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1.
ATP-Induced Shape Change of Nuclear Pores Visualized with the Atomic Force Microscope 总被引:1,自引:0,他引:1
A. Rakowska T. Danker S.W. Schneider H. Oberleithner 《The Journal of membrane biology》1998,163(2):129-136
Bidirectional transport of molecules between nucleus and cytoplasm through the nuclear pore complexes (NPCs) spanning the
nuclear envelope plays a fundamental role in cell function and metabolism. Nuclear import of macromolecules is a two-step
process involving initial recognition of targeting signals, docking to the pore and energy-driven translocation. ATP depletion
inhibits the translocation step. The mechanism of translocation itself and the conformational changes of the NPC components
that occur during macromolecular transport, are still unclear. The present study investigates the effect of ATP on nuclear
pore conformation in isolated nuclear envelopes from Xenopus laevis oocytes using the atomic force microscope. All experiments were conducted in a saline solution mimicking the cytosol using
unfixed nuclear envelopes. ATP (1 mm) was added during the scanning procedure and the resultant conformational changes of the NPCs were directly monitored. Images
of the same nuclear pores recorded before and during ATP exposure revealed dramatic conformational changes of NPCs subsequent
to the addition of ATP. The height of the pores protruding from the cytoplasmic surface of the nuclear envelope visibly increased
while the diameter of the pore opening decreased. The observed changes occurred within minutes and were transient. The slow-hydrolyzing
ATP analogue, ATP-γ-S, in equimolar concentrations did not exert any effects. The ATP-induced shape change could represent
a nuclear pore ``contraction.'
Received: 10 February 1997/Revised: 10 February 1998 相似文献
2.
Diphtheria toxin forms pores in biological and model membranes upon exposure to low pH. These pores may play a critical role
in the translocation of the A chain of the toxin into the cytoplasm. The effect of protein concentration on diphtheria toxin
pore formation in model membrane systems was assayed by using a new fluorescence quenching method. In this method, the movement
of Cascade Blue labeled dextrans of various sizes across membranes is detected by antibodies which quench Cascade Blue fluorescence.
It was found that at low pH the toxin makes pores in phosphatidylcholine/phosphatidylglycerol vesicles with a size that depends
on protein concentration. At the lowest toxin concentrations only the entrapped free fluorophore (MW 538) could be released
from model membranes. At intermediate toxin concentrations, a 3 kD dextran could be released. At the highest toxin concentration,
a 10 kD dextran could be released, but not a 70 kD dextran. Similar pore properties were found using vesicles lacking phosphatidylglycerol
or containing 30% cholesterol. However, larger pores formed at lower protein concentrations in the presence of cholesterol.
The dependence of pore size on toxin concentration suggests that toxin oligomerization regulates pore size. This behavior
may explain some of the conflicting data on the size of the pores formed by diphtheria toxin. The formation of oligomers by
membrane-inserted toxin is consistent with the results of chemical crosslinking and measurements of the self-quenching of
rhodamine-labeled toxin. Based on these experiments we propose diphtheria toxin forms oligomers with a variable stoichiometry,
and that pore size depends on the oligomerization state. Reasons why oligomerization could assist proper membrane insertion
of the toxin and other proteins that convert from soluble to membrane-inserted states are discussed.
Received: 10 March 1999/Revised: 22 June 1999 相似文献
3.
