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1.
采用膜片钳技术以全细胞方式在小鼠腹腔渗出巨噬细胞(PEM)中记录到一种不完全失活的外向K+电流(Io),该电流在膜电位正于-10mV时激活,对K+具有高度特异性,其半值电导电位V1/2为79.5mV,在膜电位正于30mV时,该电流失活,在60-120mV的膜电位范围内,其失活时间常数τi与膜电位无关.随着胞外K+离子浓度([K+]o)升高,该电流的失活过程减慢。在生理电压范围内(-80-0mV),该电流缺乏稳态失活,且其失活不具有频率依赖性。胞外4-AP(3mmol/L)、Ba2+(3mmol/L)及TEA(5mmol/L)可抑制该电流,抑制率分别为85%,66%及31%。胞外Zn2+(1mmol/L)可影响该电流活性,对该电流的抑制具有电压依赖性  相似文献   

2.
由基因工程大肠杆菌表达的重组人粒细胞-巨噬细胞集落刺激因子(rhGM-CSF)以包涵体的形式存在于细胞中,通过破菌、洗涤获得包涵体,再经过溶解、凝胶过滤、复性、疏水和离子交换柱导析得到了均一的产品,经高压液相和SDS-PAGE电泳测定纯度均大于98%,rhGM-CSF的比活为3.2×10^7IU/mg,纯化获得的rhGM-CSF为一酸性蛋白,等电点约为5.2,NH2-末端有20个氨基酸序列测定结果  相似文献   

3.
SNP抑制5-HT诱导的胞内游离钙浓度升高和内钙释放   总被引:2,自引:0,他引:2  
用Fura - 2/AM 荧光测量技术研究了5 - 羟色胺(5- HT) 诱导的大鼠尾动脉平滑肌细胞胞内钙升高和一氧化氮(NO) 的抑制效应。实验表明, 胞外0m mol/ L Ca2 + 时胞内静息[Ca2 + ] i 为20 .2±8 .6nmol/L(n = 8) 。10μmol/L 5- HT 可诱导出胞内钙库释放引起的瞬态[Ca2 +]i 升高,其峰值达245 .7 ±71.6nmol/ L(n = 6) 。10 - 7 mol/L 硝普钠(SNP) 可抑制5- HT 诱导的[Ca2 +]i 升高,其峰值浓度降为75.1±35 .9nmol/L(n = 5) 。当细胞浴液含2.5m mol/L Ca2 + 时,静息[Ca2 +]i为112 .8 ±10 .3nmol/ L(n = 5) , 这时10μmol/ L 5 - HT 可诱导[Ca2 + ] i 的峰值为252 .3 ±80 .6nmol/L(n = 4) ,以及其后平台浓度为143 .0 ±37 .6nmol/L(n = 4) ,略大于[Ca2 +]i 为112.8 ±10 .3nmol/L 的静息浓度,为外钙内流引起。10 - 7 mol/L SNP 也可抑制5- HT 诱导[Ca2 + ]i 平台相浓度。平台浓度由143 ±47  相似文献   

4.
用Fura-2显微荧光测量技术研究了羟基自由基对单个皮层神经细胞内游离钙离子浓度(Ca^2+)i影响和硒化合物Ebelen对(Ca^2+)i的抑制作用,结果表明羟基自由基的作用首先引起胞内(Ca^2+)i以时间常数τ=3895.4±507.2S速度缓慢增加,然后加入了以τ=420.6+122.0S的外钙大量涌入,钙通道阻断剂,疏基还原剂,疏基还原剂和自由基清除剂对羟基自由基损伤作用的影响提示外钙的  相似文献   

5.
胚胎巨噬细胞在其来源、生长和发育环境以及功能等方面均与成体巨噬细胞有所不同[1]。本文用激光扫描共聚焦显微镜观察不同造血发育阶段鸡胚胎巨噬细胞在激活剂IFN-γ(干扰素-γ)和LPS(脂多糖)作用下细胞内Ca2+含量的变化情况,探讨不同发育时期的胚胎巨噬细胞的激活与胞内Ca2+含量变化的演变规律。  相似文献   

6.
应用基因工程的方法,将含有巨细胞病毒(CMV)启动子的基因片段和人粒细胞-巨噬细胞集落刺激因子(hGM-CSF)的cDNA,克隆进逆转录病毒载体N2A,得到重组质粒N2A/CMV/hGM-CSF.经脂质体包装并转染包装细胞,通过G418药物筛选,得到抗性克隆。经PCR和Southemblot检测证实,GM-CSF基因已整合到该克隆细胞的染色体上,获得的逆转录病毒滴度达10 ̄4CFU/ml,克隆细胞培养上清用TF-1细胞可检测到GM-CSF活性。  相似文献   

