首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 437 毫秒
1.
为研究二氧化硫(SO2)衍生物——NaHSO3和Na2SO3(二者分子比为1:3)对大鼠海马CA3区神经元瞬间外向钾电流(IA)的影响,利用全细胞膜片钳技术,根据动力学和药理学特性分离鉴定大鼠海马CA3区神经元IA,观察SO2衍生物对IA的效应。发现SO2代谢衍生物可浓度依赖性地增大IA,使IA增大50%的剂量为25μmol/L。此外还与电压呈依赖关系,但不具有频率依赖性。10μmol/L的SO2代谢衍生物不影响IA电流的激活过程,但升高了A-通道稳态失活电压,延长了A-电流失活时间。说明SO2代谢衍生物可增大大鼠海马CA3区神经元IA电流,延长A-电流的失活时间,从而影响海马神经元的膜生理感应,这可能是SO2影响神经细胞功能的机理之一。  相似文献   

2.
焦亚硫酸钠对大鼠海马CA1区神经元钾电流的影响   总被引:2,自引:0,他引:2  
目的:探讨焦亚硫酸钠(SMB)、二氧化硫(SO2)及其体内衍生物(亚硫酸盐和亚硫酸氢盐)对中枢神经元钾通道的影响及超氧化物歧化酶(SOD)、过氧化氢酶(CAT)及谷胱甘肽过氧化物酶(GPx)相应的保护作用.方法:采用全细胞膜片钳技术研究了SMB对大鼠海马CA1区神经元瞬间外向钾电流(IA)和延迟整流钾电流(IK)的影响.结果:①焦亚硫酸钠可增大全细胞IA和IK,且具剂量依赖性和电压依赖性,使IA和IK增大50%的剂量分别为15.8 μmol/L和11.5μmol/L;②10 μmol/L的SMB均可显著影响IA和IK的激活过程,给药前后IA的半数激活电压分别为(-12.6±1.6)mV和(-7.0±1.3)mV(n=8,P<0.01),IK的半数激活电压分别为(10.8±0.9)mV和(21.6±0.7)mV(n=8,P<0.01),但不改变其斜率因子;③10μmol/L的SMB还非常显著地影响IA的失活过程,给药前后其半数失活电压分别为(-97.0±1.1)mV和(-84.4±3.3)mV(n=8,P<0.01),但也不改变其斜率因子;④抗氧化酶SOD(1×106U/L)、CAT(2×106U/L)及GPx(105U/L)均可使SMB(10μmol/L)增大的IA和IK部分恢复.结论:SMB可显著增大IA和IK,抑制IA和IK的激活过程及IA的失活过程,从而导致胞内K 的外流增加,使胞内K 浓度降低,从而对中枢神经元功能产生不利影响.  相似文献   

3.
桑楠  孟紫强 《动物学报》2003,49(1):73-79
本文利用全细胞膜片钳技术研究了SO2 代谢衍生物———NaHSO3 和Na2 SO3 (二者分子比为 1∶3)对大鼠海马CA1区神经元瞬间外向钾电流 (IA)和延迟整流钾电流 (IK)的影响。结果表明 ,SO2 代谢衍生物可显著增大IA 和IK,且呈剂量依赖性关系 ,使IA 和IK 增大 5 0 %的剂量分别为 2 6 19μmol/L和 14 5 0 μmol/L。此外还与电压呈依赖性关系 ,但不具有频率依赖性。结果还表明 ,10 μmol/LSO2 代谢衍生物不影响IA 的激活过程 ,而对IK 的激活过程有非常显著的影响 ,给药前后IK 的半数激活电压分别为 17 6 4± 7 31mV和 13 43± 2 0 0mV (n=10 ,P <0 0 1) ,但不改变其斜率因子。另外 ,10 μmol/LSO2 代谢衍生物还非常显著地影响IA 的失活过程 ,给药前后其半数失活电压分别为 - 6 5 93± 1 97mV和 - 5 9 2 2± 3 83mV (n =10 ,P <0 0 1) ,但不改变其斜率因子。由此推断 ,SO2 代谢衍生物增大大鼠海马CA1区神经元的IA 和IK,促进IK 的激活过程 ,并抑制IA 的失活过程 ,可导致胞内K 通过K 通道的外流增加 ,胞内K 浓度降低 ,造成中枢神经元功能紊乱 ,诱导神经细胞凋亡。这意味着SO2 代谢衍生物对中枢神经系统具有损伤作用 ,从而提示大气SO2 污染可能与一些中枢神经系统疾病的发生以及衰老有关 [动物学报 49(1) :73  相似文献   