U. Yermiyahu G. Rytwo D.K. Brauer T.B. Kinraide 《The Journal of membrane biology》1997,159(3):239-252
A general model for the sorption of trivalent cations to wheat-root (Triticum aestivum L cv. Scout 66) plasma membranes (PM) has been developed and includes the first published coefficients for La3+ and Al3+ binding to a biological membrane. Both ions are rhizotoxic, and the latter ion is the principal contributor to the toxicity
of acidic soils around the world. The model takes into account both the electrostatic attraction and the binding of cations
to the negatively charged PM surface. Ion binding is modeled as the reaction P
−+I
Z⇌PI
Z
−1 in which P
− represents a negatively charged PM ligand, located in an estimated area of 540 ?2, and I
Z represents an ion of charge Z. Binding constants for the reaction were assigned for K+ (1 m
−1) and Ca2+ (30 m
−1) and evaluated experimentally for La3+ (2200 m
−1) and H+ (21,500 m
−1). Al sorption is complicated by Al3+ hydrolysis that yields hydroxoaluminum species that are also sorbed. Binding constants of 30 and 1 m
−1 were assigned for AlOH2+ and Al(OH)+
2, respectively, then a constant for Al3+ (20,000 m
−1) was evaluated experimentally using the previously obtained values for K+, Ca2+ and H+ binding. Electrostatic attraction was modeled according to Gouy-Chapman theory. Evaluation of parameters was based upon the
sorption of ions to PM vesicles suspended in solutions containing variable concentrations of H+, Ca2+ and La3+ or Al3+. Use of small volumes, and improved assay techniques, allowed the measurement of concentration depletions caused by sorption
to vesicles. Some independent confirmation of our model is provided by substantial agreement between our computations and
two published reports of La3+ effects upon zeta potentials of plant protoplasts. The single published report concerning the electrostatic effects of Al
on cell membranes is in essential agreement with the model.
Received: 6 January 1997/Revised: 6 June 1997 相似文献
4.
R. Nielsen 《The Journal of membrane biology》1997,159(1):61-69
In the present work the coupling under short-circuited conditions between the net Na+-influx across isolated frog skin and the transepithelial transport of water was examined i.e., the short-circuit current
(I
sc
) and the transepithelial water movement (TEWM) were measured simultaneously. It has been shown repeatedly that the I
sc
across isolated frog skin is equal to the net transepithelial Na+ transport. Furthermore the coupling between transepithelial uptake of NaCl under open-circuit conditions and TEWM was also
measured.
The addition of antidiuretic hormone (AVT) to skins incubated under short-circuited conditions resulted in an increase in
the I
sc
and TEWM. Under control conditions I
sc
was 9.14 ± 2.43 and in the presence of AVT 45.9 ± 7.3 neq cm−2 min−1 (n= 9) and TEWM changed from 12.45 ± 4.46 to 132.8 ± 15.8 nL cm−2 min−1. The addition of the Na+ channel blocking agent amiloride resulted in a reduction both in I
sc
and TEWM, and a linear correlation between I
sc
and TEWM was found. The correlation corresponds to that 160 ± 15 (n= 7) molecules of water follow each Na+ across the skin. In another series of experiments it was found that there was a linear correlation between I
sc
and the increase in apical osmolarity needed to stop the TEWM.
The data presented indicate that the observed coupling between the net transepithelial Na+ transport and TEWM is caused by local osmosis.
Received: 16 October 1996/Revised: 6 March 1997 相似文献
5.
Two inward-rectifier K+ channels, ROMK2 (Kir1.1b) and IRK1 (Kir2.1), were expressed in Xenopus oocytes and their gating properties were studied in cell-attached membrane patches. The gating properties depended strongly
on the ion being conducted (K+, NH4
+, Rb+, or Tl+), suggesting tight coupling between permeation and gating. Mean open times were strongly dependent on the nature of the conducted
ion. For ROMK2 the order from the longest to the shortest times was K+ > Rb+ > Tl+ > NH4
+. For IRK1 the sequence was K+ > NH4
+ > Tl+. In both cases the open times decreased monotonically as the membrane voltage was hyperpolarized. Both the absolute values
and the voltage dependence of closed times were dependent on the conducted species. ROMK2 showed a single closed state whose
mean lifetimes were biphasic functions of voltage. The maxima were at various voltages for different ions. IRK1 had at least
two closed states whose lifetimes decreased monotonically with K+, increased monotonically with Tl+, and were relatively constant with NH4
+ as the conducted ion. We explain the ion-dependence of gating by assuming that the ions bind to a site within the permeation
pathway, resulting in a stable, ion-dependent, closed state of the channel. The patterns of voltage-dependence of closed-state
lifetimes, which are specific for different ions, can be explained by variations in the rate at which the bound ions leave
the pore toward the inside or the outside of the cell.
