首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到17条相似文献,搜索用时 267 毫秒
1.
目的:研究1-磷酸鞘氨醇(S1P)对豚鼠心室肌细胞延迟整流钾电流(IK)、内向整流钾电流(IK1)的作用。方法:实验用胶原酶酶解法急性分离豚鼠心室肌细胞,利用全细胞膜片钳的方法记录心室肌细胞的延迟整流钾电流(IK)、内向整流钾电流(IK1)。结果:①应用S1P(1.1μmol/L)后IK从(1.24±0.26)nA降至(0.95±0.23)以(P〈0.01,n=6),而S1P(2.2μmol/L)组IK从(1.43±0.31)nA下降到(1.02±0.28)nA,统计学有显著性差异(P〈0.01,H=6).而S1P(1.1μmol/L)+苏拉明(Summin)(200μmol/L)组与对照相比,IK峰值从(1.29±0.26)nA下降(1.26±0.37)nA,统计学无显著性差异(P〉0.05,n=6).②应用S1P(1.1μmol/L,2.2μmol/L)后与对照组比较,S1P(1.1μmol/L,2.2μmol/L)分别使内向整流钾电流(IK1)峰值从(-8.94±2.01)nA和(-8.81±1.55)nA下降到(18.86±1.59)nA和(-8.55±1.39)nA,统计学无显著性差异(P〉0.05,n=6).结论:S1P可降低豚鼠心室肌细胞延迟整流钾电流(IK)的幅值,同时S1P对豚鼠心室肌细胞内向整流钾通道(IK1)没有作用。  相似文献   

2.
Deng JX  Liu J 《生理学报》2007,59(3):375-381
严重烫伤引起心肌细胞动作电位时程(action potential duration,APD)延长,通过加重烫伤心肌细胞钙紊乱和诱发室性心律失常,促进烫伤心功能障碍的发生,但APD延长的机制尚不清楚。通过制作约40%体表面积(total body surface area,TBSA)Ⅲ度烫伤大鼠模型,在伤后12h大鼠心功能明显减弱时分离其心肌细胞,采用膜片钳技术观察心肌细胞APD以及动作电位复极化相关的重要离子通道电流,包括瞬间外向钾电流(transient outward K^+ current,Ito),L-型钙电流(L-type Ca^2+ current,ICa-L)和内向整流钾电流(inward rectifier K^+ current,IK1)。结果显示,烫伤后12h单个心肌细胞APD明显延长,APD50和APD90在烫伤组分别为(46.02±3.78)ms、(123.24±12.48)ms(n=19),明显长于对照组的(23.28±4.85)ms、(72.12±3.57)ms(n=17)(P〈0.01)。烫伤引起,Ito电流密度降低,+60 mV下烫伤组的电流密度(20.39±1.98)pA/pF(n=25)明显低于对照组的(34.15±3.78)pA/pF(n=20,P〈0.01);烫伤组在-120至-80mV电压刺激下所产生的IK1电流密度显著低于对照组:而两组之间ICa-L电流密度、电压依赖性的激活和失活无显著性差异。结果提示,烫伤引起心肌细胞APD延长的机制与瞬间外向钾通道和内向整流钾通道功能下调有关。  相似文献   

3.
目的:SK通道存在于心肌细胞上,其中SK2亚型主要表达在心房。SK2通道对胞内游离钙离子高度敏感,可快速将钙离子浓度的变化转换成细胞膜电位变化。本实验应用穿孔膜片钳技术记录人心肌细胞SK2电流,观察心房肌细胞SK2电流在窦性患者和心房颤动患者之间的差别,以及电极液中不同的钙浓度对两组细胞SK2电流的影响。方法:将接受体外循环手术的患者分为两组:心房颤动组和窦性心律组。以心房肌细胞为研究对象,用穿孔膜片钳技术记录人心肌细胞电流,观察窦性组与房颤组SK2通道电流的差异以及两组细胞SK2电流对电极液中钙敏感性的不同。结果:在全细胞穿孔膜片钳模式下,电极液中游离钙离子浓度为5×10-7mol/L时,记录到房颤组SK2通道电流明显大于窦性组,尤其是在超极化水平。膜电位在-130 mV时,窦性组与房颤组的SK2通道电流密度分别为(-2.92±0.35)pA/pF(n=6),(-6.83±0.19)pA/pF(n=3,P〈0.05)。在电极液游离钙离子浓度分别为0 mol/L、5×10-7mol/L、10-6mol/L,膜电位为-130 mV时,窦性组SK2通道电流密度分别为(-1.43±0.33)pA/pF(n=7),(-2.92±0.35)pA/pF(n=6),(-10.11±2.15)pA/pF(n=8,P〈0.05);房颤组SK2通道电流密度分别为(-2.17±0.40)pA/pF(n=4)(-6.83±0.19)pA/pF(n=3)(-14.47±2.89)pA/pF(n=4)(P〈0.05)。结论:人心房肌细胞SK2通道具有电压不敏感、内向整流、apamin敏感的特性。电极液中钙浓度相同的情况下,房颤组的SK2电流密度明显大于窦性组,SK2通道电流对钙离子的敏感性高于窦性组,提示SK2通道钙敏感性增加可能与心房颤动的发生发展密切相关。  相似文献   