4.
瞬间外向钾电流(IA)具有快速激活和失活等特征,是动作电位复极化早期外向钾离子电流的主要成分,广泛分布在海马神经元,树突处尤为突出.该电流通过减慢去极化速度和延缓动作电位的产生等作用,调节突触的输入和动作电位的反向传播,从而在信号整合及突触可塑性等过程中扮演重要角色.很多人类疾病,如癫痫性疾病等,和海马神经元的IA电流有关.  相似文献   

5.
Fu ZY  DU CY  Yao Y  Liu CW  Tian YT  He BJ  Zhang T  Yang Z 《生理学报》2007,59(1):63-70
利用全细胞膜片钳技术,在急性分离的新生大鼠海马CA3区锥体细胞上研究高效氯氰菊酯的两种组分高顺氯氰菊酯和高反氯氰菊酯对瞬时外向钾电流(transient outward potassiumcurrent,IA)和延迟整流钾电流(delayed rectifier potassiumcurrent,Ik)的影响。高顺氯氰菊酯使IA增大,而高反氯氰菊酯则使IA减小。高顺和高反氯氰菊酯均使IA激活曲线左移,反式结构还可促进IA的失活。高顺和高反氯氰菊酯均使IK减小,并使其激活曲线左移,而对IK的失活过程无影响,高反氯氰菊酯可使IK失活后恢复过程延长。结果表明,瞬时外向钾通道和延迟整流钾通道同样是高效氯氰菊酯的作用靶点,这可能是高效氯氰菊酯对哺乳动物产生毒性作用的原因之一。  相似文献   

6.
目的:探讨新生大鼠海马神经干细胞体外培养分化后的神经元样细胞钾电流的变化.方法:神经干细胞体外扩增培养并传代后,撤除有丝分裂原并加血清诱导分化,应用全细胞电压钳技术检测分化后培养1 d、7 d、14 d、21 d细胞的电压依赖性钾电流.结果:分化后培养1 d的细胞,未检测出钾电流;分化后培养7 d、14 d、21 d的细胞,在 50 mV电压水平下的钾电流幅值分别为(18.077±2.789)pA/pF, (13.099±2.742)pA/pF, (34.045±8.067)pA/pF.该电流为两种电流的混合,分别能被TEA和4-AP所阻断,可能为缓慢失活的延迟整流钾电流(IK)和快速失活的瞬时外向钾电流(IA).结论:新生大鼠海马神经干细胞诱导分化后,随着体外培养时间的延长,钾离子通道的功能逐渐成熟.  相似文献   

7.
Jin HW  Zhang W  Qu LT  Wang XL 《生理学报》2003,55(6):711-716
本研究比较了转染的Kv4.2钾电流与原代培养大鼠海马神经元上瞬间外向钾电流(IA)动力学特征。实验采用瞬时转染,细胞培养和全细胞膜片钳记录等方法。结果表明:转染的Kv4.2通道电流和海马神经元上IA均具有明显的A型电流特征。海马神经元IA的半数最大激活电位和斜率因子分别为-10.0±3.3 mV和13.9±2.6 mV;半数最大失活电位和斜率因子分别为-93.0±11.4 mV和-9.0±1.5 mV;失活后再激活恢复时间常数(T)为27.9±14.1 ms。Kv4.2的半数最大激活电位和斜率因子分别为-9.7±4.1 mV和15.8±5.7 mV;半数最大失活电位和斜率因子分别为-59.4±12.2 mV和8.0±3.1 mV;Kv4.2的灭活后再激活的恢复时间常数τ为172.8±10.0 ms。结果提示:Kv4.2通道电流可能是海马神经元上的IA电流的主要成分,但不是唯一成分。  相似文献   

