首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Selective T-type calcium channel block in thalamic neurons reveals channel redundancy and physiological impact of I(T)window.
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Selective T-type calcium channel block in thalamic neurons reveals channel redundancy and physiological impact of I(T)window.

机译:丘脑神经元中的选择性T型钙通道阻滞揭示通道冗余和I(T)窗口的生理影响。

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Although it is well established that low-voltage-activated T-type Ca(2+) 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 Ca(2+) homeostasis. Recently, a novel series of piperidine-based molecules has been shown to selectively block recombinant T-type but not high-voltage-activated (HVA) Ca(2+) 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 (IC(50) = 22 nm), and reversible inhibition of T-type Ca(2+) currents of thalamocortical and reticular thalamic neurons, without any action on HVA Ca(2+) currents, Na(+) currents, action potentials, and glutamatergic and GABAergic synaptic currents. Thus, under current-clamp conditions, the low-threshold Ca(2+) 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 Ca(2+) 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强效拮抗剂的存在阻碍了对全部影响的详细分析这些通道可能具有单细胞和神经元网络的兴奋性以及Ca(2+)稳态。最近,已显示一系列新型的基于哌啶的分子能够选择性地阻止重组T型通道,但不能阻断高压激活(HVA)Ca(2+)通道,并影响许多生理和病理性T型通道。依赖行为。在这里,我们直接显示了其中的一种化合物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),发挥特异的,有力的(IC(50)= 22 nm)和可逆抑制丘脑皮层和网状丘脑神经元的T型Ca(2+)电流,而对HVA Ca(2+)无任何作用电流,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,而强直性听觉保持不变。使用TTA-P2,我们提供了神经元中Ca(2+)通道的窗口成分的存在的首次直接证明,它对丘脑神经元的静息膜电位及其固有产生的缓慢(< 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在去极化电位下引起,其中绝大多数T型通道都位于停用。

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