7.
研究不同频率慢性电刺激(CES)后兔膈肌肌浆网(SR)Ca2+-ATPase活性以及SR Ca2+摄取-释放动力学对不同频率CES的适应性变化。建立不同频率CES组;用定磷法测定SR Ca2+-ATPase活性;用Fura-2荧光法测定SR Ca2+摄取-释放动力学。与对照组比较,慢性低频电刺激10 Hz和20Hz组的SR Ca2+-ATPase活性明显降低(P<0.01),Ca2+释放-摄取动力学也显著降低(P<0.01);慢性高频电刺激50 Hz和100Hz组的SR Ca2+-ATPase活性则显著升高(P<0.01),Ca2+释放-摄取动力学亦明显升高(P<0.01)。实验提示,CES后不同频率CES导致膈肌SRCa2+-ATPase、Ca2+摄取-释放动力学产生不同的适应性变化;对不同功能状态的膈肌应用不同频谱的慢性电刺激可能具有重要的临床意义。  相似文献   

8.
对重组人粒细胞-巨噬细胞集落刺激因子(rhGM-CSF)高效表达克隆pZW.GM的表达产物进行了纯化,并对纯化的GM-CSF进行了N端氨基酸序列分析。人GM-CSF基因表达产物在大肠杆菌中以不溶性包涵体形式存在,经过超声破菌、包涵体抽提、凝胶过滤层析、复性、离子交换一系列化步骤,终产物纯度达99%,按蛋白总量计算回收率达10%,比活性达1×10^7u/mg蛋白质。通过测定纯化人GM-CSF的N端1  相似文献   

9.
本文比较和研究了水霉(Saprolegnia ferax)生长菌丝顶端胞内Fluo-3游离Ca^2+和CTC-膜结合Ca^2+的荧光分布影像。激光共焦扫描显微镜下观察可见:Fluo-3荧光有房室化现象,Fluo-3荧光反映的是细胞质游离Ca^2+与细胞器游离Ca^2+总的分布状况,Fluo-3游离Ca^2+的最大荧光强度出现在菌丝顶端2-10um区域,10um以后荧光强度逐渐下降,约40um以后荧  相似文献   

10.
在电压箝位下,研究Mg^2+、Ca^2+对重组于平板脂双层上CF0-CF1质子传导的影响,表明:(1)跨膜质子梯度0时(ΔpH=0),在30 ̄150mV范围内有大量的金Ca^2+引起的正电流比在无金属离子溶液中的一定幅度的增加。在50mV以上,Mg^2+比Ca^2+有更大的促进正向电流的作用;(2)当ΔpH=3时,Mg^2+比Ca^2+更有显著增加正向膜电流的作用,电压在0mV时就已显示出来;(3  相似文献   

11.
Modulation of the voltage-dependent transient outward potassium current (IA) by Pb2+ was studied in acutely dissociated rat hippocampal pyramidal cells from the CA1 region at postnatal ages 7-14 days using the conventional whole-cell patch-clamp technique. In the presence of different concentrations of external Pb2+, the initial delay and activation time of IA were concentration-dependently lengthened. In particular, the initial delay was even longer in 1 mM Pb2+, showing no signs of saturation. Pb2+ also slowed the inactivation of IA, for decay time constants in the presence of Pb2+ were increased under the same experimental protocols. The activation curves, which were reasonably fitted by a single Boltzmann function, illustrated that Pb2+ increased the voltage threshold of IA and shifted the normalized activation current-voltage curves to more depolarizing voltage commands. Moreover, Pb2+ significantly affected the steady-state inactivation of IA. The application of Pb 2+ made the curves of the steady-state inactivation of IA shift to more depolarizing voltages with little change in the slopes factors. In brief, the results demonstrated that Pb2+ is a dose- and voltage-dependent, reversible blocker of IA currents of hippocampal CA1 neurons. The observations were fitted by the revised "Kuo and Chen type model", which postulates a Pb2+-selective site near the pore of the IA channel and that modulation of the IA channel by Pb2+ is the result of the competitive influences of Pb2+ on opening and inactivating different pathways.  相似文献   