8.
目的和方法:采用全细胞式膜片钳技术,观察花生四烯酸(AA)对大鼠顶叶皮层神经元延迟整流钾电流(Ik)的影响。结果:①AA(10μmol/L)对大鼠顶叶皮层神经元Ik有抑制作用,抑制率为33.9%±8.74%(P<0.01)。②AA可使IK激活曲线的斜率因子变大且曲线向右移动,IK激活曲线的V1/2和k分别由给药前的(-55.3±0.9)mV和(10.3±0.4)mV,变为给药后的(-50.8±2.4)mV和(21.0±3.5)mV。③AA可使IK失活曲线斜率因子变大且曲线向左移动,IK失活曲线的V1/2和k分别由给药前的(-45.3±0.3)mV和(15.6±0.8)mV,变为给药后的(-70.9±1.9)mV和(36.5±2.1)mV。结论:花生四烯酸可抑制大鼠顶叶皮层神经元的延迟整流钾电流,并影响其动力学特征。  相似文献   

9.
运用全细胞膜片钳技术研究慢性铅暴露和急性给二氧化硫衍生物对大鼠海马神经元钠电流的影响,结果发现,慢性铅暴露组钠电流在-70mV激活,-30mV达到峰值;对照组钠电流在-70mV激活,-40mV达到峰值.两组峰值不具有显著性差异.急性给二氧化硫衍生物于慢性铅暴露组,钠电流在-80mV开始激活,-40mV达到峰值,I-V曲线显著下移.慢性铅暴露使穿越钠通道离子的绝对数量稍微有些减少,但不具有统计学差异;二氧化硫可使慢性铅暴露的海马神经元的INa显著增大.慢性铅暴露推迟了INa达到峰值的时间,但不影响失活时间常数;急性加入二氧化硫衍生物不改变慢性铅暴露达到峰值的时间,却使失活时间常数显著延长.慢性铅暴露使INa的激活曲线右移,失活曲线左移;二氧化硫衍生物使慢性铅暴露的海马神经元上的INa的激活和失活曲线都往超极化方向移动.这些结果表明,铅和二氧化硫改变了细胞膜钠通道对于电压的感应,延长了钠通道的开放时程,这些可能是这两种大气污染物联合损伤海马神经元的作用机制之一.  相似文献   

10.
胆固醇普遍存在于细胞膜中,其含量在细胞增殖、生长及各种疾病条件下会发生改变,这暗示胆固醇对细胞功能的调节起着重要的作用。运用全细胞膜片钳技术研究了胆固醇含量变化对海马神经细胞电压依赖钾电流的影响。实验观察到神经细胞经胆固醇去除剂β-甲基环化糊精(MβCD)处理后,胆固醇含量的减少促进了延迟整流钾电流IK的增加,且延缓了瞬间失活钾电流IA的失活。更进一步,延迟整流钾电流IK和瞬间失活钾电流IA分别经TEA和4-AP阻断后,MβCD对两种电流成分的影响显著降低。这一结果进一步表明胆固醇去除剂对电压依赖钾电流的上调是通过作用于IK和IA电流而共同实现的。基于电压依赖钾通道在神经细胞功能中的重要作用,实验结果暗示神经细胞胆固醇含量变化可对神经细胞的兴奋性起调节作用。  相似文献   