Received: 18 April 2001/Revised: 28 June 2001 相似文献
6.
We hypothesized that inhibition and activation of basolateral to luminal chloride transport mechanisms were associated with
respective decreases and increases in basolateral to luminal water fluxes. The luminal to basolateral (J
W
L→B
) and basolateral to luminal (J
W
B→L
) water fluxes across ovine tracheal epithelia were measured simultaneously. The mean J
W
L→B
(6.5 μl/min/cm2) was larger than J
W
B→L
(6.1 μl/min/cm2). Furosemide reduced J
W
B→L
from 6.0 to 5.6 μl/min/cm2. Diphenylamine-2-carboxylate (DPC) reduced J
W
B→L
from 7.9 to 7.3 μl/min/cm2 and reduced the membrane potential difference by 38%. Furosemide together with DPC decreased J
W
L→B
by 30% and J
W
B→L
by 15%. Norepinephrine increased J
W
B→L
from 4.9 to 6.0 μl/min/cm2. Neuropeptide Y in the presence of norepinephrine decreased J
W
L→B
(6.4 to 5.2 μl/min/cm2) and returned J
W
B→L
to its baseline value. Vasopressin increased J
W
B→L
from 4.1 to 5.1 μl/min/cm2. Endothelin-1 induced a simultaneous increase in J
W
B→L
(7.0 to 7.7 μl/min/cm2) and decrease in J
W
L→B
(7.4 to 6.4 μl/min/cm2); and decreased the membrane resistance. These data indicate that in tracheal epithelia under homeostatic conditions J
W
B→L
has a ∼15% actively coupled component. Consistent with our hypothesis, inhibition and receptor-induced stimulation of chloride
effluxes were associated with decreases and increases in J
W
B→L
, respectively. However, as inhibition of transcellular chloride transport always decreased J
W
L→B
more than J
W
B→L
, reducing transepithelial chloride transport did not result in less water being transported into the airway lumen.
Received: 12 October 1999/Revised: 14 March 2000 相似文献
7.
The rate-limiting step for the maternofetal exchange of low molecular-weight solutes in humans is constituted by transport
across a single epithelial layer (syncytiotrophoblast) of the placenta. Other than the well-established presence of a large-conductance,
multisubstate Cl− channel, the ionic channels occurring in this syncytial tissue are, for the most part, unknown. We have found that fusion
of apical plasma membrane-enriched vesicle fractions with planar lipid bilayers leads, mainly (96% of 353 reconstitutions),
to the reconstitution of nonselective cation channels. Here we describe the properties of this novel placental conductance
at the single-channel level. The channel has a large (>200 pS) and variable conductance, is cation selective (P
Cl
/P
K
≅ 0.024), is reversibly inhibited (presumably blocked) by submillimolar La3+, has very unstable kinetics, and displays a large number (>10) of current sublevels with a ``promiscuous' connectivity pattern.
The occurrence of both ``staircaselike' and ``all-or-nothing' transitions between the minimum and maximum current levels
was intriguing, particularly considering the large number of conductance levels spanned at a time during the concerted current
steps. Single-channel data simulated according to a multistate linear reaction scheme, with rate constants that can vary spontaneously
in time, reproduce many aspects of the recorded subconductance behavior. The channel's sensitivity to lanthanides is reminiscent
of stretch-sensitive channels which, in turn, suggests a physiological role for this ion channel as a mechanotransducer during
syncytiotrophoblast-volume regulation.
Received: 30 August 1999/Revised: 12 November 1999 相似文献
8.
The outer hair cell (OHC) from the mammalian organ of Corti possesses a bell-shaped voltage-dependent capacitance function.
The nonlinear capacitance reflects the activity of membrane bound voltage sensors associated with membrane motors that control
OHC length. We have studied the effects of the lipophilic ions, tetraphenylborate (TPB−) and tetraphenylphosphonium (TPP+), on nonlinear capacitance and motility of isolated guinea-pig OHCs. Effects on supporting cells were also investigated.
