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1
Membrane potential and input resistance in acinar cells from cat and rabbit submaxillary glands in vivo: effects of autonomic nerve stimulation.猫和兔颌下腺腺泡细胞在体时的膜电位和输入电阻:自主神经刺激的影响
J Physiol. 1974 Oct;242(1):157-72. doi: 10.1113/jphysiol.1974.sp010699.
2
Membrane potential and resistance measurement in acinar cells from salivary glands in vitro: effect of acetylcholine.体外唾液腺腺泡细胞的膜电位和电阻测量:乙酰胆碱的作用
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引用本文的文献

1
Electrophysiology of mouse parotid acini: effects of electrical field stimulation and ionophoresis of neurotransmitters.小鼠腮腺腺泡的电生理学:电场刺激和神经递质离子电渗疗法的影响
J Physiol. 1980 Aug;305:43-57. doi: 10.1113/jphysiol.1980.sp013348.
2
Multiple-site optical recording of membrane potential from a salivary gland. Interaction of synaptic and electrotonic excitation.唾液腺膜电位的多部位光学记录。突触与电紧张性兴奋的相互作用。
J Gen Physiol. 1983 Jun;81(6):887-908. doi: 10.1085/jgp.81.6.887.
3
Electric current flow in a two-cell preparation from Chironomus salivary glands.来自摇蚊唾液腺的双细胞制剂中的电流流动。
J Physiol. 1984 Jan;346:599-619. doi: 10.1113/jphysiol.1984.sp015044.
4
ACh-evoked complex membrane potential changes in mouse submaxillary gland acini. A study employing channel blockers and atropine.乙酰胆碱诱发的小鼠颌下腺腺泡复合膜电位变化。一项使用通道阻滞剂和阿托品的研究。
Pflugers Arch. 1980 Aug;386(3):251-9. doi: 10.1007/BF00587476.
5
Sympathetically evoked secretory potentials in the parotid gland of the cat.猫腮腺中交感神经诱发的分泌电位。
J Physiol. 1980 May;302:183-95. doi: 10.1113/jphysiol.1980.sp013237.
6
Membrane potential and resistance measurement in acinar cells from salivary glands in vitro: effect of acetylcholine.体外唾液腺腺泡细胞的膜电位和电阻测量:乙酰胆碱的作用
J Physiol. 1974 Oct;242(1):173-88. doi: 10.1113/jphysiol.1974.sp010700.
7
Neuroeffector characteristics of sweat glands in the human hand activated by regular neural stimuli.由常规神经刺激激活的人手汗腺的神经效应器特征。
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Pancreatic acinar cells: ionic dependence of acetylcholine-induced membrane potential and resistance change.胰腺腺泡细胞:乙酰胆碱诱导的膜电位和电阻变化的离子依赖性
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9
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10
Membrane potential and resistance changes induced in salivary gland acinar cells by microiontophoretic application of acetylcholine and adrenergic agonists.通过微量离子电泳法施加乙酰胆碱和肾上腺素能激动剂在唾液腺腺泡细胞中诱导产生的膜电位和电阻变化。
J Membr Biol. 1978 Mar 20;39(4):297-312. doi: 10.1007/BF01869896.

本文引用的文献

1
On the localization of acetylcholine receptors.关于乙酰胆碱受体的定位
J Physiol. 1955 Apr 28;128(1):157-81. doi: 10.1113/jphysiol.1955.sp005297.
2
THE MEASUREMENT OF SYNAPTIC DELAY, AND THE TIME COURSE OF ACETYLCHOLINE RELEASE AT THE NEUROMUSCULAR JUNCTION.神经肌肉接头处突触延迟的测量以及乙酰胆碱释放的时间进程。
Proc R Soc Lond B Biol Sci. 1965 Feb 16;161:483-95. doi: 10.1098/rspb.1965.0016.
3
Electrophysiology of salivary glands.唾液腺的电生理学
Physiol Rev. 1958 Jan;38(1):21-40. doi: 10.1152/physrev.1958.38.1.21.
4
Anionic dependence of secretion and secretory potentials in the perfused sublingual gland.灌注舌下腺中分泌及分泌电位的阴离子依赖性
Acta Physiol Scand. 1957 Oct 10;40(2-3):101-12. doi: 10.1111/j.1748-1716.1957.tb01480.x.
5
The mechanism of establishment of secretory potentials in sublingual gland cells.舌下腺细胞分泌电位的建立机制。
Acta Physiol Scand. 1957 Sep 17;40(1):35-58. doi: 10.1111/j.1748-1716.1957.tb01476.x.
6
Secretory potentials in the sublingual gland of the cat.猫舌下腺的分泌潜能
Acta Physiol Scand. 1957 Sep 17;40(1):21-34. doi: 10.1111/j.1748-1716.1957.tb01475.x.
7
The electrophysiology of the submaxillary gland of the cat.猫颌下腺的电生理学
Acta Physiol Scand. 1955 Dec 22;35(1):1-25. doi: 10.1111/j.1748-1716.1955.tb01258.x.
8
Response of single motoneurons to direct stimulation in toad's spinal cord.蟾蜍脊髓中单个运动神经元对直接刺激的反应。
J Neurophysiol. 1955 Sep;18(5):472-85. doi: 10.1152/jn.1955.18.5.472.
9
The latency of response of secretory acinar cells to nerve stimulation in the submandibular gland of the cat.猫下颌下腺中分泌性腺泡细胞对神经刺激的反应潜伏期。
Aust J Exp Biol Med Sci. 1969 Feb;47(1):135-44. doi: 10.1038/icb.1969.13.
10
Secretory potentials in rat submaxillary gland.大鼠下颌下腺的分泌潜能
Proc Soc Exp Biol Med. 1969 Jan;130(1):192-6. doi: 10.3181/00379727-130-33519.

