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Intensity-dependent adaptation of cortical and thalamic neurons is controlled by brainstem circuits of the sensory pathway.

机译:皮层和丘脑神经元的强度依赖性适应受感觉途径的脑干回路控制。

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Current views of sensory adaptation in the rat somatosensory system suggest that it results mainly from short-term synaptic depression. Experimental and theoretical studies predict that increasing the intensity of sensory stimulation, followed by an increase in firing probability at early sensory stages, is expected to attenuate the response at later stages disproportionately more than weaker stimuli, due to greater depletion of synaptic resources and the relatively slow recovery process. This may lead to coding ambiguity of stimulus intensity during adaptation. In contrast, we found that increasing the intensity of repetitive whisker stimulation entails less adaptation in cortical neurons. In a series of recordings, from the trigeminal ganglion to the thalamus, we pinpointed the source of the unexpected pattern of adaptation to the brainstem trigeminal complex. We suggest that low-level sensory processing counterbalances later effects of short-term synaptic depression by increasing the throughput of high-intensity sensory inputs.
机译:当前在大鼠体感系统中感觉适应的观点表明,它主要是由短期突触抑制引起的。实验和理论研究预测,增加感觉刺激的强度,然后增加早期感觉阶段的发射概率,由于较弱的刺激,由于突触资源的消耗更大和相对较弱的刺激,预期在较晚阶段减弱反应的程度更大。恢复过程缓慢。这可能导致在适应期间刺激强度的编码模糊性。相比之下,我们发现增加重复晶须刺激的强度会使皮层神经元的适应性降低。在从三叉神经节到丘脑的一系列记录中,我们指出了与脑干三叉神经复合体相适应的意外模式的来源。我们建议低水平的感觉处理通过增加高强度感觉输入的吞吐量来抵消短期突触抑制的后期影响。

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