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引用次数: 4
摘要
本研究采用荧光钙指示剂OG-BAPTA1结合电流或电压箝位法,记录了小龙虾牵张受体神经元细胞内钙浓度随各种刺激形式的变化。单个动作电位可引起轴突和轴突丘静息钙水平的升高,而需要脉冲序列或大的饱和电流注入才能在树突区域引起等效的响应。在电压箝位条件下,轴突和树突响应的振幅差异完全消失。快速的激活时间和细胞外钙浓度变化对反应的调节表明,诱发的钙瞬态可能是通过电压门控钙通道进入细胞质介导的。细胞外钠和钙浓度以及暴露于1-10 mM NiCl2和10-500µM镧时,反应衰减缓慢且敏感。因此,钠钙交换剂和钙atp酶可能负责从细胞质溶胶中挤出钙。目前的研究结果表明,钙指示剂OG-BAPTA1可能是一种有效但间接的监测单个神经元区域膜电位差异的方法。
Fast calcium transients translate the distribution and conduction of neural activity in different regions of a single sensory neuron.
In the present study, cytosolic calcium concentration changes were recorded in response to various forms of excitations, using the fluorescent calcium indicator dye OG-BAPTA1 together with the current or voltage clamp methods in stretch receptor neurons of crayfish. A single action potential evoked a rise in the resting calcium level in the axon and axonal hillock, whereas an impulse train or a large saturating current injection would be required to evoke an equivalent response in the dendrite region. Under voltage clamp conditions, amplitude differences between axon and dendrite responses vanished completely. The fast activation time and the modulation of the response by extracellular calcium concentration changes indicated that the evoked calcium transients might be mediated by calcium entry into the cytosol through a voltage-gated calcium channel. The decay of the responses was slow and sensitive to extracellular sodium and calcium concentrations as well as exposure to 1-10 mM NiCl2 and 10-500 µM lanthanum. Thus, a sodium calcium exchanger and a calcium ATPase might be responsible for calcium extrusion from the cytosol. Present results indicate that the calcium indicator OG-BAPTA1 might be an efficient but indirect way of monitoring regional membrane potential differences in a single neuron.
期刊介绍:
Invertebrate Neurosciences publishes peer-reviewed original articles, reviews and technical reports describing recent advances in the field of invertebrate neuroscience. The journal reports on research that exploits the simplicity and experimental tractability of the invertebrate preparations to underpin fundamental advances in neuroscience. Articles published in Invertebrate Neurosciences serve to highlight properties of signalling in the invertebrate nervous system that may be exploited in the field of antiparisitics, molluscicides and insecticides. Aspects of particular interest include:
Functional analysis of the invertebrate nervous system;
Molecular neuropharmacology and toxicology;
Neurogenetics and genomics;
Functional anatomy;
Neurodevelopment;
Neuronal networks;
Molecular and cellular mechanisms of behavior and behavioural plasticity.