a direction favorable for K+ entry across the apical membrane. Elimination of the K+ gradient by bathing the colon on both sides with K+ Ringer's solutions abolished the noise signal. The Lorentzian component was also depressed by mucosal addition of Cs+ or tetraethylammonium (TEA) and by serosal addition of Ba2+. The one-sided action of these K+ channel blockers suggests a cellular location for the fluctuating channels. Addition of nystatin to the mucosal solution abolished the Lorentzian component. Serosal nystatin did not affect the Lorentzian noise. This finding indicates an apical membrane location for the fluctuating channels. The data were similar in some respects to K+ channel fluctuations recorded from the apical membranes of amphibian epithelia such as the frog skin and toad gallbladder. The results are relevant to recent reports concerning transcellular potassium secretion in the colon and indicate that the colon possesses spontaneously fluctuating potassium channels in its apical membranes in parallel to the Na+ transport pathway. 相似文献
9.
Summary The effects of short (1 sec) and long (1 min) transepithelial current clamps on membrane voltages and resistances ofNecturus gallbladder were investigated. Transepithelial and cell membrane current-voltage relationships determined from 1-sec clamps revealed that: a) depolarization of the apical membrane voltage (V
mc) results in a marked decrease in apical membrane fractional resistance (fR
a), whereas hyperpolarization ofV
mc results in either no change infR
a or a small increase, and b) the voltage-dependent changes infR
a are essentially complete within 500 msec. Exposure of the tissue to 5mm TEA+ on the mucosal side caused no significant change in baselineV
mc (–69±2 mV) and yet virtually abolished the voltage dependence offR
a. A possible interpretation of these results is that two types of K+ channels exist in the apical membrane, with different voltage dependencies and TEA+ sensitivities. Acidification or Ba2+ addition to the mucosal solution also reduced the voltage-dependent changes infR
a. The time courses of the changes infR
a and in the cable properties of the epithelium were assessed during 1-min transepithelial current clamps (±200 A/cm2). No secondary change infR
a was observed with mucosa-to-serosa currents, but a slow TEA+-sensitive decrease infR
a (half-time of seconds) was evident with serosa-to-mucosa currents. Cable analysis experiments demonstrated that the initial (<500 msec) voltage-dependent decrease infR
a is due to a fall in apical membrane resistance. The later decrease infR
a is due to changes in both cell membrane resistances attributable to the increase in transcellular current flow resulting from a fall in paracellular conductance. The voltage dependence of the apical membrane conductance is a more significant problem in estimatingfR
a than the current-induced effects on the lateral intercellular spaces. In principle, TEA+ can be used to prevent the nonlinear behavior ofR
a during measurements of the voltage divider or membrane resistance ratio. 相似文献
10.
Michael Fromm Carlos E. Palant Carl J. Bentzel Ulrich Hegel 《The Journal of membrane biology》1985,87(2):141-150
Summary Protamine, a naturally occurring arginine-rich polycationic protein (pI 9.7 to 12), was tested inNecturus gallbladder using a transepithelial AC-impedance technique. Protamine sulfate or hydrochloride (100 g/ml=20 m), dissolved in the mucosal bath, increased transepithelial resistance by 89% without affecting the resistance of subepithelial layers. At the same time, transepithelial voltage (
ms
) turned from slightly mucosapositive values to mucosa-negative values of approximately +1 to –5 mV. The effect of protamine on transepithelial resistance was minimal at concentrations below 5 g/ml but a maximum response was achieved between 10 and 20 g/ml. Resistance started to increase within 1 min and was maximal after 10 min. These effects were not inhibited by serosal ouabain (5×10–4
m) but could be readily reversed by mucosal heparin. The sequence of protamine effect and heparin reversal could be repeated several times in the same gallbladder. Mucosal heparin, a strong negatively charged mucopolysaccharide, or serosal protamine were without effect. Mucosal protamine reversibly decreased the partial ionic conductance of K and Na by a factor of 3, but did not affect Cl conductance. Net water transport from mucosa to serosa was reversibly increased by 60% by protamine. We conclude that protamine reversibly decreases the conductance of the cation-selective pathway through the tight junction. Although this effect is similar to that reported for 2,4,6-triamino-pyrimidinium (TAP), the mechanism of action may differ. We propose that protamine binds to the apical cell membrane and induces a series of intracellular events which leads to a conformational alteration of the tight junction structure resulting in decreased cationic permeability. 相似文献
11.