11.
The effects of sodium metabisulfite (SMB), a general food preservative, on potassium currents in rat dorsal root ganglion (DRG) neurons were investigated using the whole-cell patch-clamp technique. SMB increased the amplitudes of both transient outward potassium currents and delayed rectifier potassium current in concentration- and voltage-dependent manner. The transient outward potassium currents (TOCs) include a fast inactivating (A-current or I A) current and a slow inactivating (D-current or I D) current. SMB majorly increased IA, and ID was little affected. SMB did not affect the activation process of transient outward currents (TOCs), but the inactivation curve of TOCs was shifted to more positive potentials. The inactivation time constants of TOCs were also increased by SMB. For delayed rectifier potassium current (I K), SMB shifted the activation curve to hyperpolarizing direction. SMB differently affected TOCs and I K, its effects major on A-type K+ channels, which play a role in adjusting pain sensitivity in response to peripheral redox conditions. SMB did not increase TOCs and I K when adding DTT in pipette solution. These results suggested that SMB might oxidize potassium channels, which relate to adjusting pain sensitivity in pain-sensing DRG neurons.  相似文献   

12.
This paper provides the first study of voltage-sensitive membrane currents present in heart myocytes from cephalopods. Whole cell patch clamp recordings have revealed six different ionic currents in myocytes freshly dissociated from squid cardiac tissues (branchial and systemic hearts). Three types of outward potassium currents were identified: first, a transient outward voltage-activated A-current (IA), blocked by 4-aminopyridine, and inactivated by holding the cells at a potential of −40 mV; second, an outward, voltage-activated, delayed rectifier current with a sustained time course (IK); and third, an outward, calcium-dependent, potassium current (IK(Ca)) sensitive to Co2+ and apamin, and with the characteristic N-shaped current voltage relationship. Three inward voltage-activated currents were also identified. First, a rapidly activating and inactivating, sodium current (INa), blocked by tetrodotoxin, inactivated at holding potentials more positive than −40 mV, and abolished when external sodium was replaced by choline. Second, an L-type calcium current (ICa,L) with a sustained time course, suppressed by nifedipine or Co2+, and enhanced by substituting Ca2+ for Ba2+ in the external medium. The third inward current was also carried by calcium ions, but could be distinguished from the L-type current by differences in its voltage dependence. It also had a more transient time course, was activated at more negative potentials, and resembled the previously described low-voltage-activated, T-type calcium current. Accepted: 24 September 1999  相似文献   

13.
H. Satoh 《Amino acids》1995,9(3):235-246
Summary Effects of taurine on the delayed rectifier K+ channel in isolated 10-day-old embryonic chick ventricular cardiomyocytes were examined at different intracellular Ca2+ concentrations ([Ca]i), using whole-cell voltage and current clamp techniques. Experiments were performed at room temperature (22°C). Test pulses were applied between -20 to +90m V from a holding potential of -40mV. When [Ca]i was pCa 7, addition of 10 and 20 mM taurine to the bath solution reduced the delayed rectifier K+ current (IK) at +90mV by 17.4 ± 2.8% (n = 5, P < 0.01) and 25.5 ± 2.6% (n = 5, P < 0.001), respectively. In contrast, when [Ca]i was pCa 10, IK at +90 mV was enhanced by 19.1 ± 3.1% (n = 7, P < 0.01) at 10mM taurine, and by 29.3 ± 2.4% (n = 7, P < 0.001) at 20mM taurine. The voltage of half-maximum activation (V1/2) was shifted in a hyperpolarizing direction; at pCa 7, the value was +0.2 ± 2.2mV (n = 5) in control and -10.6 ± 1.8mV (n = 5) in 20mM taurine. At pCa 10, the V1/2 value was +18.5 ± 4.6mV (n = 5) in control and +6.6 ± 5.2mV (n = 5) in taurine (20mM). Taurine decreased the action potential duration (APD) at pCa 10, but at pCa 7 did not affect it. In addition, taurine enhanced the transient outward current in a concentration-dependent manner. These results indicate that taurine modulates the delayed rectifier K+ channel, an effect dependent on [Ca]i and capable of regulating APD.  相似文献   