4.
去甲肾上腺素对大鼠肝细胞延迟外向钾电流的影响   总被引:1,自引:0,他引:1  
Cui GY  Li JM  Liu DJ  Cui H 《生理学报》1998,50(2):232-236
目前为止国内外尚未见到有关大鼠肝细胞外向钾电流方面的报道。本文用全细胞膜片宿制技术观察了大鼠肝细胞延迟外向钾电流(Ik)及去甲肾上腺素等对人的影响。实验结果表明,在保持电位-50mV、指令电位+140mV时大鼠肝细胞Ik为2.85±1.21nA。去甲肾上腺素明显降低IK,异丙肾上腺素和乙酰胆碱对IK无影响。  相似文献   

5.
目的 :研究蛋白激酶A和蛋白激酶C对豚鼠心室肌细胞延迟整流钾电流 (Ik)的影响。方法 :采用电极内液浓度差扩散法进行细胞内给药 ,利用全细胞膜片箝技术测定单细胞Ik。结果 :cAMP15 0 μmol/L使Ik及Ik ,tail(pA/pF)从 13.7± 2 .1和 6 .1± 0 .3增至 18.5± 3.3和 6 .4± 2 .1(P <0 .0 1,n =6 ) ;8 CPT cAMP15 0 μmol/L使电流 (pA/pF)从 11.4± 1.8及 5 .3± 0 .6增至 17.9± 4 .0和 6 .2± 1.3,PKA的选择性抑制剂 6 2 2 1.0 μmol/L的可逆转二者的作用。cAMP使Ik的激活曲线左移 ,半激活电压 (V1/ 2 )从 2 3.3mV移至 18.7mV ,激活曲线斜率 (k)在用药前后变化较小。 10 μmol/LPMA可以分别使Ik和Ik ,tial(pA/pF)从 12 .9± 1.8和 5 .0± 1.7升至 2 3.7± 2 .8和 7.5±1.1。PMA使I V曲线幅值增加 ,并随去极化电压的升高其作用加强 ,同时PMA使通道的激活曲线k从 15 .3mV升到 2 5 .6mV ,但对V1/ 2 基本无影响。结论 :蛋白激酶A和蛋白激酶C均可增加豚鼠心肌细胞Ik,但二者作用特点有所不同  相似文献   

6.
Li YR  Yang BF  Xu CQ  Zhou J  Yang YB  Zhang JY  Sun MZ 《生理学报》2000,52(5):427-430
使用全细胞膜片箝技术, 研究RP62719对内向整流钾电流(IK1)、瞬时外向钾电流(Ito)和延迟外向整流钾电流(IK)的作用, 并探讨其抗心律失常作用的机制.实验结果表明, 在指令电压为-100 mV时, RP62719可显著抑制豚鼠心室肌细胞IK1, 半数抑制浓度(IC50)为5.0±1.0 μmol/L.RP62719 10 μmol/L在+40 mV时对犬心室肌细胞Ito抑制率为84.0±4.4%, IC50为1.2±0.51 μmol/L.在+40 mV时, 50 μmol/L RP62719还可使豚鼠心室肌细胞IKstep 减少50.0±8.3%, IKtail减少56.0±4.9%, IC50分别为4.2±0.8 μmol/L和3.3±0.75 μmol/L.提示RP62719抗心律失常的离子机制与其对IK1、Ito及IK的抑制有关.  相似文献   