During isotonic fluid flow, Necturus gallbladder epithelium mediates net fluxes of paracellular probes by a convective process. We show here that the paracellular system is modeled by permeation through three populations of channels: (i) convective parallel-sided ones of width 7.7 nm (ii) small diffusive ones of radius 0.6 nm, and (ii) large diffusive ones of radius exceeding 50 nm. The reflexion coefficient of the convective channels is very low and the calculated osmotic flow rate is close to zero when compared with the observed fluid absorptive rate of 2 x 10–6 cm/sec. Analysis reveals that the convective channels behave as though closed to back-diffusion of probes; if this is due to solvent drag then very high fluid velocities are required, acting through minute areas. There are no transjunctional gradients that could drive the flow, and so the fluid must be propelled through the channel by components of the junction.We propose a mechanism based upon an active junctional peristalsis which allows discrimination on the basis of molecular size, in which the channels are always occluded at some point and so back-diffusion cannot occur. There is no local gradient of salt distal to the junctions and therefore the osmotic permeability of the membranes is irrelevant. High fluid velocities are not required, and the flow can occur over a substantial fraction of the junction. The mechanism must involve motile and contractile elements associated with the junction for which there is already considerable evidence.Symbols
A
i
filtration area of channel i;i=b (big), s (small) and c (convectional)
-
B
constant for streamline flow
-
C
i
concentration of probe at i
-
D
diffusion coefficient
-
D
o
diffusion coefficient in free solution
-
d
width of junction
-
F
i
diffusive drag factor in channel i
-
g
ionic conductivity
-
G
i
convective drag factor in channel i
-
J
ij
probe flux from i to j
-
J
net
net probe flux
-
J
v
volume flow per cm2 of epithelium
-
l
linear extent of junction per cm2 epithelial plane
-
L
length of junctional channel
-
L
p
hydraulic conductivity
-
N
Avogadro's number
-
q
available filtration area fraction of channel
-
r
s
probe molecular radius
-
r
c
channel radius or half-width
-
S
i
steric factor in channel i
-
V
w,s
partial molar volume of water or salt
-
v
i
fluid velocity in channel i
-
w
dynamic viscosity of water
-
specific conductivity
-
ratio of solute radius to channel radius or half-width
-
diffusive/pressure-driven flow ratio
-
reflexion coefficient 相似文献
12.
Summary Patch-clamp methods were used to study single-channel events in isolated oxyntic cells and gastric glands fromNecturus maculosa. Cell-attached, excised inside-out and outside-out patches from the basolateral membrane frequently contained channels which had conductances of 67±21 pS in 24% of the patches and channels of smaller conductance, 33±6 pS in 56% of the patches. Channels in both classes were highly selective for K+ over Na+ and Cl–, and shared linear current-voltage relations. The 67-pS channel was activated by membrane depolarization, whereas the activity of the 33-pS channel was relatively voltage independent. The larger conductance channels were activated by intracellular Ca2+ in the range between 5 and 500nm, but unaffected by cAMP. The smaller conductance channels were activated by cAMP, but not Ca2+. The presence of K+ channels in the basolateral membrane which are regulated by these known second messengers can account for the increase in conductance and the hyperpolarization of the membrane observed upon secretagogue stimulation. 相似文献
13.
