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出生后发育中的新皮层中抑制性网络分支的神经调节控制。

Neuromodulatory control of inhibitory network arborization in the developing postnatal neocortex.

作者信息

Steinecke André, Bolton McLean M, Taniguchi Hiroki

机构信息

Development and Function of Inhibitory Neural Circuits, Max Planck Florida Institute for Neuroscience, Jupiter, FL 33458, USA.

Disorders of Neural Circuit Function, Max Planck Florida Institute for Neuroscience, Jupiter, FL 33458, USA.

出版信息

Sci Adv. 2022 Mar 11;8(10):eabe7192. doi: 10.1126/sciadv.abe7192. Epub 2022 Mar 9.

Abstract

Interregional neuronal communication is pivotal to instructing and adjusting cortical circuit assembly. Subcortical neuromodulatory systems project long-range axons to the cortex and affect cortical processing. However, their roles and signaling mechanisms in cortical wiring remain poorly understood. Here, we explored whether and how the cholinergic system regulates inhibitory axonal ramification of neocortical chandelier cells (ChCs), which control spike generation by innervating axon initial segments of pyramidal neurons. We found that acetylcholine (ACh) signaling through nicotinic ACh receptors (nAChRs) and downstream T-type voltage-dependent calcium (Ca) channels cell-autonomously controls axonal arborization in developing ChCs through regulating filopodia initiation. This signaling axis shapes the basal Ca level range in varicosities where filopodia originate. Furthermore, the normal development of ChC axonal arbors requires proper levels of activity in subcortical cholinergic neurons. Thus, the cholinergic system regulates inhibitory network arborization in the developing neocortex and may tune cortical circuit properties depending on early-life experiences.

摘要

区域间的神经元通讯对于指导和调节皮质回路组装至关重要。皮质下神经调节系统将长轴突投射到皮质并影响皮质处理过程。然而,它们在皮质布线中的作用和信号传导机制仍知之甚少。在这里,我们探讨了胆碱能系统是否以及如何调节新皮质吊灯细胞(ChCs)的抑制性轴突分支,这些细胞通过支配锥体神经元的轴突起始段来控制动作电位的产生。我们发现,通过烟碱型乙酰胆碱受体(nAChRs)和下游T型电压依赖性钙(Ca)通道的乙酰胆碱(ACh)信号通过调节丝状伪足的起始,自主地控制发育中的ChCs的轴突分支。这个信号轴塑造了丝状伪足起源的曲张体中的基础钙水平范围。此外,ChC轴突分支的正常发育需要皮质下胆碱能神经元有适当水平的活动。因此,胆碱能系统调节发育中的新皮质中的抑制性网络分支,并可能根据早期生活经历来调整皮质回路特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ad38/8906727/6b72b04c12d2/sciadv.abe7192-f1.jpg

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