7.
运用全细胞膜片钳技术研究二氧化硫衍生物对大鼠背根神经元瞬间外向钾电流(IA和ID)和延迟整流钾电流(IK)的影响。结果发现二氧化硫衍生物剂量依赖性地增大钾通道的电导,电压依赖性地增大钾电流的幅度,且这种增大作用部分可逆。二氧化硫非常显著地使延迟整流钾电流的激活过程向超极化方向移动,使瞬间外向钾电流的失活过程向去极化方向移动。10μmol/L二氧化硫衍生物作用前后,延迟整流钾电流的半数激活电压分别是(20.3±2.1)mV和(15.0±1.5)mV;IA和ID的半数失活电压分别朝去极化方向移动了6mV和7.4mV。这些结果表明二氧化硫改变了钾通道的特性,改变了神经元的兴奋性。  相似文献   

8.
Tang B  Tang M  Du YM  Liu CJ  Hong ZG  Luo HY  Hu XW  Song YL  Xi JY  Hescheler J 《生理学报》2004,56(5):625-631
为了从离子通道水平上探讨机体低氧适应的离子机制,本实验将雄性 SD 大鼠随机分为常氧对照组和慢性间歇性低氧组[氧浓度(10 ± 0.5) %, 间断缺氧每天 8 h]。用酶解法急性分离单个大鼠肺内动脉平滑肌细胞(pulmonary artery smoothmuscle cells, PASMCs),以全细胞膜片钳技术记录 PASMCs 膜上的电压门控性钾通道 (voltage-gated potassium channel, KV) 电流,观察急性缺氧对慢性间歇性低氧大鼠 PASMCs 的 KV 的影响, 为机体适应低氧能力提供实验依据。结果显示:⑴常氧对照组在电流钳下,急性缺氧可使膜电位明显去极化(由-47.2 ±2.6 mV 去极到 -26.7 ±1.2 mV ); 在电压钳下, 急性缺氧可显著抑制 KV电流( 60 mV 时, KV电流密度从 153.4 ± 9.5 pA/pF降到 70.1 ± 10.6 pA/pF), 峰电流的抑制率为(57.6 ± 3.3) %, 电流-电压关系曲线向右下移。⑵慢性间歇性低氧组KV电流密度随低氧时间延长而逐渐减少(慢性低氧10 d后就有显著性意义),电流- 电压关系曲线逐渐右下移。⑶急性缺氧对慢性间歇性低氧大鼠PASMCs KV电流的抑制作用随慢性间歇性低氧时间延长而逐渐减弱。上述观察结果提示慢性间歇性低氧减弱急性缺氧对 KV 的抑制, 这可能是机体低氧适应的一种重要机制。  相似文献   

9.
Lu JY  Wu DM  Wu BW  Chai WX  Kang CS  Li TL 《生理学报》1999,51(5):588-592
本文观察了心肌肥厚对大鼠心肌细胞Na /Ca2 交换电流的影响。我们采用Goldblatt两肾一夹方法诱发大鼠心肌肥厚,应用全细胞膜片钳技术记录电流。结果表明:肥厚心肌细胞的Ni2 -敏感Na /Ca2 交换电流密度大于正常细胞。在钳制电压为+50mV时,正常细胞的外向交换电流密度为1.53±0.31pA/pF,而肥厚细胞则为2.62±0.53pA/pF(P<0.01);钳制电压为-100mV时,正常细胞的内向交换电流密度为0.42±0.14pA/pF,肥厚细胞达1.12±0.33pA/pF(P<0.001)。这些结果提示,肥厚心肌细胞的Na /Ca2 交换电流发生了改变,其意义有待进一步探讨。  相似文献   