14.
We investigated the electrophysiological effect and antiarrhythmic potential of cinnamophilin (Cinn), a thromboxane A2 antagonist isolated fromCinnamomum philippinense, on rat cardiac tissues. Action potential and ionic currents in single rat ventricular cells were examined by current clamp or voltage clamp in a whole-cell configuration. In 9 episodes of ischemia-reperfusion arrhythmia, 10 µM Cinn converted 6 of them to normal sinus rhythm. Cinn suppressed the maximal rate of rise of the action potential upstroke (Vmax) and prolonged the action potential duration at 50% repolarization (APD50). Voltage clamp study showed that the suppression of Vmax by Cinn was associated with an inhibition of sodium inward current (INa, IC50=10.0 ± 0.4 µM). At 30 µM, V1/2 for the steady-state inactivation curve of INa was shifted from –84.1 ± 0.2 to –93.0 ± 0.5 mV. Cinn also reduced calcium inward current (ICa) dose-dependently with an IC50 value of 9.5 ± 0.3 µM. Cinn (10 µM) reduced the ICa with a negative shift of V1/2 for the steady-state inactivation curve of ICa from –32.2 ± 0.3 to –50.7 ± 0.4 mV. The prolongation of APD50 was associated with an inhibition of the integral of potassium outward current with IC50 values between 4.8 and 7.1 µM. At 10 µM, Cinn reduced INa without a negative shift of its voltage-dependent steady-state inactivation curves. The inhibition of transient outward current (Ito) by Cinn (3–30 µM) was associated with an acceleration of its time constant of inactivation and negative shift of its potential-dependent steady-state inactivation curves. The equilibrium dissociation constant (Kd) of Cinn to inhibit open state Ito channels, as calculated from the time constant of developing block, was 18.3 µM. The time constant of recovery of Ito from inactivation state was unaffected by Cinn. The rate constant for the relief from the depolarization-dependent block of Ito was calculated to be 23.9 ms. As compared with its effect on Ito, Cinn exerted about half the potency to block INa and ICa. These results indicate that the inhibition of INa, ICa and Ito may contribute to the antiarrhythmic activity of Cinn against ischemia-reperfusion arrhythmia.  相似文献   

15.
In this study, the effects of acute SO_2 derivatives and chronic lead exposure together on sodium cur-rents (INa) were investigated in acutely isolated rat hippocampal neurons by using the whole-cell patch clamp techniques. We found that chronic lead exposure hardly reduced the amplitudes of INa. In the normal condition, sodium current started to appear at around ?70 mV, and reached the peak current at around ?40 mV. After chronic lead exposure, the data changed to ?70 and ?30 mV. After adding SO2 derivatives, the data changed to ?80 and ?40 mV, respectively. SO_2 derivatives caused a significant in-crease of INa in hippocampal chronic-lead exposed neurons. Chronic lead exposure induced a right shift of the activation curve and a left shift of the inactivation curve of sodium channels. SO_2 derivatives caused negative shifts of the activation and inactivation curves of INa in hippocampal chronic-lead ex-posed neurons. Lead exposure put off the time reaching the peak of INa activation. SO_2 derivatives in-creased the time constants of inactivation after lead exposure. The interaction of lead and SO_2 deriva-tives with voltage-dependent sodium channels may lead to changes in electrical activity and contribute to worsening the neurotoxicological damage.  相似文献   

