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兴奋性和抑制性延迟在小脑浦肯野细胞输出的前馈抑制通路中调制。

Excitation and Inhibition Delays within a Feedforward Inhibitory Pathway Modulate Cerebellar Purkinje Cell Output in Mice.

机构信息

Institut des Neurosciences Cellulaires et Intégratives, Centre National de la Recherche Scientifique, Université de Strasbourg, 67084 Strasbourg, France.

Division of Computational Science and Technology, KTH Royal Institute of Technology, SE-100 44 Stockholm, Sweden.

出版信息

J Neurosci. 2023 Aug 16;43(33):5905-5917. doi: 10.1523/JNEUROSCI.0091-23.2023. Epub 2023 Jul 26.

Abstract

The cerebellar cortex computes sensorimotor information from many brain areas through a feedforward inhibitory (FFI) microcircuit between the input stage, the granule cell (GC) layer, and the output stage, the Purkinje cells (PCs). Although in other brain areas FFI underlies a precise excitation versus inhibition temporal correlation, recent findings in the cerebellum highlighted more complex behaviors at GC-molecular layer interneuron (MLI)-PC pathway. To dissect the temporal organization of this cerebellar FFI pathway, we combined o patch-clamp recordings of PCs in male mice with a viral-based strategy to express Channelrhodopsin2 in a subset of mossy fibers (MFs), the major excitatory inputs to GCs. We show that although light-mediated MF activation elicited pairs of excitatory and inhibitory postsynaptic currents in PCs, excitation (E) from GCs and inhibition (I) from MLIs reached PCs with a wide range of different temporal delays. However, when GCs were directly stimulated, a low variability in E/I delays was observed. Our results demonstrate that in many recordings MF stimulation recruited different groups of GCs that trigger E and/or I, and expanded PC temporal synaptic integration. Finally, using a computational model of the FFI pathway, we showed that this temporal expansion could strongly influence how PCs integrate GC inputs. Our findings show that specific E/I delays may help PCs encoding specific MF inputs. Sensorimotor information is conveyed to the cerebellar cortex by mossy fibers. Mossy fiber inputs activate granule cells that excite molecular interneurons and Purkinje cells, the sole output of the cerebellar cortex, leading to a sequence of synaptic excitation and inhibition in Purkinje cells, thus defining a feedforward inhibitory pathway. Using electrophysiological recordings, optogenetic stimulation, and mathematical modeling, we demonstrated that different groups of granule cells can elicit synaptic excitation and inhibition with various latencies onto Purkinje cells. This temporal variability controls how granule cells influence Purkinje cell discharge and may support temporal coding in the cerebellar cortex.

摘要

小脑皮层通过输入层颗粒细胞 (GC) 层和输出层浦肯野细胞 (PC) 之间的前馈抑制 (FFI) 微电路,从许多脑区计算感觉运动信息。尽管在其他脑区,FFI 是基于精确的兴奋与抑制的时间相关性,但小脑的最近发现强调了 GC-分子层中间神经元 (MLI)-PC 通路的更复杂行为。为了解剖小脑 FFI 通路的时间组织,我们结合了雄性小鼠的 PC 膜片钳记录和基于病毒的策略,以在一组苔藓纤维 (MFs) 中表达 Channelrhodopsin2,MFs 是 GC 的主要兴奋性输入。我们发现,尽管光介导的 MF 激活在 PC 中引发了兴奋性和抑制性突触后电流对,但 GC 的兴奋 (E) 和 MLI 的抑制 (I) 到达 PC 的时间延迟范围很广。然而,当直接刺激 GC 时,观察到 E/I 延迟的低变异性。我们的结果表明,在许多记录中,MF 刺激募集了触发 E 和/或 I 的不同 GC 组,并扩展了 PC 的时间突触整合。最后,使用 FFI 通路的计算模型,我们表明这种时间扩展可以强烈影响 PC 如何整合 GC 输入。我们的研究结果表明,特定的 E/I 延迟可能有助于 PC 编码特定的 MF 输入。感觉运动信息通过苔藓纤维传递到小脑皮层。苔藓纤维输入激活颗粒细胞,颗粒细胞兴奋分子中间神经元和浦肯野细胞,浦肯野细胞是小脑皮层的唯一输出,导致浦肯野细胞中突触兴奋和抑制的序列,从而定义了前馈抑制通路。使用电生理记录、光遗传学刺激和数学建模,我们证明了不同的颗粒细胞群可以以不同的潜伏期在浦肯野细胞上引发突触兴奋和抑制。这种时间变异性控制着颗粒细胞如何影响浦肯野细胞的放电,并可能支持小脑皮层中的时间编码。

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