12.
The voltage-dependent K+ channel 4.3 (Kv4.3) is one of the major molecular correlates encoding a class of rapidly inactivating K+ currents, including the transient outward current in the heart (Ito) and A currents (IA) in neuronal and smooth muscle preparations. Recent studies have shown that Ito in human atrial myocytes and IA in murine colonic myocytes are modulated by Ca2+/calmodulin-dependent protein kinase II (CaMKII); however, the molecular target of CaMKII in these studies has not been elucidated. We performed experiments to investigate whether CaMKII could regulate Kv4.3 currents directly. Inclusion of the autothiophosphorylated form of CaMKII in the patch pipette (10 nM) prolonged Kv4.3 currents such that the time required to reach 50% inactivation from peak more than doubled, with positive shifts in voltage dependence of both activation and inactivation. In contrast, the rate of recovery from inactivation was accelerated under these conditions. CaMKII-inhibitory peptide or KN-93 produced effects opposite to that above; thus the rate of inactivation was increased, and recovery from inactivation decreased. A number of mutagenesis experiments were conducted on the three candidate CaMKII consensus sequence sites on the channel. Mutations at S550A, located at the COOH-terminal region of the channel, resulted in currents that inactivated more rapidly but recovered from inactivation at a slower rate than that of wild-type controls. In addition, these currents were unaffected by dialysis with either autothiophosphorylated CaMKII or the specific inhibitory peptide of CaMKII, suggesting that CaMKII slows the inactivation and accelerates the rate of recovery from inactivation of Kv4.3 currents by a direct effect at S550A, located at the COOH-terminal region of the channel.  相似文献   

13.
The mammalian Kv4.3 potassium channel is a fast activating and inactivating K+ channel widely distributed in mammalian tissues. Kv4.3 is the major component of various physiologically important currents ranging from A-type currents in the CNS to the transient outward potassium conductance in the heart (I(to)). Here we show that the KCNE3 beta-subunit has a strong inhibitory effect on current conducted by heterologously expressed Kv4.3 channels. KCNE3 reduces the Kv4.3 current amplitude, and it slows down the channel activation and inactivation as well as the recovery from inactivation. KCNE3 also inhibits currents generated by Kv4.3 in complex with the accessory subunit KChIP2. We find the inhibitory effect of KCNE3 to be specific for Kv4.3 within the Kv4 channel family. Kv4.3 has previously been shown to interact with a number of beta-subunits, but none of the described subunit-interactions exert an inhibitory effect on the Kv4.3 current.  相似文献   

14.
A full-length K+ channel cDNA (RHK1) was isolated from a rat cardiac library using the polymerase chain reaction (PCR) method and degenerate oligonucleotide primers derived from K+ channel sequences conserved between Drosophila Shaker H4 and mouse brain MBK1. Although RHK1 was isolated from heart, its expression was found in both heart and brain. The RHK1-encoded protein, when expressed in Xenopus oocytes, gated a 4-aminopyridine (4-AP)-sensitive transient outward current. This current is similar to the transient outward current measured in rat ventricular myocytes with respect to voltage-dependence of activation and inactivation, time course of activation and inactivation, and pharmacology.  相似文献   

15.
Transient outward currents in rat saphenous arterial myocytes were studied using the perforated configuration of the patch-clamp method. When myocytes were bathed in a Na-gluconate solution containing TEA to block large-conductance Ca2+-activated K+ (BK) currents, depolarizing pulses positive to +20 mV from a holding potential of -100 mV induced fast transient outward currents. The activation and inactivation time constants of the current were voltage dependent, and at +40 mV were 3.6 +/- 0.8 ms and 23.9 +/- 6.4 ms (n = 4), respectively. The steady-state inactivation of the transient outward current was steeply voltage dependent (z = 1.7), with 50% of the current inactivated at -55 mV. The current was insensitive to the A-type K+ channel blocker 4-AP (1-5 mM), and was modulated by external Ca, decreasing to approximately 0.85 of control values upon raising Ca2+ from 1 to 10 mM, and increasing approximately 3-fold upon lowering it to 0.1 mM. Transient outward currents were also recorded following replacement of internal K+ with either Na+ or Cs+, raising the possibility that the current was carried by monovalent ions passing through voltage-gated Ca2+ channels. This hypothesis was supported by the finding that the transient outward current had the same inactivation rate as the inward Ba2+ current, and that both currents were effectively blocked by the L-type Ca2+ channel blocker, nifedipine and enhanced by the agonist BAYK8644.  相似文献   

16.
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   

17.
Properties of the calcium-activated chloride current in heart   总被引:12,自引:0,他引:12       下载免费PDF全文
We used the whole cell patch clamp technique to study transient outward currents of single rabbit atrial cells. A large transient current, IA, was blocked by 4-aminopyridine (4AP) and/or by depolarized holding potentials. After block of IA, a smaller transient current remained. It was completely blocked by nisoldipine, cadmium, ryanodine, or caffeine, which indicates that all of the 4AP-resistant current is activated by the calcium transient that causes contraction. Neither calcium-activated potassium current nor calcium-activated nonspecific cation current appeared to contribute to the 4AP-resistant transient current. The transient current disappeared when ECl was made equal to the pulse potential; it was present in potassium-free internal and external solutions. It was blocked by the anion transport blockers SITS and DIDS, and the reversal potential of instantaneous current-voltage relations varied with extracellular chloride as predicted for a chloride-selective conductance. We concluded that the 4AP-resistant transient outward current of atrial cells is produced by a calcium-activated chloride current like the current ICl(Ca) of ventricular cells (1991. Circulation Research. 68:424-437). ICl(Ca) in atrial cells demonstrated outward rectification, even when intracellular chloride concentration was higher than extracellular. When ICa was inactivated or allowed to recover from inactivation, amplitudes of ICl(Ca) and ICa were closely correlated. The results were consistent with the view that ICl(Ca) does not undergo independent inactivation. Tentatively, we propose that ICl(Ca) is transient because it is activated by an intracellular calcium transient. Lowering extracellular sodium increased the peak outward transient current. The current was insensitive to the choice of sodium substitute. Because a recently identified time-independent, adrenergically activated chloride current in heart is reduced in low sodium, these data suggest that the two chloride currents are produced by different populations of channels.  相似文献   