10.
Wang JK  Cui CC  Zhang H  Yao QH  Yao XW  Chen XY 《生理学报》2004,56(4):487-492
研究长期使用肾上腺素能受体阻断剂治疗对慢性压力超负荷左心室电重构的影响。新西兰兔通过肾上腹主动脉次全结扎诱发慢性压力超负荷,10周后行心脏超声检查,并采用全细胞膜片钳技术分别记录腹主动脉结扎组(简称结扎组)、腹主动脉结扎 Carvedilol 干预组(简称Carvedilol组)及正常对照组(简称对照组)动物左室肌中层细胞的动作电位(action potential,AP)、内向整流钾电流(inward rectifier potassium current,IKi)、延迟整流钾电流(delayed rectifier potassium current,IK)及Na /Ca2 交换体电流。结果表明,结扎组的左室质量指数较对照组明显升高,Carvedilol组较结扎组明显降低(P<0.01)。在2 s的基础周长下,动作电位持续时间(以90%的复极时间表示,简称APD90)在对照组、结扎组及Carvedilol组分别为522.0±19.5 ms(n=6)、664.7± 46.2 ms(n=7)、567.8±14.3 ms(n=8),结扎组同对照组相比,P<0.01,Carvedilol组同结扎组相比,P<0.05。在测试电位为-100mV时,IKi电流密度(pA/pF)在对照组、结扎组及Carvedilol组分别为-11.8±0.50(n=8),-8.07±0.28 (n=8),-10.69±0.35(n=8),结扎组与对照组及Carvedilol组相比,P<0.01。在测试电位为 50 mV时,IK尾电流密度(pA/pF)在对照组、结扎组及Carvedilol组分别为0.59±0.40(n=  相似文献   

11.
Several conflicting models have been used to characterize the gating behavior of the cardiac delayed rectifier. In this study, whole-cell delayed rectifier currents were measured in voltage-clamped guinea pig ventricular myocytes, and a minimal model which reproduced the observed kinetic behavior was identified. First, whole-cell potassium currents between -10 and +70 mV were recorded using external solutions designed to eliminate Na and Ca currents and two components of time-dependent outward current were found. One component was a La3(+)-sensitive current which inactivated and resembled the transient outward current described in other cell types; single-channel observations confirmed the presence of a transient outward current in these guinea pig ventricular cells (gamma = 9.9 pS, [K]o = 4.5 mM). Analysis of envelopes of tail amplitudes demonstrated that this component was absent in solutions containing 30-100 microM La3+. The remaining time-dependent current, IK, activated with a sigmoidal time course that was well-characterized by three time constants. Nonlinear least-squares fits of a four-state Markovian chain model (closed - closed - closed - open) to IK activation were therefore compared to other models previously used to characterize IK gating: n2 and n4 Hodgkin-Huxley models and a Markovian chain model with only two closed states. In each case the four-state model was significantly better (P less than 0.05). The failure of the Hodgkin-Huxley models to adequately describe the macroscopic current indicates that identical and independent gating particles should not be assumed for this K channel. The voltage-dependent terms describing the rate constants for the four-state model were then derived using a global fitting approach for IK data obtained over a wide range of potentials (-80 to +70 mV). The fit was significantly improved by including a term representing the membrane dipole forces (P less than 0.01). The resulting rate constants predicted long single-channel openings (greater than 1 s) at voltages greater than 0 mV. In cell-attached patches, single delayed rectifier channels which had a mean chord conductance of 5.4 pS at +60 mV ([K]o = 4.5 mM) were recorded for brief periods. These channels exhibited behavior predicted by the four-state model: long openings and latency distributions with delayed peaks. These results suggest that the cardiac delayed rectifier undergoes at least two major transitions between closed states before opening upon depolarization.  相似文献   

