首页> 美国卫生研究院文献>The Journal of Neuroscience >Selective T-Type Calcium Channel Block in Thalamic Neurons Reveals Channel Redundancy and Physiological Impact of ITwindow
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Selective T-Type Calcium Channel Block in Thalamic Neurons Reveals Channel Redundancy and Physiological Impact of ITwindow

机译:丘脑神经元中的选择性T型钙通道阻滞揭示了通道冗余和ITwindow的生理影响

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摘要

Although it is well established that low-voltage-activated T-type Ca2+ channels play a key role in many neurophysiological functions and pathological states, the lack of selective and potent antagonists has so far hampered a detailed analysis of the full impact these channels might have on single-cell and neuronal network excitability as well as on Ca2+ homeostasis. Recently, a novel series of piperidine-based molecules has been shown to selectively block recombinant T-type but not high-voltage-activated (HVA) Ca2+ channels and to affect a number of physiological and pathological T-type channel-dependent behaviors. Here we directly show that one of these compounds, 3,5-dichloro-N-[1-(2,2-dimethyl-tetrahydro-pyran-4-ylmethyl)-4-fluoro-piperidin-4-ylmethyl]-benzamide (TTA-P2), exerts a specific, potent (IC50 = 22 nm), and reversible inhibition of T-type Ca2+ currents of thalamocortical and reticular thalamic neurons, without any action on HVA Ca2+ currents, Na+ currents, action potentials, and glutamatergic and GABAergic synaptic currents. Thus, under current-clamp conditions, the low-threshold Ca2+ potential (LTCP)-dependent high-frequency burst firing of thalamic neurons is abolished by TTA-P2, whereas tonic firing remains unaltered. Using TTA-P2, we provide the first direct demonstration of the presence of a window component of Ca2+ channels in neurons and its contribution to the resting membrane potential of thalamic neurons and to the Up state of their intrinsically generated slow (<1 Hz) oscillation. Moreover, we demonstrate that activation of only a small fraction of the T-type channel population is required to generate robust LTCPs, suggesting that LTCP-driven bursts of action potentials can be evoked at depolarized potentials where the vast majority of T-type channels are inactivated.
机译:尽管已经公认低压激活的T型Ca 2 + 通道在许多神经生理功能和病理状态中起着关键作用,但迄今为止缺乏选择性和有效的拮抗剂阻碍了详细的研究。分析这些通道可能对单细胞和神经元网络兴奋性以及对Ca 2 + 稳态的影响。最近,已显示出一系列新的基于哌啶的分子选择性阻断重组T型而不是高压激活(HVA)Ca 2 + 通道,并影响许多生理和病理T型通道相关行为。在这里,我们直接显示这些化合物之一3,5-二氯-N- [1-(2,2-二甲基-四氢-吡喃-4-基甲基)-4-氟-哌啶-4-基甲基]-苯甲酰胺( TTA-P2),对丘脑皮层和网状丘脑神经元的T型Ca 2 + 电流具有特异性,有效的(IC50 = 22 nm)抑制作用,并且对HVA Ca 2 + 电流,Na + 电流,动作电位以及谷氨酸能和GABA能突触电流。因此,在电流钳制条件下,TTA-P2取消了丘脑神经元的低阈值Ca 2 + 电位(LTCP)依赖性高频猝发放电,而强直性放电保持不变。我们使用TTA-P2首次直接证明了神经元中Ca 2 + 通道的窗口成分的存在及其对丘脑神经元静息膜电位及其Up状态的贡献本质上会产生缓慢的(<1 Hz)振荡。此外,我们证明,仅激活一小部分T型通道即可生成鲁棒的LTCP,这表明LTCP驱动的动作电位猝发可以在去极化电位下引起,其中大多数T型通道是停用。

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