16.
Depolarization-dependent outward currents were analyzed using the single-electrode voltage clamp technique in the dendritic membrane of an identified nonspiking interneuron (LDS interneuron) in situ in the terminal abdominal ganglion of crayfish. When the membrane was depolarized by more than 20 mV from the resting potential (65.0 ± 5.7 mV), a transient outward current was observed to be followed by a sustained outward current. Pharmacological experiments revealed that these outward currents were composed of 3 distinct components. A sustained component (I s) was activated slowly (half rise time > 5 msec) and blocked by 20 mM TEA. A transient component (I t1) that was activated and inactivated very rapidly (peak time < 2.5 msec, half decay time < 1.2 msec) was also blocked by 20 mM TEA. Another transient component (I t2) was blocked by 100 M 4AP, activated rapidly (peak time < 10.0 msec) and inactivated slowly (half decay time > 131.8 msec). Two-step pulse experiments have revealed that both sustained and transient components are not inactivated at the resting potential: the half-maximal inactivation was attained at –21.0 mV in I t1, and –38.0 mV in I t2. I s showed no noticeable inactivation. When the membrane was initially held at the resting potential level and clamped to varying potential levels, the half-maximal activation was attained at –36.0 mV in I s, –31.0 mV in I t1 and –40.0 mV in I t2. The activation and inactivation time constants were both voltage dependent. A mathematical model of the LDS interneuron was constructed based on the present electrophysiological records to simulate the dynamic interaction of outward currents during membrane depolarization. The results suggest that those membrane conductances found in this study underlie the outward rectification of the interneuron membrane as well as depolarization-dependent shaping of the excitatory synaptic potential observed in current-clamp experiments.  相似文献   

17.
Summary We examined the variability of occurrence and frequency of voltage-dependent whole-cell currents in human peripheral blood monocyte-derived macrophages (HMDM) maintained in culture for up to three weeks. An increase in cell capacitance from an average value of 9 pF on the day of isolation to 117 pF at 14 days accompanied growth and differentiation in culture. The average resting potential was approximately –34 mV for cells beyond two days in culture. Cells exhibited a voltage-and time-dependent outward current upon membrane depolarization above approximately –30 mV, which appeared to be composed of a number of separate currents with variable expression from donor to donor. Three of these currents are carried by K+. The frequency of each outward current type was calculated for 974 cells obtained from 36 donors. The HMDMs in these studies exhibited two 4-aminopyridine (4-AP) sensitive, time-dependent outward currents (I A andI B ) that could be differentiated on the basis of the presence or absence of steady-state inactivation in the physiological potential range, time course of inactivation during maintained depolarization, as well as threshold of activation. The 4-AP-insensitive outward current activated at approximately 10 mV. One component of the 4-AP insensitive-outward current (I C ) could be blocked by external TEA and by the exchange of internal Cs+ or Na+ for K+. The probability of observingI B andI C appeared to be donor dependent. Following total replacement of internal K+ with Cs+, two additional currents could be identified (i) a delayed component of outward current (I D ) remained which could be blocked by low concentrations of external Zn2+ (4 m) and was insensitive to anion replacement in the external solution and (ii) a Cl current with a reversal potential which shifted in the presence of external anion replacement and which was irreversibly inhibited by the stilbene SITS. The activation of a prominent time-independent inward currents was often observed with increasing hyperpolarization. This inward current was blocked by external Ba2+ and corresponded to the inwardly rectifying K+ current. Neither inward nor outward current expression appeared dependent on whether cells were differentiated in adherent or suspension culture nor was there demonstrable differential current expression observed upon transition from suspension to adherent form.  相似文献   

