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1.
An increase in extracellular potassium ion concentration, K o , significantly slows the potassium channel deactivation rate in squid giant axons, as previously shown. Surprisingly, the effect does not occur in all preparations which, coupled with the voltage independence of this result in preparations in which it does occur, suggests that it is mediated at a site outside of the electric field of the channel, and that this site is accessible to potassium ions in some preparations, but not in others. In other words, the effect does not appear to be related to occupancy of the channel by potassium ions. This conclusion is supported by a four-barrier, three-binding site model of single file diffusion through the channel in which one site, at most, is unoccupied by a potassium ion (single-vacancy model). The model is consistent with current-voltage relations with various levels of K o , and, by definition, with multiple occupancy by K+. The model predicts that occupancy of any given site is essentially independent of K o (or K i ). The effects of extracellular Rb+ and Cs+ on gating are strongly voltage dependent, and they were observed in all preparations investigated. Consequently, the mechanism underlying these results would appear to be different from that which underlies the effect of K+ on gating. In particular, the effect of Rb+ on gating is reduced by strong hyperpolarization, which in the context of the occupancy hypothesis, is consistent with the voltage dependence of the current-voltage relation in the presence of Rb+. The primary, novel, finding in this study is that the effects of Cs+ are counterintuitive in this regard. Specifically, the slowing of channel deactivation rate by Cs+ is also reduced by hyperpolarization, similar to the Rb+ results, whereas blockade is enhanced, which is seemingly inconsistent with the concept that occupancy of the channel by Cs+ underlies the effect of this ion on gating. This result is further elucidated by barrier modeling of the current-voltage relation in the presence of Cs+. Received: 19 December 1995/Revised: 10 June 1996  相似文献   

2.
Root K+ acquisition is a key process for plant growth and development, extensively studied in the model plant Arabidopsis thaliana. Because important differences may exist among species, translational research supported by specific studies is needed in crops such as tomato. Here we present a reverse genetics study to demonstrate the role of the SlHAK5 K+ transporter in tomato K+ nutrition, Cs+ accumulation and its fertility. slhak5 KO lines, generated by CRISPR-Cas edition, were characterized in growth experiments, Rb+ and Cs+ uptake tests and root cells K+-induced plasma membrane depolarizations. Pollen viability and its K+ accumulation capacity were estimated by using the K+-sensitive dye Ion Potassium Green 4. SlHAK5 is the major system for high-affinity root K+ uptake required for plant growth at low K+, even in the presence of salinity. It also constitutes a pathway for Cs+ entry in tomato plants with a strong impact on fruit Cs+ accumulation. SlHAK5 also contributes to pollen K+ uptake and viability and its absence produces almost seedless fruits. Knowledge gained into SlHAK5 can serve as a model for other crops with fleshy fruits and it can help to generate tools to develop low Cs+ or seedless fruits crops.  相似文献   

3.
The influence of alkali ions on the circadian leaf movements of Oxalis regnellii Mig. was investigated. Ions were given to the oscillating system via the transpiration stream of cut stalks in nutrient medium. Chloride solutions of Rb+, Cs+, Na+ and K+ were tested and the results compared to previously published LiCl-results. The period of the circadian leaf movements was unaffected by a continual addition of Na+ or K+ to the nutrient medium (at least up to 40 mM). Rb+, in the concentration of 2.5 or 5 mM, caused a shortening of the period when applied continuously. Rb+ concentrations up to 60 mM were tested. Cs+ ions caused only lengthenings of the circadian period. Cs+ concentrations up to 40 mM were tested. Cs+ resembled Li+ in producing period lengthenings, but was not as effective as Li+ when compared on a concentration basis. Toxicity of the effective ions was in the following order: Li+Cs+Rb+, Rb+ pulses (50 mM, 4 h) phase-shifted the rhythm and caused advances. A phase response curve was determined and the maximum steady state advances were of the order of 1 h. The dual effect of the Rb+ ions is discussed and is assumed to be due to two counteracting processes, exemplified by Rb+-sensitive ATPase-controlled pumping processes and protein synthesis. For comparison, the effects of Rb+ and Li+ in human depressive disorders is also discussed in relation to their influence on circadian systems. It is emphasized that Rb+ and K+ behave differently and are not interchangeable in their action on circadian systems.  相似文献   

