首页> 外文期刊>Journal of Computational Neuroscience >Subthreshold amplitude and phase resonance in models of quadratic type: Nonlinear effects generated by the interplay of resonant and amplifying currents
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Subthreshold amplitude and phase resonance in models of quadratic type: Nonlinear effects generated by the interplay of resonant and amplifying currents

机译:二次类型的模型中的亚阈值幅度和相位谐振:由谐振和放大电流的相互作用产生的非线性效应

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We investigate the biophysical and dynamic mechanisms of generation of subthreshold amplitude and phase resonance in response to sinusoidal input currents in two-dimensional models of quadratic type. These models feature a parabolic voltage nullcline and a linear nullcline for the recovery gating variable, capturing the interplay of the so-called resonant currents (e.g., hyperpolarization-activated mixed-cation inward and slow potassium) and amplifying currents (e.g., persistent sodium) in biophysically realistic parameter regimes. These currents underlie the generation of resonance in medial entorhinal cortex layer II stellate cells and CA1 pyramidal cells. We show that quadratic models exhibit nonlinear amplifications of the voltage response to sinusoidal inputs in the resonant frequency band. These are expressed as an increase in the impedance profile as the input amplitude increases. They are stronger for values positive than negative to resting potential and are accompanied by a shift in the phase profile, a decrease in the resonant and phase-resonant frequencies, and an increase in the sharpness of the voltage response. These effects are more prominent for smaller values of 𜖠(larger levels of the time scale separation between the voltage and the resonant gating variable) and for values of the resting potential closer to threshold for spike generation. All other parameter fixed, as 𜖠increases the voltage response becomes “more linearâ€; i.e., the nonlinearities are present, but “ignoredâ€. In addition, the nonlinear effects are strongly modulated by the curvature of the parabolic voltage nullcline (partially reflecting the effects of the amplifying current) and the slope of the resonant current activation curve. Following the effects of changes in the biophysical conductances of realistic conductance-based models through the parameters of the quadratic model, we characterize the qualitatively different effects that resonant and amplifying currents have on the nonlinear properties of the voltage response. We identify different classes of resonant currents, represented by h- and slow potassium, according to whether they enhance (h-) or attenuate (slow potassium) the nonlinear effects. Finally, we use dynamical systems tools to investigate the dynamic mechanisms of generation of resonance and phase-resonance. We show that the nonlinear effects on the voltage response (e.g., amplification of the voltage response in the resonant frequency band and shifts in the resonant and phase-resonant frequencies) result from the ability of limit cycle trajectories to follow the unstable (right) branch of the voltage nullcline for a significant amount of time. This is a canard-related mechanism that has been shown to underlie the generation of intrinsic subthreshold oscillations in quadratic type models such as medial entorhinal cortex stellate cells. Overall, our results highlight the complexity of the voltage response to oscillatory inputs in nonlinear models and the roles that resonant and amplifying currents have in shaping these responses.
机译:我们研究了响应于二次类型二维模型中的正弦输入电流的亚阈值幅度和相位共振产生的生物物理和动态机制。这些型号具有抛物线电压烟链和用于恢复门控变量的线性烟碱,捕获所谓的谐振电流的相互作用(例如,超极化激活的混合阳离子向内和慢钾)和放大电流(例如,持久性钠)在生物物理学的参数制度中。这些电流利好内侧梭形皮质层二星形细胞和Ca1金字塔蛋白细胞的共振产生。我们表明二次模型表现出谐振频带中的正弦输入的电压响应的非线性放大。随着输入幅度的增加,这些表示为阻抗轮廓的增加。它们对于正于休息电位的值较强的值更强,并且伴随相位轮廓的偏移,谐振和相位谐振频率的减小,以及电压响应的锐度的增加。对于较小的值的ğœ-(电压和谐振门控变量之间的时间尺度分离的较大级别分离的较大级别)和用于峰值产生的阈值的值更为突出。所有其他参数固定,如ğœ - 增加电压响应变为“œresponse”。即,非线性存在,但是“的非线性”。另外,非线性效应被抛物线电压烟链的曲率强烈调节(部分地反映放大电流的效果)和谐振电流激活曲线的斜率。在基于现实电导的模型的生物物理导电的变化效果之后通过二次模型的参数,我们表征了谐振和放大电流对电压响应的非线性性质的定性不同的效果。根据是否增强(H-)或衰减(慢钾)非线性效应,我们识别由H-和慢钾代表的不同类别的谐振电流。最后,我们使用动态系统工具来研究产生共振和相位谐振的动态机制。我们表明,对电压响应的非线性效应(例如,在谐振频带中的电压响应的放大并在谐振和相位谐振频率中移位)是由限制循环轨迹的能力遵循不稳定(右)分支的能力。电压烟碱的大量时间。这是一种与筒式相关机制,已被证明是在二次型模型中产生内在亚阈值振荡的基础,例如内侧intorhinal皮质星状细胞。总的来说,我们的结果突出了非线性模型中振荡输入的电压响应的复杂性,以及谐振和放大电流在塑造这些反应方面的作用。

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