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Voltage-dependent intracellular pH in Helix aspersa neurones.

机译:螺旋黑pers神经元中电压依赖性细胞内pH。

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摘要

1. The intracellular pH (pHi) of large nerve cells from the mollusc, Helix aspersa, was measured with pH-sensitive micro-electrodes. Cells were held under voltage clamp and the effect on pHi of different holding potentials was determined. 2. Depolarization of the cell from the resting potential (about -50 mV) to -10 mV produced a fall in pHi that could be reduced by bathing the cell in nominally Ca2+-free saline. 3. At positive holding potentials pHi increased to a steady level that depended upon the electrochemical gradient for H+ across the cell membrane; it shifted by about 1 unit when the external pH was increased from 7 to 8 (or when the membrane potential increased by 58 mV, Thomas & Meech, 1982). 4. The depolarization-induced increase in H+ permeability was insensitive to SITS (4-acetamido-4'-isothiocyanostilbene-2,2'-disulphonic acid, 20 microM), which blocks pHi regulation at the resting potential in these cells (Thomas, 1976). When pHi was displaced from a steady level by ionophoretic injection of HCl, there was a rapid recovery at depolarized potentials even in the presence of SITS. The H+ pathway appeared to be little affected by prolonged periods at positive membrane potentials. 5. The depolarization-induced H+ efflux was insensitive to the metabolic inhibitor CCmP (carbonyl cyanide-m-chlorophenylhydrazone, 20 microM) and persisted in cells bathed in pH-buffered n-methyl glucamine-gluconate. It was also insensitive to DCCD (N, N'-dicyclohexylcarbodiimide, 10-100 microM) and oligomycin (2-10 micrograms/ml). 6. The H+ pathway could be fully blocked by 1 mM-ZnCl2, 1 mM-LaCl3, 1 mM-CuCl2, 2 mM-CdCl2 or 10 mM-CoCl2. Other divalent ions such as BaCl2 (10 mM) produced a block at membrane potentials near 0 mV but the block was released at more positive potentials. Low levels of LaCl3 (0.1 mM), the organic Ca2+ channel antagonist D600 (100 mg/ml) and high levels of the K+ channel blocker TEA (50 mM) all had similar effects to Ba2+. 7. The K+ channel blocker 4-aminopyridine (10 mM), which blocks H+ currents in perfused Lymnaea neurones (Byerly, Meech & Moody, 1984), has a complex action.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:1.用pH敏感的微电极测量软体动物大螺旋藻(Helix aspersa)的大神经细胞的细胞内pH(pHi)。将细胞保持在电压钳下,并测定不同保持电位对pHi的影响。 2.细胞从静止电位(约-50 mV)去极化至-10 mV导致pHi下降,可通过将细胞浸入标称不含Ca2 +的盐水中来降低pHi。 3.在正的保持电位下,pHi升高至稳定水平,这取决于细胞膜上H +的电化学梯度。当外部pH从7增加到8(或膜电位增加58 mV,Thomas&Meech,1982)时,它移动了大约1个单位。 4.去极化诱导的H +通透性增加对SITS(4-乙酰胺基4'-异硫氰基茂铁-2,2'-二磺酸,20 microM)不敏感,这阻止了pHi调节这些细胞的静息电位(Thomas, 1976)。当通过离子注入HCl将pHi从稳定水平置换时,即使存在SITS,在去极化电势下也会快速恢复。 H +途径似乎很少受到正膜电位下长时间的影响。 5.去极化诱导的H +外流对代谢抑制剂CCmP(羰基氰化物-间氯苯hydr,20 microM)不敏感,并在浸入pH缓冲的正甲基葡糖胺-葡萄糖酸盐的细胞中持续存在。它还对DCCD(N,N'-二环己基碳二亚胺,10-100 microM)和寡霉素(2-10μg/ ml)不敏感。 6. 1 mM-ZnCl2、1 mM-LaCl3、1 mM-CuCl2、2 mM-CdCl2或10 mM-CoCl2可以完全阻断H +途径。其他二价离子(如BaCl2(10 mM))在膜电势接近0 mV时产生了一个阻断,但该阻断在更高的正电势下释放。低水平的LaCl3(0.1 mM),有机Ca2 +通道拮抗剂D600(100 mg / ml)和高水平的K +通道阻滞剂TEA(50 mM)与Ba2 +具有相似的作用。 7. K +通道阻滞剂4-氨基吡啶(10 mM)阻滞灌注的淋巴神经元中的H +电流(Byerly,Meech和Moody,1984年),具有复杂的作用。(摘要截短了400字)。

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