4.
Plant roots accumulate potassium from a wide range of soil concentrations, utilizing at least two distinct plasma membrane uptake systems with different affinities for the cation. Although details on the structure and function of these transporters are beginning to emerge many prominent questions remain concerning how these proteins function in planta. Such questions can be addressed through the use of well-defined transport mutants. Csi52, a caesium-insensitive mutant of Arabidopsis thaliana which is defective in potassium transport, is further characterized here using conventional electrophysiology, patch-clamp and radiometric approaches to identify the nature of the potassium transport lesion. Rb+ uptake experiments reveal a reduced uptake in csi52 in both the high- and low-affinity uptake range. Patch-clamp analysis indicates that the activity of the predominant inward rectifying channel observed in wild-type cells is extremely low in root protoplasts isolated from csi52, whereas outward rectifying channel activity is comparable between wild-type and mutant. Rb+ uptake studies show that in both wild-type and csi52 the high-affinity uptake pathway is considerably less sensitive to Cs+ than the low-affinity pathway with K1/2 values for Cs+ of around 1.3 and 0.2 mM, respectively. Furthermore, K+ starvation leads to a larger relative increase in high-affinity K+ uptake in the mutant than the wild-type. The results demonstrate the Cs+ sensitivity of each individual uptake pathway is comparable in wild-type and csi52 but the high-affinity pathway is less Cs+ sensitive (in both wild-type and csi52). Therefore, the larger shift toward high-affinity uptake in the mutant compared with the wild-type under K+-starvation conditions will endow the mutant with a higher degree of overall Cs+ resistance. The data supply evidence for the hypothesis that the csi52 mutation lies within a gene that regulates the activity of several potassium transport systems and coordinates their relative contribution to overall root K+ uptake.  相似文献   

5.
Summary The Ca2+-activated K+ channel of the human red cell membranes was characterized with respect to rectification and selectivity using the patch-clamp technique. In inside-out patches exposed to symmetric solutions of K+, Rb+, and NH 4 + , respectively, inward rectifyingi-V curves were obtained. The zero current conductances were: K+ (23.5 pS±3.2)>NH 4 + (14.2 pS±1.2)>Rb+ (11.4 pS±1.8). With low extracellular K+ concentrations (substitution with Na+) the current fluctuations reversed close to the Nernst potential for the K ion and the rectification as well as thei-V slopes decreased. With mixed intracellular solutions of K+ and Na+ enhanced rectification were observed due to a Na+ block of outward currents. From bi-ionic reversal potentials the following permeability sequence (P K/P X) was calculated: K+ (1.0)>Rb+ (1.4±0.1)>NH 4 + (8.5±1.3)>Li+(>50); Na+ (>110); Cs+ (5). Li+, Na+, and Cs+ were not found to carry any current, and only minimum values of the permeability ratios were estimated. Tl+ was permeant, but the permeability and conductance were difficult to quantify, since with this ion the single channel activity was extremely low and the channels seemed to inactivate. The inward rectification in symmetric solutions indicate an asymmetric open channel structure, and the different selectivity sequences based on conductances and permeabilities reflect interionic interactions in the permeation process.  相似文献   

6.
The wheat root high-affinity K+ transporter HKT1 functions as a sodium-coupled potassium co-uptake transporter. At toxic millimolar levels of sodium (Na+), HKT1 mediates low-affinity Na+ uptake while potassium (K+) uptake is blocked. In roots, low-affinity Na+ uptake and inhibition of K+ uptake contribute to Na+ toxicity. In the present study, the selectivity among alkali cations of HKT1 expressed in Xenopus oocytes and yeast was investigated under various ionic conditions at steady state. The data show that HKT1 is highly selective for uptake of the two physiologically significant alkali cations, K+ and Na+ over Rb+, Cs+ and Li+. In addition, Rb+ and Cs+, and an excess of extracellular K+ over Na+, are shown to partially reduce or block HKT1-mediated K+-Na+ uptake. Furthermore, K+, Rb+ and Cs+ also effectively reduce outward currents mediated by HKT1, thereby causing depolarizations. In yeast, HKT1 can produce high-affinity Rb+ uptake at approximately 15-fold lower rates than for K+. Rb+ influx in yeast can be mediated by the ability of the yeast plasma membrane proton pump to balance the 35-fold lower HKT1 conductance for Rb+. A model for HKT1 activity is presented involving a high-affinity K+ binding site and a high-affinity Na+ binding site, and competitive interactions of K+, Na+ and other alkali cations for binding to these two sites. Possible implications of the presented results for physiological K+ and Na+ uptake in plants are discussed.  相似文献   