Summary The effects of stepwise concentration changes of K+ and HCO
3
–
in the basolateral solution on the basolateral membrane potential (V
bl) of proximal tubule cells of the doubly-perfusedNecturus kidney were examined using conventional microelectrodes. Apparent transference numbers were calculated from changes inV
bl after alterations in external K+ concentration from 1.0 to 2.5mm (t
K, 1.0–2.5), 2.5 to 10, and in external HCO
3
–
concentration (at constant pH) from 5 to 10mm (t
HCO3, 5–10), 10 to 20, or 10 to 50.t
K, 2.5–10 was 0.38±0.02 under control conditions but was sharply reduced to 0.08±0.03 (P>0.001) by 4mm Ba++. This concentration of Ba++ reducedV
bl by 9±1 mV (at 2.5 external K+). Perfusion with SITS (5×10–4
m) for 1 hr hyperpolarizedV
bl by 10±3 mV and increasedt
K, 2.5–10 significantly to 0.52±0.01 (P<0.001). Ba++ application in the presence of SITS depolarizedV
bl by 22±3 mV. In control conditionst
HCO3, 10–50 was 0.63±0.05 and was increased to 0.89±0.07 (P<0.01) by Ba++ but was decreased to 0.14±0.02 (P<0.001) by SITS. In the absence of apical and basolateral chloride, the response ofV
bl to bicarbonate was diminished but still present (t
HCO3, 10–20 was 0.35±0.03). Intracellular pH, measured with liquid ion-exchange microelectrodes, increased from 7.42±0.19 to 7.57±0.17 (P<0.02) when basolateral bicarbonate was increased from 10 to 20mm at constant pH. These data show that the effects of bicarbonate onV
bl are largely independent of effects on the K+ conductance and that there is a significant current-carrying bicarbonate pathway in the basolateral membrane. Hence, both K+ and HCO
3
–
gradients are important in the generation ofV
bl, and their relative effects vary reciprocally. 相似文献
14.
Summary The whole-cell patch-clamp method has been used to measure Ca2+ influx through otherwise K+-selective channels in the plasma membrane surrounding protoplasts from guard cells of Vicia faba. These channels are activated by membrane hyperpolarization. The resulting K+ influx contributes to the increase in guard cell turgor which causes stomatal opening during the regulation of leaf-air gas exchange. We find that after opening the K+ channels by hyperpolarization, depolarization of the membrane results in tail current at voltages where there is no electrochemical force to drive K+ inward through the channels. Tail current remains when the reversal potential for permeant ions other than Ca2+ is more negative than or equal to the K+ equilibrium potential (–47 mV), indicating that the current is due to Ca2+ influx through the K+ channels prior to their closure. Decreasing internal [Ca2+] (Ca
i
) from 200 to 2 nm or increasing the external [Ca2+] (Ca
o
) from 1 to 10 mm increases the amplitude of tail current and shifts the observed reversal potential to more positive values. Such increases in the electrochemical force driving Ca2+ influx also decrease the amplitude of time-activated current, indicating that Ca2+ permeation is slower than K+ permeation, and so causes a partial block. Increasing Ca
o
also (i) causes a positive shift in the voltage dependence of current, presumably by decreasing the membrane surface potential, and (ii) results in a U-shaped current-voltage relationship with peak inward current ca. –160 mV, indicating that the Ca2– block is voltage dependent and suggesting that the cation binding site is within the electric field of the membrane. K+ channels in Zea mays guard cells also appear to have a Ca
i
-, and Ca
o
-dependent ability to mediate Ca2+ influx. We suggest that the inwardly rectiying K+ channels are part of a regulatory mechanism for Ca
i
. Changes in Ca
o
and (associated) changes in Ca
i
regulate a variety of intracellular processes and ion fluxes, including the K+ and anion fluxes associated with stomatal aperture change.This work was supported by grants to S.M.A. from NSF (DCB-8904041) and from the McKnight Foundation. K.F.-G. is a Charles Gilbert Heydon Travelling Fellow. The authors thank Dr. R. MacKinnon (Harvard Medical School) and two anonymous reviewers for helpful comments. 相似文献
15.
Summary The prime potassium channel from the tonoplast of Chara corallina has been analyzed in terms of an enzyme kinetic model (Gradmann, Klieber & Hansen 1987, Biophys. J.