TPB− produced an increase in the peak capacitance (Cm
pk
) and shifted the voltage at peak capacitance (V
pkCm
) to hyperpolarized levels. Washout reversed the effects. Perfusion of 0.4 μm TPB− caused an average increase in Cm
pk
of 16.3 pF and V
pkCm
shift of 13.6 mV. TPP+, on the other hand, only shifted V
pkCm
in the positive direction, with no change in Cm
pk
. The contributions from native OHC and TPB−-induced capacitance were dissected by a double Boltzmann fitting paradigm, and by blocking native OHC capacitance. While
mechanical response studies indicate little effect of TPB− on the motility of OHCs which were in normal condition or treated with salicylate or gadolinium, the voltage at maximum mechanical
gain (V
δ
Lmax
) was shifted in correspondence with native V
pkCm
, and both changed in a concentration-dependent manner. Both TPB−-induced changes in Cm
pk
and V
pkCm
were affected by voltage prepulses and intracellular turgor pressure. TPB− induced a voltage-dependent capacitance in supporting cells whose characteristics were similar to those of the OHC, but no
indication of mechanical responses was noted. Our results indicate that OHC mechanical responses are not simply related to
quantity of nonspecific nonlinear charge moved within the membrane, but to the effects of motility voltage-sensor charge movement
functionally coupled to a mechanical effector.
Received: 14 May 1998/Revised: 24 August 1998 相似文献
9.
P.R. Andjus M.R. Djurišić Z. Žujović N. Begović R. Srejić D. Vučelić 《The Journal of membrane biology》1999,167(3):267-274
The NMR (nuclear magnetic resonance) method of Conlon and Outhred (1972) was used to measure diffusional water permeability
of the nodal cells of the green alga Chara gymnophylla. Two local minima at 15 and 30°C of diffusional water permeability (P
d
) were observed delimiting a region of low activation energy (E
a
around 20 kJ/mol) indicative of an optimal temperature region for membrane transport processes. Above and below this region
water transport was of a different type with high E
a
(about 70 kJ/mol). The triphasic temperature dependence of the water transport suggested a channel-mediated transport at
15–30°C and lipid matrix-mediated transport beyond this region. The K+ channel inhibitor, tetraethylammonium as well as the Cl− channel inhibitor, ethacrynic acid, diminished P
d
in the intermediate temperature region by 54 and 40%, respectively. The sulfhydryl agent p-(chloromercuri-benzensulfonate)
the water transport inhibitor in erythrocytes also known to affect K+ transport in Chara, only increased P
d
below 15°C. In high external potassium (`K-state') water transport minima were pronounced. The role of K+ channels as sensors of the optimal temperature limits was further emphasized by showing a similar triphasic temperature dependence
of the conductance of a single K+ channel also known to cotransport water, which originated from cytoplasmic droplets (putatively tonoplast) of C. gymnophylla. The minimum of K+ single channel conductance at around 15°C, unlike the one at 30°C, was sensitive to changes of growth temperature underlining
membrane lipid involvement. The additional role of intracellular (membrane?) water in the generation of discontinuities in
the above thermal functions was suggested by an Arrhenius plot of the cellular water relaxation rate which showed breaks at
13 and 29°C.
Received: 12 August 1998/Revised: 13 November 1998 相似文献
10.
M. Iino S. Ciani K. Tsuzuki S. Ozawa Y. Kidokoro 《The Journal of membrane biology》1997,155(2):143-156
Ion permeation properties of the mouse e2/ζ1 NMDA receptor channel expressed in Xenopus oocytes were studied using the outside-out patch-clamp technique. In symmetrical Na+ solutions, the single-channel I-V relations were almost linear at low electrolyte concentrations, but rectified inwardly for Na+ concentrations above 50 mm. In symmetrical Na+ solutions, the ``zero-current conductance' increased with Na+ concentration and saturated according to a hyperbolic curve, the half-maximal saturating activity, K
M
(Na), being 14.2 mm and the maximal conductance, G
max(Na), 53.9 pS. When Ca2+ was present with Na+ in the external solution, the single-channel current was lower than in pure Na+, although the reversal potential indicated a higher permeability for Ca2+ than for Na+. Using ion activities, PCa/PNa was found to be about 17. The I-V data were fitted with a model based on the Eyring's rate theory, assuming a one-ion pore with three energy barriers and two
sites. The K
M
(Ca) and G
max (Ca) were 76.5 μm and 21.2 pS, respectively. According to the estimated rate constants, K
M
for Ca2+ is mainly determined by the binding strength of a site located 80% away from the channel opening at the external membrane-solution
interface, a position similar to that postulated previously for the Mg2+ blocking site.