7.
K+ channel gating currents are usually measured in the absence of permeating ions, when a common feature of channel closing is a rising phase of off-gating current and slow subsequent decay. Current models of gating invoke a concerted rearrangement of subunits just before the open state to explain this very slow charge return from opening potentials. We have measured gating currents from the voltage-gated K+ channel, Kv1.5, highly overexpressed in human embryonic kidney cells. In the presence of permeating K+ or Cs+, we show, by comparison with data obtained in the absence of permeant ions, that there is a rapid return of charge after depolarizations. Measurement of off-gating currents on repolarization before and after K+ dialysis from cells allowed a comparison of off-gating current amplitudes and time course in the same cells. Parallel experiments utilizing the low permeability of Cs+ through Kv1.5 revealed similar rapid charge return during measurements of off-gating currents at ECs. Such effects could not be reproduced in a nonconducting mutant (W472F) of Kv1.5, in which, by definition, ion permeation was macroscopically absent. This preservation of a fast kinetic structure of off-gating currents on return from potentials at which channels open suggests an allosteric modulation by permeant cations. This may arise from a direct action on a slow step late in the activation pathway, or via a retardation in the rate of C-type inactivation. The activation energy barrier for K+ channel closing is reduced, which may be important during repetitive action potential spiking where ion channels characteristically undergo continuous cyclical activation and deactivation.  相似文献   

8.
The inwardly rectifying potassium channel (Kir), Kir4.1 mediates spatial K+-buffering in the CNS. In this process the channel is potentially exposed to a large range of extracellular K+ concentrations ([K+]o). We found that Kir4.1 is regulated by K+o. Increased [K+]o leads to a slow (mins) increase in the whole-cell currents of Xenopus oocytes expressing Kir4.1. Conversely, removing K+ from the bath solution results in a slow decrease of the currents. This regulation is not coupled to the pHi-sensitive gate of the channel, nor does it require the presence of K67, a residue necessary for K+o-dependent regulation of Kir1.1. The voltage-dependent blockers Cs+ and Ba2+ substitute for K+ and prevent deactivation of the channel in the absence of K+o. Cs+ blocks and regulates the channel with similar affinity, consistent with the regulatory sites being in the selectivity-filter of the channel. Although both Rb+ and NH4+ permeate Kir4.1, only Rb+ is able to regulate the channel. We conclude that Kir4.1 is regulated by ions interacting with specific sites in the selectivity filter. Using a kinetic model of the permeation process we show the plausibility of the channel’s sensing the extracellular ionic environment through changes in the selectivity occupancy pattern, and that it is feasible for an ion with the selectivity properties of NH4+ to permeate the channel without inducing these changes.  相似文献   

9.
The mechanisms of the hyperpolarizing and depolarizing actions of cesium were studied in cardiac Purkinje fibers perfused in vitro by means of a microelectrode technique under conditions that modify either the Na+-K+ pump activity or If. Cs+ (2 mM) inconsistently increased and then decreased the maximum diastolic potential (MDP); and markedly decreased diastolic depolarization (DD). Increase and decrease in MDP persisted in fibers driven at fast rate (no diastolic interval and no activation of If). In quiescent fibers, Cs+ caused a transient hyperpolarization during which elicited action potentials were followed by a markedly decreased undershoot and a much reduced DD. In fibers depolarized at the plateau in zero [K+]o (no If), Cs+ induced a persistent hyperpolarization. In 2 mM [K+]o, Cs+ reduced the undershoot and suppressed spontaneous activity by hyperpolarizing and thus preventing the attainment of the threshold. In 7 mM [K+]o, DD and undershoot were smaller and Cs+ reduced them. In 7 and 10 mM [K+]o, Cs+ caused a small inconsistent hyperpolarization and a net depolarization in quiescent fibers; and decreased MDP in driven fibers. In the presence of strophanthidin, Cs+ hyperpolarized less. Increasing [Cs+]o to 4, 8 and 16 mM gradually hyperpolarized less, depolarized more and abolished the undershoot. We conclude that in Purkinje fibers Cs+ hyperpolarizes the membrane by stimulating the activity of the electrogenic Na+-K+ pump (and not by suppressing If); and blocks the pacemaker potential by blocking the undershoot, consistent with a Cs+ block of a potassium pacemaker current.  相似文献   