猫和兔颌下腺腺泡细胞在体时的膜电位和输入电阻:自主神经刺激的影响

Membrane potential and input resistance in acinar cells from cat and rabbit submaxillary glands in vivo: effects of autonomic nerve stimulation.

作者信息

Kagayama M, Nishiyama A

出版信息

J Physiol. 1974 Oct;242(1):157-72. doi: 10.1113/jphysiol.1974.sp010699.

DOI:10.1113/jphysiol.1974.sp010699
PMID:4436819
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1330605/
Abstract
  1. Membrane potential and input resistance measurements were made from acinar cells of cat and rabbit submaxillary glands in vivo, using intracellular glass micro-electrodes.2. The mean resting cell membrane potential was higher than previously reported, but ranged widely from -15 to -80 mV.3. Single shock electrical stimulation of the parasympathetic nerve fibres evoked characteristic potential changes. In some cases monophasic hyperpolarizations, in others biphasic responses (depolarization - hyperpolarization) were observed.4. The latency of the hyperpolarizing response was considerably longer (300-550 msec) than the latency of the biphasic response (about 150 msec).5. Hyperpolarizing and biphasic responses could be observed in the same cell at different levels of membrane potential. The initial depolarization of the biphasic response was dependent on the magnitude of the resting potential in such a manner that it was very small or absent at the lowest potentials and increased gradually with increasing level of the resting potential.6. Single-shock stimulation of the sympathetic nerve fibres to the gland did not evoke any response. In the cat, repetitive stimulation evoked hyperpolarizing or biphasic responses similar to those seen after repetitive stimulation of the parasympathetic nerve fibres. In the rabbit small hyperpolarizations were seen in a few cells only; mostly there was no response. Repetitive stimulation of the parasympathetic nerve fibres to the rabbit submaxillary gland evoked complex potential changes mostly of the depolarization-hyperpolarization type.7. Both single shock and repetitive stimulation of the parasympathetic nerve fibres evoked marked reductions in cell input resistance. In the hyperpolarizing cell type the conductance change sometimes preceded the potential change whereas they always occurred simultaneously in the biphasic cell type.8. It is concluded that both the hyperpolarizing and the biphasic secretory potentials are derived from the same type of acinar cells. The neurotransmitter released by the parasympathetic nerve endings (ACh) acts on the acinar cell membrane by increasing the ion permeability.
摘要
  1. 采用细胞内玻璃微电极,在体测量猫和兔下颌下腺腺泡细胞的膜电位和输入电阻。

  2. 静息细胞膜电位的平均值高于先前报道的值,范围在-15至-80mV之间,差异较大。

  3. 对副交感神经纤维进行单次电刺激可诱发特征性电位变化。在某些情况下观察到单相超极化,在其他情况下观察到双相反应(去极化 - 超极化)。

  4. 超极化反应的潜伏期(300 - 550毫秒)比双相反应的潜伏期(约150毫秒)长得多。

  5. 在同一细胞的不同膜电位水平下,均可观察到超极化和双相反应。双相反应的初始去极化取决于静息电位的大小,在最低电位时非常小或不存在,并随着静息电位水平的升高而逐渐增加。

  6. 对支配腺体的交感神经纤维进行单次电刺激未诱发任何反应。在猫中,重复刺激可诱发类似于副交感神经纤维重复刺激后所见的超极化或双相反应。在兔中,仅在少数细胞中观察到小的超极化;大多数情况下无反应。对兔下颌下腺副交感神经纤维的重复刺激主要诱发去极化 - 超极化类型的复杂电位变化。

  7. 对副交感神经纤维进行单次和重复刺激均可引起细胞输入电阻的显著降低。在超极化细胞类型中,电导变化有时先于电位变化,而在双相细胞类型中它们总是同时发生。

  8. 得出的结论是,超极化和双相分泌电位均来自同一类型的腺泡细胞。副交感神经末梢释放的神经递质(乙酰胆碱)通过增加离子通透性作用于腺泡细胞膜。