Received: 3 May 1996/Revised: 25 September 1996 相似文献
11.
A. Wiese M. Münstermann T. Gutsmann B. Lindner K. Kawahara U. Zähringer U. Seydel 《The Journal of membrane biology》1998,162(2):127-138
We have studied the interaction of the polycationic peptide antibiotic polymyxin B (PMB) with asymmetric planar bilayer membranes
via electrical measurements. The bilayers were of different compositions, including those of the lipid matrices of the outer
membranes of various species of Gram-negative bacteria. One leaflet, representing the bacterial inner leaflet, consisted of
a phospholipid mixture (PL; phosphatidylethanolamine, -glycerol, and diphosphatidylglycerol in a molar ratio of 81:17:2).
The other (outer) leaflet consisted either of lipopolysaccharide (LPS) from deep rough mutants of PMB-sensitive (Escherichia coli F515) or -resistant strains (Proteus mirabilis R45), glycosphingolipid (GSL-1) from Sphingomonas paucimobilis IAM 12576, or phospholipids (phosphatidylglycerol, diphytanoylphosphatidylcholine). In all membrane systems, the addition
of PMB to the outer leaflet led to the induction of current fluctuations due to transient membrane lesions. The minimal PMB
concentration required for the induction of the lesions and their size correlated with the charge of the lipid molecules.
In the membrane system resembling the lipid matrix of a PMB-sensitive strain (F515 LPS/PL), the diameters of the lesions were
large enough (d= 2.4 nm ± 8%) to allow PMB molecules to permeate (self-promoted transport), but in all other systems they were too small.
A comparison of these phenomena with membrane effects induced by detergents (dodecyltriphenylphosphonium bromide, dodecyltrimethylammonium
bromide, sodiumdodecylsulfate) revealed a detergent-like mechanism of the PMB-membrane interaction.
Received: 16 September 1997/Revised: 25 November 1997 相似文献
12.
We have obtained and modeled the electrical characteristics of the plasma membrane of Chara internodal cells: intact, without turgor and perfused with and without ATP. The cells were voltage and space-clamped to obtain
the I/V (current-voltage) and G/V (conductance-voltage) profiles of the cell membrane.
The intact cells yielded similar I/V characteristics with resting p.d.s of −221 ± 12 mV (cytoplasmic clamp, 5 cells) and −217 ± 12 mV (vacuolar clamp, 5 cells).
The cut unperfused cells were depolarized at −169 ± 12 mV (7 cells) compared to the vacuole-clamped intact cells. The cells
perfused with ATP fell into three groups: hyperpolarized group with resting p.d. −175 ± 12 mV (4 cells) and I/V profile similar to the intact and cut unperfused cells; depolarized group with resting p.d. of −107 ± 12 mV (6 cells) and
I/V profiles close to linear; and excited cells with profiles showing a negative conductance region and resting p.d. at −59 ±
12 mV (5 cells). The cells perfused with medium containing no ATP showed upwardly concave I/V characteristics and resting p.d. at −81 ± 12 mV (6 cells).
The I/V curves were modeled employing the ``Two-state' model for the H+ pump (Hansen et al., 1981). The inward and outward rectifiers were fitted to exponential functions and combined with a linear
background current. The excitation state in perfused cells was modeled by including an inward current, i
excit, with p.d.-dependence described by a combination of hyperbolic tangent functions. An inward current, i
no-ATP, with a smaller amplitude, but very similar p.d.-dependence was also included in the simulation of the I/V curves from cells without ATP. This approach avoided I/V curve subtraction.