10.
The effect of extracellular cation concentration and membrane voltage on the current carried by outward-rectifying K+ channels was examined in stomatal guard cells of Vicia faba L. Intact guard cells were impaled with double-barrelled microelectrodes and the K+ current was monitored under voltage clamp in 0.1–30 mm K+ and in equivalent concentrations of Rb+, Cs+ and Na+. From a conditioning voltage of −200 mV, clamp steps to voltages between −150 and +50 mV in 0.1 mm K+ activated current through outward-rectifying K+ channels (I K, out) at the plasma membrane in a voltage-dependent fashion. Increasing [K+] o shifted the voltage-sensitivity of I K, out in parallel with the equilibrium potential for K+ across the membrane. A similar effect of [K+] o was evident in the kinetics of I K, out activation and deactivation, as well as the steady-state conductance- (g K ) voltage relations. Linear conductances, determined as a function of the conditioning voltage from instantaneous I-V curves, yielded voltages for half-maximal conductance near −130 mV in 0.1 mm K+, −80 mV in 1.0 mm K+, and −20 mV in 10 mm K+. Similar data were obtained with Rb+ and Cs+, but not with Na+, consistent with the relative efficacy of cation binding under equilibrium conditions (K+≥ Rb+ > Cs+ > > Na+). Changing Ca2+ or Mg2+ concentrations outside between 0.1 and 10 mm was without effect on the voltage-dependence of g K or on I K, out activation kinetics, although 10 mm [Ca2+] o accelerated current deactivation at voltages negative of −75 mV. At any one voltage, increasing [K+] o suppressed g K completely, an action that showed significant cooperativity with a Hill coefficient of 2. The apparent affinity for K+ was sensitive to voltage, varying from 0.5 to 20 mm with clamp voltages near −100 to 0 mV, respectively. These, and additional data indicate that extracellular K+ acts as a ligand and alters the voltage-dependence of I K, out gating; the results implicate K+-binding sites accessible from the external surface of the membrane, deep within the electrical field, but distinct from the channel pore; and they are consistent with a serial 4-state reaction-kinetic model for channel gating in which binding of two K+ ions outside affects the distribution between closed states of the channel. Received: 27 November 1996/Revised: 4 March 1997  相似文献   

11.
Summary Permeability ratios for pairs of monovalent cations permeating the two potassium systems proposed for the giant axon of the crabCarcinus maenas (M. E. Quinta-Ferreira, E. Rojas & N. Arispe,J. Membrane Biol. 66:171–181, 1982b) were estimated from measurements of the reversal potential of the currents under voltage-clamp conditions. With K+ inside the axon, permeability ratios from the reversal potential of the currents through the late channel are:P Rb/P K=0.9, /P K<0.2 andP Cs/P K=0.18. With Cs+ inside the ratios are:P K/P Cs=8.7,P Rb/P Cs=7.1 and /P Cs=2.4. The analysis of the inward currents carried by Rb+ or NH 4 + showed similar reversal potentials for the early transient component and the late sustained component. Whence, the sequence of permeabilities for the two types of potassium channels is:P K>P Rb> >P Na=P Cs. The time constants for the activation of the two components recorded either in K-, Rb-, or NH4-artificial seawater are twice as large as the corresponding time constants measured in Na-artificial seawater.  相似文献   

12.
We investigated the effect of external cations on the permeability characteristics and gating kinetics of the human ether-à-go-go-related gene (HERG) current using the whole-cell patch-clamp technique. Inward HERG currents were recorded on hyperpolarization in 140 mM external Cs+ and Rb+, as well as K+. The permeability ratios of Rb+ and Cs+ relative to K+ were 1.25 and 0.56, respectively. Biphasic outward currents were recorded on depolarization in 140 mM Cs+ and in Rb+ with much smaller amplitude. The voltage dependence of inactivation was affected by external cations, such that the half-inactivation voltage shifted from –69.4±3.7 mV in K+ to –30.7±1.6 mV in Cs+ and to –35.8±1.9 mV in Rb+ (n=5). The time constants of inactivation were also changed significantly by external cations; of inactivation at +40 mV was 16.4±2.2 ms in 140 mM K+, 181±20.3 ms in Cs+, and 94.1±7.6 ms in Rb+ (n=5). Voltage dependence of activation was not altered significantly. The inhibition of the rapid inactivation mechanism by large cations may suggest that the foot-in-the-door model of gating is involved in HERG channel inactivation.  相似文献   