18.
Effects of odorants on voltage-gated ionic channels were investigated in isolated newt olfactory receptor cells by using the whole cell version of the patch–clamp technique. Under voltage clamp, membrane depolarization to voltages between −90 mV and +40 mV from a holding potential (Vh) of −100 mV generated time- and voltage-dependent current responses; a rapidly (< 15 ms) decaying initial inward current and a late outward current. When odorants (1 mM amyl acetate, 1 mM acetophenone, and 1 mM limonene) were applied to the recorded cell, the voltage-gated currents were significantly reduced. The dose-suppression relations of amyl acetate for individual current components (Na+ current: INa, T-type Ca2+ current: ICa,T, L-type Ca2+ current: ICa,L, delayed rectifier K+ current: IKv and Ca2+-activated K+ current: IK(Ca)) could be fitted by the Hill equation. Half-blocking concentrations for each current were 0.11 mM (INa), 0.15 mM (ICa,T), 0.14 mM (ICa,L), 1.7 mM (IKv), and 0.17 mM (IK(Ca)), and Hill coefficient was 1.4 (INa), 1.0 (ICa,T), 1.1 (ICa,L), 1.0 (IKv), and 1.1 (IK(Ca)), suggesting that the inward current is affected more strongly than the outward current. The activation curve of INa was not changed significantly by amyl acetate, while the inactivation curve was shifted to negative voltages; half-activation voltages were −53 mV at control, −66 mV at 0.01 mM, and −84 mV at 0.1 mM. These phenomena are similar to the suppressive effects of local anesthetics (lidocaine and benzocaine) on INa in various preparations, suggesting that both types of suppression are caused by the same mechanism. The nonselective blockage of ionic channels observed here is consistent with the previous notion that the suppression of the transduction current by odorants is due to the direst blockage of transduction channels.  相似文献   

19.
Membrane potential and ionic currents were studied in cultured rabbit retinal pigment epithelial (RPE) cells using whole-cell patch clamp and perforated-patch recording techniques. RPE cells exhibited both outward and inward voltage-dependent currents and had a mean membrane capacitance of 26±12 pF (sd, n=92). The resting membrane potential averaged ?31±15 mV (n=37), but it was as high as ?60 mV in some cells. When K+ was the principal cation in the recording electrode, depolarization-activated outward currents were apparent in 91% of cells studied. Tail current analysis revealed that the outward currents were primarily K+ selective. The most frequently observed outward K+ current was a voltage- and time-dependent outward current (I K) which resembled the delayed rectifier K+ current described in other cells. I K was blocked by tetraethylammonium ions (TEA) and barium (Ba2+) and reduced by 4-aminopyridine (4-AP). In a few cells (3–4%), depolarization to ?50 mV or more negative potentials evoked an outwardly rectifying K+ current (I Kt) which showed more rapid inactivation at depolarized potentials. Inwardly rectifying K+ current (I KI) was also present in 41% of cells. I KI was blocked by extracellular Ba2+ or Cs+ and exhibited time-dependent decay, due to Na+ blockade, at negative potentials. We conclude that cultured rabbit RPE cells exhibit at least three voltage-dependent K+ currents. The K+ conductances reported here may provide conductive pathways important in maintaining ion and fluid homeostasis in the subretinal space.  相似文献   

20.
Voltage-gated potassium channels are regulators of membrane potentials, action potential shape, firing adaptation, and neuronal excitability in excitable tissues including in the primary sensory neurons of dorsal root ganglion (DRG). In this study, using the whole-cell patch-clamp technique, the effect of estradiol (E2) on voltage-gated total outward potassium currents, the component currents transient “A-type” current (I A) currents, and “delayed rectifier type” (I KDR) currents in isolated mouse DRG neurons was examined. We found that the extracellularly applied 17β-E2 inhibited voltage-gated total outward potassium currents; the effects were rapid, reversible, and concentration-dependent. Moreover, the membrane impermeable E2-BSA was as efficacious as 17β-E2, whereas 17α-E2 had no effect. 17β-E2-stimulated decrease in the potassium current was unaffected by treatment with ICI 182780 (classic estrogen receptor antagonist), actinomycin D (RNA synthesis inhibitor), or cycloheximide (protein synthesis inhibitor). We also found that I A and I KDR were decreased after 17β-E2 application. 17β-E2 significantly shifted the activation curve for I A and I KDR channels in the hyperpolarizing direction. In conclusion, our results demonstrate that E2 inhibited voltage-gated K+ channels in mouse DRG neurons through a membrane ER-activated non-genomic pathway.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号