12.
An envelope of tails test was used to show that the delayed rectifier K+ current (IK) of guinea pig ventricular myocytes results from the activation of two outward K+ currents. One current was specifically blocked by the benzenesulfonamide antiarrhythmic agent, E-4031 (IC50 = 397 nM). The drug-sensitive current, "IKr" exhibits prominent rectification and activates very rapidly relative to the slowly activating drug-insensitive current, "IKs." IKs was characterized by a delayed onset of activation that occurs over a voltage range typical of the classically described cardiac IK. Fully activated IKs, measured as tail current after 7.5-s test pulses, was 11.4 times larger than the fully activated IKr. IKr was also blocked by d-sotalol (100 microM), a less potent benzenesulfonamide Class III antiarrhythmic agent. The activation curve of IKr had a steep slope (+7.5 mV) and a negative half-point (-21.5 mV) relative to the activation curve of IKs (slope = +12.7 mV, half-point = +15.7 mV). The reversal potential (Erev) of IKr (-93 mV) was similar to EK (-94 mV for [K+]o = 4 mM), whereas Erev of IKs was -77 mV. The time constants for activation and deactivation of IKr made up a bell-shaped function of membrane potential, peaking between -30 and -40 mV (170 ms). The slope conductance of the linear portion of the fully activated IKr-V relation was 22.5 S/F. Inward rectification of this relation occurred at potentials greater than -50 mV, resulting in a voltage-dependent decrease in peak IKr at test potentials greater than 0 mV. Peak IKr at 0 mV averaged 0.8 pA/pF (n = 21). Although the magnitude of IKr was small relative to fully activated IKs, the two currents were of similar magnitude when measured during a relatively short pulse protocol (225 ms) at membrane potentials (-20 to +20 mV) typical of the plateau phase of cardiac action potentials.  相似文献   

13.
Depolarization-activated outward K+ currents in isolated adult rat ventricular myocytes were characterized using the whole-cell variation of the patch-clamp recording technique. During brief depolarizations to potentials positive to -40 mV, Ca(2+)-independent outward K+ currents in these cells rise to a transient peak, followed by a slower decay to an apparent plateau. The analyses completed here reveal that the observed outward current waveforms result from the activation of two kinetically distinct voltage-dependent K+ currents: one that activates and inactivates rapidly, and one that activates and inactivates slowly, on membrane depolarization. These currents are referred to here as Ito (transient outward) and IK (delayed rectifier), respectively, because their properties are similar (although not identical) to these K+ current types in other cells. Although the voltage dependences of Ito and IK activation are similar, Ito activates approximately 10-fold and inactivates approximately 30-fold more rapidly than IK at all test potentials. In the composite current waveforms measured during brief depolarizations, therefore, the peak current predominantly reflects Ito, whereas IK is the primary determinant of the plateau. There are also marked differences in the voltage dependences of steady-state inactivation of these two K+ currents: IK undergoes steady-state inactivation at all potentials positive to -120 mV, and is 50% inactivated at -69 mV; Ito, in contrast, is insensitive to steady-state inactivation at membrane potentials negative to -50 mV. In addition, Ito recovers from steady-state inactivation faster than IK: at -90 mV, for example, approximately 70% recovery from the inactivation produced at -20 mV is observed within 20 ms for Ito; IK recovers approximately 25-fold more slowly. The pharmacological properties of Ito and IK are also distinct: 4-aminopyridine preferentially attenuates Ito, and tetraethylammonium suppresses predominantly IK. The voltage- and time-dependent properties of these currents are interpreted here in terms of a model in which Ito underlies the initial, rapid repolarization phase of the action potential (AP), and IK is responsible for the slower phase of AP repolarization back to the resting membrane potential, in adult rat ventricular myocytes.  相似文献   

14.
间歇性低氧对大鼠心室肌细胞短暂外向电流的影响   总被引:3,自引:0,他引:3  
Zhou J  Tian M  Zhang Y  Zhou ZN 《生理学报》1999,(2):187-188
利用全细胞膜片箝方法研究间歇性低氧后左、右心室肌细胞短暂外向电流(Ito)的变化,以探讨间歇性低氧增强心肌电稳定性的离子机制。大鼠间歇性暴露于低氧环境28d(H28,6h/d)后,右心室肌细胞的Ito密度较常氧对照组明显增加(1618±461比632±135pA/pF,P<005),而左心室肌细胞Ito密度与对照组无明显差异。间歇性低氧暴露42d(H42)动物,其左、右心室肌细胞Ito密度与对照组无明显差异。Ito激活、失活和恢复动力学变化主要表现为H42组左、右心室肌细胞的稳态失活曲线明显向负电压方向移位。左心室细胞的半数失活电压(-389±23)mV与对照组(-328±59)mV比较,具有显著性差异(P<001);右心室细胞的半数失活电压(-419±45)mV与对照组(-335±35)mV比较,具有显著性差异(P<0001)。据此可推断,Ito密度的改变可反映心室在低氧早期阶段的不同动力学反应。失活动力学改变参与间歇性低氧心脏保护机制  相似文献   