13.
Root cells take up K+ from the soil solution, and a fraction of the absorbed K+ is translocated to the shoot after being loaded into xylem vessels. K+ uptake and translocation are spatially separated processes. K+ uptake occurs in the cortex and epidermis whereas K+ translocation starts at the stele. Both uptake and translocation processes are expected to be linked, but the connection between them is not well characterized. Here, we studied K+ uptake and translocation using Rb+ as a tracer in wild‐type Arabidopsis thaliana and in T‐DNA insertion mutants in the K+ uptake or translocation systems. The relative amount of translocated Rb+ to the shoot was positively correlated with net Rb+ uptake rates, and the akt1 athak5 T‐DNA mutant plants were more efficient in their allocation of Rb+ to shoots. Moreover, a mutation of SKOR and a reduced plant transpiration prevented the full upregulation of AtHAK5 gene expression and Rb+ uptake in K+‐starved plants. Lastly, Rb+ was found to be retrieved from root xylem vessels, with AKT1 playing a significant role in K+‐sufficient plants. Overall, our results suggest that K+ uptake and translocation are tightly coordinated via signals that regulate the expression of K+ transport systems.  相似文献   

14.
The classic compartment analysis of ion efflux from roots is often applied with the assumption that there is a system of 3 compartments in series. However, complex ion transport across the root tissues, as well as influences from the shoot, may complicate the picture. The present experiments were performed to study the immediate effects that excision of the shoot before the experiment exerts on the efflux of Rb+(86Rb+) and of K+(86Rb+) from 9-day-old roots of plants of barley (Hordeum vulgare L. cv. Salve). The efflux from high K+ and low K+ roots of intact and detopped plants were compared. After excision of the shoot of high K+ plants, a marked increase in efflux was observed after 2.5 h with a maximum at about 7 h. The increase in efflux was seen as a peak in plots of efflux versus time. Excision of the shoot from low K+ roots did not give rise to a consistent increase in efflux. Regular K+ ion efflux curves were observed from roots of intact plants of high or low K+ status. Furthermore, after a pulse treatment of 9-day-old roots of intact plants of high or low K+ status with a solution containing Rb+(86Rb+), the Rb+(86Rb+) transport to the shoots was not reduced during the following 3 h in unlabelled solution. It is suggested that both the peak appearing in the efflux plots and the maintained tracer transport to the shoots after transfer of the roots to an unlabelled solution indicate the existence of a K+/Rb+ transport system in the symplasm of the roots that has only a slow exchange with the bulk cytoplasm and vacuoles.  相似文献   

15.
Vesicular preparations of plasma membranes (PM) from the microalga Tetraselmis (Platymonas) viridisRouch were used to investigate the ion specificity of the Na+/H+antiporter and Na+-translocating ATPase, two Na+-transporting systems previously identified functionally by our studies of T. viridisPM. The Na+/H+antiporter and Na+-ATPase were shown to translocate, with similar efficiencies, Na+and Li+across the membrane, whereas other cations, such as K+, Rb+, and Cs+, were not transported by these systems. Transport of the latter cations across PM of T. viridisoccurred through the ion channels of PM, which were apparently selective for K+.  相似文献   

16.
Potassium (K+) and cesium (Cs+) are chemically similar but while K+ is an essential nutrient, Cs+ can be toxic for living organisms, plants included. Two different situations could lead to problems derived from the presence of Cs+ in agricultural systems: (1) presence of Cs+ at high concentrations that could produce toxic effects on plants, (2) presence of micromolar concentrations of radiocesium, which can be accumulated in the plant and affect animal and human health through the food chain. While K+ uptake has been well described in tomato plants, information on molecular mechanisms involved in Cs+ accumulation in this species is absent. Here, we show that in tomato plants, high concentrations of Cs+ produce deficiency of K+ but do not induce high‐affinity K+ uptake or the gene encoding the high‐affinity K+ transporter SlHAK5. At these concentrations, Cs+ uptake takes place through a Ca2+‐sensitive pathway, probably a non‐selective cation channel. At micromolar concentrations, Cs+ is accumulated by a high‐affinity uptake system upregulated in K+‐starved plants. This high‐affinity Cs+ uptake shares features with high‐affinity K+ uptake. It is sensitive to NH4+ and insensitive to Ba2+ and Ca2+ and its presence parallels the pattern of SlHAK5 expression. Moreover, blockers of reactive oxygen species and ethylene action repress SlHAK5 and negatively regulate both high‐affinity K+ and Cs+ uptake. Thus, we propose that SlHAK5 contributes to Cs+ uptake from micromolar concentrations in tomato plants and can constitute a pathway for radiocesium transfer from contaminated areas to the food chain.  相似文献   

