Voltage-dependence of miniature inhibitory postsynaptic current frequency and amplitude in tectal neurons of Xenopus / 生理学报
Sheng Li Xue Bao
; (6): 21-28, 2006.
Article
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| ID: wpr-265492
Biblioteca responsable:
WPRO
ABSTRACT
Experiments were performed to study the voltage-dependence of miniature inhibitory postsynaptic current (mIPSC) frequency and amplitude using patch-clamp technique with whole cell recording in optic tectal slices of Xenopus. The following results have been observed. (1) When the membrane potentials of a neuron were depolarized or hyperpolarized stepwise from a resting potential via recording pipette to inject a DC current, the frequency and/or amplitude of mIPSCs increased or decreased respectively. The frequency of mIPSCs increased gradually with depolarizing membrane potential and it attained to the maximum as the membrane potential was held at +10 mV. (2) The amplitude increased slightly as the neuron was depolarized. When the depolarization of membrane potential reached -30 or -40 mV, the amplitudes of mIPSCs were maximal. Further depolarization resulted in a decrease of amplitude. Meanwhile, the large mIPSCs appeared when the membrane potential depolarized to a range between -20 mV and +10 mV. (3) With Ca(2+)-free bath solution, the frequency and amplitude of mIPSCs also increased stepwise progressively on depolarization of membrane potential, but the increase was less marked as corresponding value in normal saline perfusion. (4) When the [K(+)](o) in bath solution increased, the frequency of mIPSCs decreased markedly and the amplitude of mIPSCs decreased slightly. If the external K(+) concentration increased further to higher than 20 mmol/L, the neuron produced a marked slow inward or outward membrane current. The possible mechanism underlying the voltage-dependence of mIPSC frequency and amplitude is discussed briefly.
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WPRIM
Asunto principal:
Fisiología
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Xenopus
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Encéfalo
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Técnicas de Placa-Clamp
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Biología Celular
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Canales de Potasio con Entrada de Voltaje
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Potenciales Postsinápticos Inhibidores
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Potenciales Postsinápticos Miniatura
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Potenciales de la Membrana
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Neuronas
Límite:
Animals
Idioma:
En
Revista:
Sheng Li Xue Bao
Año:
2006
Tipo del documento:
Article