15.
beta-Adrenergic stimulation of ventricular heart cells results in the enhancement of two important ion currents that regulate the plateau phase of the action potential: the delayed rectifier potassium channel current (IK) and L-type calcium channel current (ICa). The temperature dependence of beta-adrenergic modulation of these two currents was examined in patch-clamped guinea pig ventricular myocytes at various steps in the beta-receptor/cyclic AMP-dependent protein kinase pathway. External applications of isoproterenol and forskolin were used to activate the beta-receptor and the enzyme adenylate cyclase, respectively. Internal dialysis of cyclic 3',5'-adenosine monophosphate (cAMP) or the catalytic subunit of cAMP-dependent protein kinase (CS), as well as the external addition of 8-chlorphenylthio cAMP (CPT-cAMP) was applied to increase intracellular levels of cAMP and CS. Isoproterenol-mediated increases in IK, but not ICa, were found to be very temperature dependent over the range of 20-37 degrees C. At room temperature (20-22 degrees C) isoproterenol produced a large (threefold) enhancement of ICa but had no effect on IK. In contrast, at warmer temperatures (30-37 degrees C) both currents increased in the presence of this agonist and the kinetics of IK were slowed at -30 mV. A similar temperature sensitivity also existed after exposure to forskolin, CPT-cAMP, cAMP, and CS, suggesting that this temperature sensitivity of IK may arise at the channel protein level. Modulation of IK during each of these interventions was accompanied by a slowing in IK kinetics. Thus, regulation of cardiac potassium channels but not calcium channels involves a temperature-dependent step that occurs after activation of the catalytic subunit of cAMP-dependent protein kinase.  相似文献   

16.
Tamoxifen is an estrogen receptor antagonist used in the treatment of breast cancer. However, tamoxifen has been shown to induce QT prolongation of the electrocardiogram, thereby potentially causing life-threatening polymorphic ventricular arrhythmias. The purpose of the present study was to elucidate the electrophysiological mechanism(s) that underlie the arrhythmogenic effects of tamoxifen. We used standard ruptured whole cell and perforated patch-clamping techniques on rat ventricular myocytes to investigate the effects of tamoxifen on cardiac action potential (AP) waveforms and the underlying K+ currents. Tamoxifen (3 micromol/l) markedly prolonged AP duration, decreased maximal rate of depolarization, and decreased resting membrane potential. At this concentration, tamoxifen significantly depressed the Ca2+-independent transient outward K+ current (Ito), sustained outward delayed rectifier K+ current (Isus), inward rectifier K+ current (IK1), and Na+ current (INa) in the myocytes. Lower concentrations of tamoxifen (1 micromol/l) also decreased the resting membrane potential and significantly depressed IK1 to 79 +/- 5% (n = 5; at -120 mV) of pretreatment values. The results of this study indicate that inhibition of Ito, Isus, and IK1 by tamoxifen may underlie AP prolongation in cardiac myocytes and thereby contribute to prolonged QT interval observed in patients.  相似文献   

17.
Basal retinal neurons of the marine mollusc Bulla gouldiana continue to express a circadian modulation of their membrane conductance for at least two cycles in cell culture. Voltage-dependent currents of these pacemaker cells were recorded using the whole-cell perforated patch-clamp technique to characterize outward currents and investigate their putative circadian modulation. Three components of the outward potassium current were identified. A transient outward current (IA) was activated after depolarization from holding potentials greater than -30 mV, inactivated with a time constant of 50 ms, and partially blocked by 4-aminopyridine (1-5 mM). A Ca(2+)-dependent potassium current (IK(Ca)) was activated by depolarization to potentials more positive than -10 mV and was blocked by removing Ca2+ from the bath or by applying the Ca2+ channel blockers Cd2+ (0.1-0.2 mM) and Ni2+ (1-5 mM). A sustained Ca(2+)-independent current component including the delayed rectifier current (IK) was recorded at potentials positive to -20 mV in the absence of extracellular Na+ and Ca2+ and was partially blocked by tetraethylammonium chloride (TEA, 30mM). Whole-cell currents recorded before and after the projected dawn and normalized to the cell capacitance revealed a circadian modulation of the delayed rectifier current (IK). However, the IA and IK(Ca) currents were not affected by the circadian pacemaker.  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