53:287) with respect to its selectivity for K+ over Rb+ and to its blockage by Cs+ and by Ca2+. The channel was investigated by patchclamp techniques over a range of membrane voltages (V
m
, referred to an extracytoplasmic electrical potential of zero) from –200 mV to + 200 mV under various ionic conditions (0 to 300 mM K+, Rb+, Cs+, Ca2+, and Cl–) on the two sides of isolated patches. The experimental data are apparent steady-state currentvoltage relationships under all experimental conditions used and amplitude histograms of the seemingly noisy open-channel currents in the presence of Cs+. The used model for K+ uniport comprises a reaction cycle of one binding site through four states, i.e., (1) K+-loaded and charged, facing the cytoplasm, (2) K+-loaded and charged facing the vacuole, (3) empty, facing the vacuole, and (4) empty, facing the cytoplasm. V
m
enters the system in the form of a symmetric Eyring barrier between state 1 and 2. The numerical results for the individual rate constants are (in 106s–1 for zero voltage and 1 m substrate concentration): k
12: 1,410, k
21: 3,370, k
23: 105,000, k
32: 10,600, k
34: 194, k
43: 270, k
41: 5,290, k
14: 15,800. For the additional presence of an alternate transportee (here Rb+), the model can be extended in an analog way by another two states ((5) Rb+-loaded and charged, facing cytoplasm, and (6) Rb+-loaded and charged, facing vacuole) and six more rate constants (k
45: 300, k
54: 240, k
56: 498, k
65: 4,510, k
63: 4,070, k
36: 403). This six-state model with its unique set of fourteen parameters satisfies the complete set of experimental data. If the competing substrate can be bound but not translocated (here Cs+ and Ca2+), k
56 and k
65 of the model are zero, and the stability constants K
cyt (= k
36/k
63) and K
vac (= k
45/k
54) turn out to be K
cyt(Ca2+): 250 m
–1 · exp(V
m
/(64 mV)), k
vac(Ca2+): 10 m
–1 · exp(–V
m
/(66 mV)), K
cyt(Cs+): 0, and K
vac(Cs+): 46 m
–2 · exp(–V
m
/(12.25 mV)). With the assumption that the current fluctuations in the presence of Cs+ consist of incompletely resolved, short periods of complete openings and complete closures, the amplitude histograms of the noisy open channel currents can be described by a beta distribution, yielding the rate constants for binding (92 · 106 sec–1 · m
–2 · exp(–V
m
/(22.5 mV)) and debinding (2, 106 sec–1 · m
–2 · exp(V
m
/(22.5 mV)) of Cs+ to the vacuolar side of the channel as functions of the [Cs+] and of V
m
. Considering these data and those from the literature, an asymmetry of the channel can be assessed, with a high charge density at the cytoplasmic side (Eisenman-series Nr. XI) and a low charge density at the vacuolar side (Eisenman-series Nr. I). Furthermore, the results provide an example for intimate linkage between conduction and switching of a channel.This work has been supported by the Deutsche Forschungsgemeinschaft. 相似文献
16.
A. Diez de los Rios N. E. DeRose W. McD Armstrong 《The Journal of membrane biology》1981,63(1-2):25-30
Summary Open-tip and liquid ion-exchanger microelectrodes were used to study the effects of cAMP (6mm, added to the serosal medium) on apical membrane potential (E
m
) and intracellular sodium, potassium, and chloride activities (a
Na
i
,a
K
i
,a
Cl
i
) inNecturus gallbladder under open-circuit conditions. Transepithelial potential difference (E
Tr
) was also measured. In the presence of cAMP,a
Cl
i
fell from about 1.5 times its equilibrium value to a level that corresponded to electrochemical equilibrium across the apical and basolateral cell membranes. Under these conditionsa
Na
i
decreased anda
K
i
increased,E
m
was unchanged andE
Tr
increased from virtually zero to a small but significant serosal positive value. The cAMP-induced increase ina
K
i
was abolished when Cl–-free incubation media were used. Addition of the Ca++-ionophore A23187 (0.5 g/ml) to the serosal medium had no effect onE
m
,E
Tr
, ora
Cl
i
. When A23187 was added to the mucosal medium,E
m
and the basolateral membrane potential hyperpolarized by about 20 mV and an increase in the outwardly directed electrochemical driving force for Cl– was observed. These results indicate that cAMP inhibits coupled transapical Na–Cl entry into epithelial cells ofNecturus gallbladder and suggest that this inhibition may not be mediated by an increase in intracellular Ca++ concentration. 相似文献
17.
Stanley G. Schultz Stephen M. Thompson Randall Hudson S. Randall Thomas Yuichi Suzuki 《The Journal of membrane biology》1984,79(3):257-269
Summary As reported previously (S.R. Thomas et al.,J. Membrane Biol.
