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Dynamics of Low-Threshold Spike Activation in Relay Neurons of the Cat Lateral Geniculate Nucleus

机译:低阈值穗激活的猫侧根状核的中继神经元中的动力学。

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摘要

The low-threshold spike (LTS), generated by the transient Ca2+ current IT, plays a pivotal role in thalamic relay cell responsiveness and thus in the nature of the thalamic relay. By injecting depolarizing current ramps at various rates to manipulate the slope of membrane depolarization (dV/dt), we found that an LTS occurred only if dV/dt exceeded a minimum value of ∼5–12 mV/sec. We injected current ramps of variable dV/dt into relay cells that were sufficiently hyperpolarized to de-inactivateIT completely. Higher values of dV/dt activated an LTS. However, lower values of dV/dt eventually led to tonic firing without ever activating an LTS; apparently, the inactivation ofIT proceeded beforeIT could be recruited. Because the maximum rate of rise of the LTS decreased with slower activating ramps of injected current, we conclude that slower ramps allow increasing inactivation of IT before the threshold for its activation gating is reached, and when the injected ramps have a sufficiently low dV/dt, the inactivation is severe enough to prevent activation of an LTS. In the presence of Cs+, we found that even the lowest dV/dt that we applied led to LTS activation, apparently because Cs+ reduced the K+ “leak” conductance and increased neuronal input resistance. Nonetheless, under normal conditions, our data suggest that there is neither significant window current (related to the overlap of the inactivation and activation curves forIT), rhythmogenic properties, nor bistability properties for these neurons. Our theoretical results using a minimal model of LTS excitability in these neurons are consistent with the experimental observations and support our conclusions. We suggest that inputs activating very slow EPSPs (i.e., via metabotropic receptors) may be able to inactivateIT without generating sizableIT and a spurious burst of action potentials to cortex.
机译:由瞬时Ca 2 + 电流IT产生的低阈值尖峰(LTS)在丘脑中继细胞的响应性以及丘脑中继的本质中起着关键作用。通过以各种速率注入去极化电流斜坡以控制膜去极化的斜率(dV / dt),我们发现只有在dV / dt超过最小值〜5–12 mV / sec的情况下才会发生LTS。我们将可变dV / dt的电流斜坡注入到足够超极化以完全使IT灭活的继电器电池中。较高的dV / dt值会激活LTS。但是,较低的dV / dt值最终会导致不进行LTS激活而进行强音发射。显然,IT的灭活是在可以招募IT之前进行的。由于LTS的最大上升速率随着注入电流的激活斜坡变慢而降低,因此我们得出结论,在达到激活门限的阈值之前,以及当注入斜坡具有足够低的d V / d t ,失活严重到足以阻止LTS激活。在存在Cs + 的情况下,我们发现即使是最低的d V / d t 也会导致LTS激活,这显然是因为Cs + 降低了K + 的“泄漏”电导率并增加了神经元输入阻力。但是,在正常条件下,我们的数据表明这些神经元既没有明显的窗电流(与 IT 的失活和激活曲线的重叠有关),也没有节律特性或双稳态特性。我们在这些神经元中使用LTS兴奋性最小模型的理论结果与实验观察结果一致,并支持我们的结论。我们建议,激活非常慢的EPSP(即通过代谢型受体)的输入可能能够使 IT 失活,而不会产生相当大的 IT 和对皮质的动作电位的虚假爆发。

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