The modeling of the total I/V and G/V characteristics provided more information about the parameters of the ``Two-state' pump model, as well as more quantitative
understanding of the interaction of the major transport systems in the plasmalemma in generation of the resting potential
under a range of circumstances. ATP had little effect on nonpump currents except the excitation current; depolarization profoundly
affected the pump characteristics.
Received: 23 January/Revised: 10 October 1995 相似文献
13.
Block of K+ channels can be influenced by the ability of charged residues on the protein surface to accumulate cationic blocking ions
to concentrations greater than those in bulk solution. We examined the ionic strength dependence of extracellular block of
Shaker K+ channels by tetraethylammonium ions (TEA+) and by a trivalent quaternary ammonium ion, gallamine3+. Wild-type and mutant channels were expressed in Xenopus oocytes and currents recorded with the cut-open oocyte technique. Channel block by both compounds was substantially increased
when the bathing electrolyte ionic strength was lowered, but with a much larger effect for trivalent gallamine. These data
were quantitatively well described by a simple electrostatic model, accounting for accumulation of blocking ions near the
pore of the channel by surface charges. The surface charge density of the wild-type channel consistent with the results was
−0.1 e nm−2. Shaker channels with T449Y mutations have an increased affinity for both TEA and gallamine but the ionic strength dependence of
block was described with the same surface charge density as wild-type channels. Much of the increased sensitivity of Shaker K+ channels to gallamine may be due to a larger local accumulation of the trivalent ion. The negative charge at position 431
contributes to the sensitivity of channels to TEA (MacKinnon & Yellen, 1990). A charge reversal mutation at this location
had little effect on the ionic strength dependence of quaternary ammonium ion block, suggesting that the charge on this amino
acid may directly affect binding affinity but not local ion accumulation.
Received: 7 December 2000/Revised: 27 April 2001 相似文献
14.
Brush border membrane vesicles, BBMV, from eel intestinal cells or kidney proximal tubule cells were prepared in a low osmolarity
cellobiose buffer. The osmotic water permeability coefficient P
f
for eel vesicles was not affected by pCMBS and was measured at 1.6 × 10−3 cm sec−1 at 23°C, a value lower than 3.6 × 10−3 cm sec−1 exhibited by the kidney vesicles and similar to published values for lipid bilayers. An activation energy E
a
of 14.7 Kcal mol−1 for water transport was obtained for eel intestine, contrasting with 4.8 Kcal mol−1 determined for rabbit kidney proximal tubule vesicles using the same method of analysis. The high value of E
a
, as well as the low P
f
for the eel intestine is compatible with the absence of water channels in these membrane vesicles and is consistent with
the view that water permeates by dissolution and diffusion in the membrane. Further, the initial transient observed in the
osmotic response of kidney vesicles, which is presumed to reflect the inhibition of water channels by membrane stress, could
not be observed in the eel intestinal vesicles. The P
f
dependence on the tonicity of the osmotic shock, described for kidney vesicles and related to the dissipation of pressure
and stress at low tonicity shocks, was not seen with eel vesicles. These results indicate that the membranes from two volume
transporter epithelia have different mechanisms of water permeation. Presumably the functional water channels observed in
kidney vesicles are not present in eel intestine vesicles. The elastic modulus of the membrane was estimated by analysis of
swelling kinetics of eel vesicles following hypotonic shock. The value obtained, 0.79 × 10−3 N cm−1, compares favorably with the corresponding value, 0.87 × 10−3 N cm−1, estimated from measurements at osmotic equilibrium.
Received: 28 January 1999/Revised: 15 June 1999 相似文献
15.
