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Neural Circuits: Mesoscale-duration activated states gate spiking in response to fast rises in membrane voltage in the awake brain

机译:神经回路:中度持续时间的激活状态使尖峰响应于清醒的大脑中膜电压的快速升高

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摘要

Seconds-scale network states, affecting many neurons within a network, modulate neural activity by complementing fast integration of neuron-specific inputs that arrive in the milliseconds before spiking. Nonrhythmic subthreshold dynamics at intermediate timescales, however, are less well characterized. We found, using automated whole cell patch clamping in vivo, that spikes recorded in CA1 and barrel cortex in awake mice are often preceded not only by monotonic voltage rises lasting milliseconds but also by more gradual (lasting tens to hundreds of milliseconds) depolarizations. The latter exert a gating function on spiking, in a fashion that depends on the gradual rise duration: the probability of spiking was higher for longer gradual rises, even when controlled for the amplitude of the gradual rises. Barrel cortex double-autopatch recordings show that gradual rises are shared across some, but not all, neurons. The gradual rises may represent a new kind of state, intermediate both in timescale and in proportion of neurons participating, which gates a neuron's ability to respond to subsequent inputs.>NEW & NOTEWORTHY We analyzed subthreshold activity preceding spikes in hippocampus and barrel cortex of awake mice. Aperiodic voltage ramps extending over tens to hundreds of milliseconds consistently precede and facilitate spikes, in a manner dependent on both their amplitude and their duration. These voltage ramps represent a “mesoscale” activated state that gates spike production in vivo.
机译:秒级网络状态会影响网络中的许多神经元,通过补充神经元特定输入的快速集成来调节神经活动,这些输入会在峰值之前到达毫秒。但是,在中间时间尺度上的非节奏性亚阈值动力学却没有得到很好的表征。我们发现,使用体内自动全细胞膜片钳制技术,清醒小鼠中CA1和桶状皮层中记录的峰值通常不仅持续持续数毫秒的单调电压升高,而且还发生了逐渐的(持续数十至数百毫秒)去极化。后者以依赖于逐渐上升持续时间的方式在尖峰上发挥门控功能:即使在控制逐渐上升幅度的情况下,较长的逐渐上升,尖峰的概率也更高。桶状皮质双自动补片的记录表明,部分但不是全部神经元都有逐渐升高的趋势。逐渐上升可能代表一种新的状态,既在时间尺度上又在神经元参与的比例上处于中间状态,这决定了神经元对后续输入做出响应的能力。> NEW&NOTEWORTHY 清醒小鼠的海马和桶状皮质。取决于电压振幅和持续时间的方式,非周期的电压斜坡持续数十到数百毫秒,并持续不断地促进峰值。这些电压斜坡代表“中尺度”激活状态,可以控制体内的尖峰生产。

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