17.
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   

18.
Potassium channels allow the selective flux of K+ excluding the smaller, and more abundant in the extracellular solution, Na+ ions. Here we show that Shab is a typical K+ channel that excludes Na+ under bi-ionic, Nao/Ki or Nao/Rbi, conditions. However, when internal K+ is replaced by Cs+ (Nao/Csi), stable inward Na+ and outward Cs+ currents are observed. These currents show that Shab selectivity is not accounted for by protein structural elements alone, as implicit in the snug-fit model of selectivity. Additionally, here we report the block of Shab channels by external Ca2+ ions, and compare the effect that internal K+ replacement exerts on both Ca2+ and TEA block. Our observations indicate that Ca2+ blocks the channels at a site located near the external TEA binding site, and that this pore region changes conformation under conditions that allow Na+ permeation. In contrast, the latter ion conditions do not significantly affect the binding of quinidine to the pore central cavity. Based on our observations and the structural information derived from the NaK bacterial channel, we hypothesize that Ca2+ is probably coordinated by main chain carbonyls of the pore´s first K+-binding site.  相似文献   

19.
The influx of Rb+ into the roots of two barley varieties (Hordeum vulgare L. cv. Salve and cv. Ingrid) from a K+-free 86Rb-labelled nutrient solution with 2.0 mM Rb+, was checked at intervals from day 6 to day 18. The control plants were continuously grown in complete nutrient solution containing 5.0 mM K+, while two other groups of plants were grown in K+-free nutrient solution starting on day 6 and between day 6 and day 9, respectively. The pattern of Rb+ influx was similar for both varieties, although their efficiencies in absorbing Rb+ were different. The relationship between Rb+ influx and K+ concentration of the root could be interpreted in terms of negative feedback through allosteric control of uptake across the plasmalemma of the root cells. Hill plots were bimodal, but in the opposite direction. The Hill coefficients, reflecting the minimum number of interacting allosteric binding sites for K+ (Rb+), were low (≤–3.0). It is discussed whether the threshold value, that is the breaking point in the Hill plot, is indicative of a changed efficiency of transporting units for K+ (Rb+) transport to the xylem. Moreover, feedback regulation might be involved in transport of K+ between root and shoot. The variation in K+ concentrations in the roots and shoots of control plants were cyclic but in phase opposition despite an exponential growth. The average K+ concentration varied only slightly with age.  相似文献   

20.
K+-stimulated phosphatase of microsomes from gastric mucosa   总被引:4,自引:0,他引:4  
The light microsomal fraction was isolated from homogenates of rabbit and bullfrog gastric mucosa. On examination with the electron microscope, the light microsomes appear as tubular membranous structures with morphology and dimensions similar to the elements of the smooth-surfaced endoplasmic reticulum seen in intact oxyntic cells. A K+-stimulated, Mg++-requiring p-nitrophenylphosphatase has been demonstrated in the gastric microsomes. Neither Na+ nor ouabain (10?6–10?3 M) altered the K+-stimulated phosphatase. SCN? was not very effective as an inhibitor of the gastric microsomal phosphatase, in contrast to the effect of this anion on the ATPase activity; however, the gastric phosphatase as well as the ATPase are destroyed by phospholipase C, thus showing the lipoprotein nature of these enzymes. Kinetics of the K+ activation of the microsomal phosphatase suggest that the K+-PNPP complex is the active substrate for the enzymic reaction. Rb+, NH4 + and Cs+ will substitute to some degree for K+ as an activator of the microsomal phosphatase. It is pointed out that K+ is an essential requirement for HCl secretion in intact gastric mucosa and the replacement of K+ with Rb+, Cs+ and NH4+ is discussed. The K+-stimulated phosphatase presented in this paper may play a role in the H+ secretion process.  相似文献   

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