73:157–175, 1983) the current-voltage (I–V) relations of the Na-entry step across the apical membrane of short-circuitedNecturus urinary bladder in the presence of varying mucosal Na concentrations are (i) time-independent between 20–90 msec and (ii) conform to the Goldman-Hodgkin-Katz constant field flux equation for a single cation over a wide range of voltages.In contrast, theI–V relations of the basolateral membrane under these conditions are (i) essentially linear between the steady-state, short-circuited condition and the reversal potential (E
s
); and (ii) are decidedly time-dependent withE
s
increasing and the slope conductance,E
s
, decreasing between 20 and 90 msec after displacing the transepithelial electrical potential difference. Evidence is presented that this time-dependence cannot be attributed entirely to the electrical capacitance of the tissue.The values ofg
s
determined at 20 msec are linear functions of the short-circuit current,I
sc, confirming the relations reported previously, which were obtained using a more indirect approach.The values ofE
s
determined at 20 msec are significantly lower than any reasonable estimate of the electromotive force for K across the basolateral membrane, indicating that this barrier possesses a significant conductance to other ions which may exceed that to K. In addition, these values increase linearly with decreasingI
sc and approach the value of the electrical potential difference across the basolateral membrane observed when Na entry across the apical membrane is blocked with amiloride or when Na is removed from the mucosal solution.A possible explanation for the time-dependence ofE
s
andg
s
is offered and the implications of these findings regarding the interpretation of previous microelectrophysiologic studies of epithelia are discussed. 相似文献
18.
19.
H. Lühring 《Protoplasma》1986,133(1):19-28
Summary The cytoplasmic drop formed of effused cytoplasm fromChara internodes is enclosed by a membrane. Patch clamp experiments have been carried out on this membrane, revealing a K+ channel as the most frequently detected ion translocator. The K+ channel is saturated at a level of about 20 pA inward and 10 pA outward current. The channel conductance is dependent on the accessability of K+ ions, its maximum value amounts to about 165 pS. The discrimination of Na+ and Cl– is significant, permeability ratios PNa/PK and PCl/PK were estimated to be 0.01 either. Binding experiments with the fluorescent probe concanavalin A/FITC suggest that the membrane is derived from the tonoplast.Abbreviations EK
K+ equilibrium potential
- FITC
fluorescein isothiocyanat
- Vm
membrane voltage
- Vpip
pipette clamp voltage
- Vr
reversal voltage 相似文献
20.
Meyer G Bazzini C Bottà G Garavaglia ML Simona R Manfredi R Sironi C De Biasi S Paulmichl M 《Biochemical and biophysical research communications》2002,290(5):1564-1572
In guinea pig gallbladder epithelial cells, an increase in intracellular cAMP levels elicits the rise of anion channel activity. We investigated by patch-clamp techniques whether K(+) channels were also activated. In a cell-attached configuration and in the presence of theophylline and forskolin or 8-Br-cAMP in the cellular incubation bath, an increase of the open probability (P(o)) values for Ca(2+)-activated K(+) channels with a single-channel conductance of about 160 pS, for inward current, was observed. The increase in P(o) of these channels was also seen in an inside-out configuration and in the presence of PKA, ATP, and cAMP, but not with cAMP alone; phosphorylation did not influence single-channel conductance. In the inside-out configuration, the opioid loperamide (10(-5) M) was able to reduce P(o) when it was present either in the microelectrode filling solution or on the cytoplasmic side. Detection in the epithelial cells by RT-PCR of the mRNA corresponding to the alpha subunit of large-conductance Ca(2+)-activated K(+) channels (BK(Ca)) indicates that this gallbladder channel could belong to the BK family. Immunohistochemistry experiments confirm that these cells express the BK alpha subunit, which is located on the apical membrane. Other K(+) channels with lower conductance (40 pS) were not activated either by 8-Br-cAMP (cell-attached) or by PKA + ATP + cAMP (inside-out). These channels were insensitive to TEA(+) and loperamide. The data demonstrate that under conditions that induce secretion, phosphorylation activates anion channels as well as Ca(2+)-dependent, loperamide-sensitive K(+) channels present on the apical membrane. 相似文献