G. Menestrina C. Pederzolli M. Dalla Serra M. Bregante F. Gambale 《The Journal of membrane biology》1996,149(2):113-121
Escherichia coli hemolysin is known to cause hemolysis of red blood cells by forming hydrophilic pores in their cell membrane. Hemolysin-induced
pores have been directly visualized in model systems such as planar lipid membranes and unilamellar vesicles. However this
hemolysin, like all the members of a related family of toxins called Repeat Toxins, is a potent leukotoxin. To investigate
whether the formation of channels is involved also in its leukotoxic activity, we used patch-clamped human macrophages as
targets. Indeed, when exposed to the hemolysin, these cells developed additional pores into their membrane. Such exogenous
pores had properties very different from the endogenous channels already present in the cell membrane (primarily K+ channels), but very similar to the pores formed by the toxin in purely lipidic model membranes. Observed properties were:
large single channel conductance, cation over anion selectivity but weak discrimination among different cations, quasilinear
current-voltage characteristic and the existence of a flickering pre-open state of small conductance. The selectivity properties
of the toxin channels appearing in phospholipid vesicles were also investigated, using a specially adapted polarization/depolarization
assay, and were found to be completely consistent with that of the current fluctuations observed in excised macrophage patches.
Received: 14 August 1995/Revised: 2 October 1995 相似文献
16.
How thyroid hormones move across biological or model membranes is a subject of controversy. The passage of the 3,5,3′triiodo
l-thyronine and 3,5,3′,5′ tetraiodo l-thyronine across model membranes was evaluated by the addition of the hormones to liposomes containing 2,4,6-trinitrobenzene
sulfonic acid. Results indicate that hormones can react with an amino-reactive compound pre-encapsulated into phosphatidylcholine
liposomes. The transversal motions of thyroid hormones were characterized by using physiological concentration levels of (125I) 3,5,3′triiodo l-thyronine and (125I) 3,5,3′,5′ tetraiodo l-thyronine. The hormone distribution between the two monolayers was time-dependent and kinetic data were fitted to a single
exponential. Results obtained show that 3,5,3′ triiodo l-thyronine can permeate phospholipid membranes and the diffusion time increases in the gel and liquid-ordered phase. On the
contrary, 3,5,3′, 5′ tetraiodo l-thyronine could not diffuse the liposomal membrane from dimyristoyl and dipalmitoyl phosphatidylcholine in gel phase and
egg yolk phosphatidylcholine:cholesterol in the liquid-ordered phase. Our results in the liquid-ordered phase suggest that
diffusion movement of thyroid hormones across cell membranes depends on the amount of cholesterol in the bilayer.
Received: 1 June 1998/Revised: 14 October 1998 相似文献
17.
Electrical breakdown of erythrocytes induces hemoglobin release which increases markedly with decreasing conductivity of
the pulse medium. This effect presumably results from the transient, conductivity-dependent deformation forces (elongation
or compression) on the cell caused by Maxwell stress. The deformation force is exerted on the plasma membrane of the cell,
which can be viewed as a transient dipole induced by an applied DC electric field pulse. The induced dipole arises from the
free charges that accumulate at the cell interfaces via the Maxwell-Wagner polarization mechanism. The polarization response
of erythrocytes to a DC field pulse was estimated from the experimental data obtained by using two complementary frequency-domain
techniques. The response is very rapid, due to the highly conductive cytosol. Measurements of the electrorotation and electrodeformation
spectra over a wide conductivity range yielded the information and data required for the calculation of the deformation force
as a function of frequency and external conductivity and for the calculation of the transient development of the deformation
forces during the application of a DC-field pulse. These calculations showed that (i) electric force precedes and accompanies
membrane charging (up to the breakdown voltage) and (ii) that under low-conductivity conditions, the electric stretching force
contributes significantly to the enlargement of ``electroleaks' in the plasma membrane generated by electric breakdown.
Received: 12 December 1997/Revised: 13 March 1998 相似文献
18.
Plasma membrane anion channels are thought to play important roles in osmoregulation and signal transduction in higher plant
cells. Knowledge of their pharmacology and regulation is of importance to unravel their physiological functions. In this study,
we explore the pharmacological properties and the nucleotide regulation of the voltage-dependent anion channel of Arabidopsis hypocotyls. The pharmacological profile of this channel is characterized by a low sensitivity to most anion channel blockers.