18.
In whole cell patch clamp recordings on enzymatically dissociated adrenal zona fasciculata (AZF) cells, a rapidly inactivating A-type K+ current was observed in each of more than 150 cells. Activation of IA was steeply voltage dependent and could be described by a Boltzmann function raised to an integer power of 4, with a midpoint of -28.3 mV. Using the "limiting logarithmic potential sensitivity," the single channel gating charge was estimated to be 7.2 e. Voltage-dependent inactivation could also be described by a Boltzmann function with a midpoint of -58.7 mV and a slope factor of 5.92 mV. Gating kinetics of IA included both voltage-dependent and -independent transitions in pathways between closed, open, and inactivated states. IA activated with voltage-dependent sigmoidal kinetics that could be fit with an n4h formalism. The activation time constant, tau a, reached a voltage- independent minimum at potentials positive to 0 mV. IA currents inactivated with two time constants that were voltage independent at potentials ranging from -30 to +45 mV. At +20 mV, tau i(fast) and tau i(slow) were 13.16 +/- 0.64 and 62.26 +/- 5.35 ms (n = 34), respectively. In some cells, IA inactivation kinetics slowed dramatically after many minutes of whole cell recording. Once activated by depolarization, IA channels returned to the closed state along pathways with two voltage-dependent time constants which were 0.208 s, tau rec-f and 10.02 s, tau rec-s at -80 mV. Approximately 90% of IA current recovered with slow kinetics at potentials between -60 and -100 mV. IA was blocked by 4-aminopyridine (IC50 = 629 microM) through a mechanism that was strongly promoted by channel activation. Divalent and trivalent cations including Ni2+ and La3+ also blocked IA with IC50's of 467 and 26.4 microM, respectively. With respect to biophysical properties and pharmacology, IA in AZF cells resembles to some extent transient K+ currents in neurons and muscle, where they function to regulate action potential frequency and duration. The function of this prominent current in steroid hormone secretion by endocrine cells that may not generate action potentials is not yet clear.  相似文献   

19.
Apart from their primary function as balance sensors, Hermissenda hair cells are presynaptic neurons involved in the Ca(2+)-dependent neuronal plasticity in postsynaptic B photoreceptors that accompanies classical conditioning. With a view to beginning to understand presynaptic mechanisms of plasticity in the vestibulo-visual system, a locus for conditioning-induced neuronal plasticity, outward currents that may govern the excitability of hair cells were recorded by means of a whole-cell patch-clamp technique. Three K+ currents were characterized: a 4-aminopyridine-sensitive transient outward K+ current (IA), a tetraethyl ammonium-sensitive delayed rectifier K+ current (IK,V), and a Ca(2+)-activated K+ current (IK,Ca). IA activates and decays rapidly; the steady-state activation and inactivation curves of the current reveal a window current close to the apparent resting voltage of the hair cells, suggesting that the current is partially activated at rest. By modulating firing frequency and perhaps damping membrane oscillations, IA may regulate synaptic release at baseline. In contrast, IK,V and IK,Ca have slow onset and exhibit little or no inactivation. These two K+ currents may determine the duration of the repolarization phase of hair-cell action potentials and hence synaptic release via Ca2+ influx through voltage-gated Ca2+ channels. In addition, IK,Ca may be responsible for the afterhyperpolarization of hair cell membrane voltage following prolonged stimulation.  相似文献   

20.
The delayed outward current in snail neurones was separated into two components with different temperature sensitivity: (i) a persistent component and (ii) a transient (inactivating) component. The effect of cooling on the value of the transient current is strongly dependent upon the value of the conditioning potential. It was supposed that cooling causes a decrease in the negative surface potential in the vicinity of the potassium pathways and removes their inactivation. Simultaneously cooling depresses the potassium conductance. The effect on surface potential is more distinct with conditioning potentials at which a significant fraction of the transient outward current is inactivated. The effect of cooling on the transient component of the fast outward current was similar to that on the transient component of the delayed outward current.  相似文献   

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