It is inhibited by niflumic acid with an IC50 of 80 μm, but poorly sensitive to IAA-94 and NPPB and insensitive to 9-AC and DIDS. Nucleotides alter the amplitude, the kinetics
and the voltage-dependence of the channel. The main effect of nucleotides is a shift of the voltage-dependent gate of the
channel toward depolarized potentials leading to a strong reduction of the current amplitude. This regulation does not require
ATP hydrolysis as nonhydrolyzable ATP analogues—AMPPNP and ATPγS—also regulate the anion current. This suggests that a nucleotide
binding site is involved in the regulation. The study of the properties of this putative nucleotide binding site reveals that
(i) ATP regulates the channel with an EC50 of 0.7 mm, (ii) adenyl nucleotides modulate the channel with the following order of effectiveness: ATP > ADP ≫ AMP, and (iii) thiophosphate
nucleotide analogues are the most potent agonists with EC50 in the range of 80 μm. The hypothesis that this regulation may couple the electrical properties of the membrane with the metabolic status of the
cell is discussed.
Received: 26 December 1996/Revised: 21 March 1997 相似文献
19.
Transient outward currents were characterized with twin electrode voltage clamp techniques in isolated F76 and D1 neuronal
membranes (soma only) of Helix aspersa subesophageal ganglia. In this study, in addition to the transient outward current (A-current, I
A
) described by Connor and Stevens (1971b), another fast outward current, referred to as I
Adepol
here, is described for the first time. This is similar to the current component characterized in Aplysia (Furukawa, Kandel & Pfaffinger, 1992). The separation of these two current components was based on activation and steady-state
inactivation curves, holding potentials and sensitivity to 4-aminopyridine (4-AP). In contrast to I
A
, I
Adepol
did not require hyperpolarizing conditioning pulses to remove inactivation; it was evoked from a holding potential of −40
mV, at which I
A
is completely inactivated. I
Adepol
shows noticeable activation at around −5 mV, whereas I
A
activates at around −50 mV. The time courses of I
Adepol
activation and inactivation were similar but slower than I
A
. It was found that I
Adepol
was more sensitive than I
A
to 4-AP. 4-AP at a concentration of 1 mm blocked I
Adepol
completely, whereas 5–6 mm 4-AP was needed to block I
A
completely. This current is potentially very important because it may, like other A currents, regulate firing frequency but
notably, it does not require a period of hyperpolarization to be active.
Received: 12 May 2000/Revised: 12 October 2000 相似文献
20.
Ionic channels of the sugar beet tonoplast were studied using the patch-clamp technique. At micromolar concentrations of
cytosolic calcium, several (at least four) distinct single-channel current levels were routinely identified. On the basis
of channel voltage dependence, kinetic properties and conductance of single openings, the largest channel (103 ± 2 pS in symmetric
150 mm KCl) corresponds to the slow vacuolar (SV) channel already identified by Hedrich and Neher (1987). The majority of the whole-vacuole
current was ascribed to this time-dependent slow-activating channel elicited by positive vacuolar potentials. The channel
of intermediate amplitude (41 ± 1 pS in 150 mm KCl) did not show any voltage dependence and delay in the activation upon the application of voltage steps to both positive
and negative transmembrane potentials. Owing to its voltage independence this channel was denominated FV1. The opening probability
of the SV-type channel increased by increasing the cytoplasmic calcium concentration, while the activity of the FV1 channel
did not increase appreciably by changing the calcium concentration in the range from 6 μm to 1 mm. All the channels identified showed a linear current-voltage characteristic in the range ±100 mV and at least the three most
conductive ones displayed potassium selectivity properties. Substitution of potassium with tetramethylammonium (TMA) on the
cytosolic side demonstrated that both the SV and FV1 channels are impermeable to TMA influx into the vacuole and support the
potassium selectivity properties of these two channels. Moreover, the single channel conductances of all the channels identified
increased as a function of the potassium concentration and reached a maximum conductivity at [K+] ∼0.5 m. This behavior can be explained by a multi-ion occupancy single-file permeation mechanism.
Received: 26 December 1995/Revised: 10 July 1996 相似文献