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运动学习中皮质脊柱动力学的突触前监督。

Presynaptic supervision of cortical spine dynamics in motor learning.

机构信息

Division of Cerebral Circuitry, National Institute for Physiological Sciences (NIPS), Okazaki 444-8787, Japan.

Section of Electron Microscopy, Supportive Center for Brain Research, National Institute for Physiological Sciences (NIPS), Okazaki 444-8787, Japan.

出版信息

Sci Adv. 2022 Jul 29;8(30):eabm0531. doi: 10.1126/sciadv.abm0531. Epub 2022 Jul 27.

Abstract

In mammalian neocortex, learning triggers the formation and turnover of new postsynaptic spines on pyramidal cell dendrites. However, the biological principles of spine reorganization during learning remain elusive because the identity of their presynaptic neuronal partners is unknown. Here, we show that two presynaptic neural circuits supervise distinct programs of spine dynamics to execute learning. We imaged spine dynamics in motor cortex during learning and performed post hoc identification of their afferent presynaptic neurons. New spines that appeared during learning formed small transient contacts with corticocortical neurons that were eliminated on skill acquisition. In contrast, persistent spines with axons from thalamic neurons were formed and enlarged. These results suggest that pyramidal cell dendrites in motor cortex use a neural circuit division of labor during skill learning, with dynamic teaching contacts from top-down intracortical axons followed by synaptic memory formation driven by thalamic axons. Dual spine supervision may govern diverse skill learning in the neocortex.

摘要

在哺乳动物新皮质中,学习会触发锥体神经元树突上的新突触后棘的形成和更替。然而,学习过程中棘突重组的生物学原理仍不清楚,因为其突触前神经元伙伴的身份尚不清楚。在这里,我们表明两个突触前神经回路监督着不同的棘突动力学程序来执行学习。我们在学习过程中对运动皮层中的棘突动力学进行了成像,并在后测中识别了它们的传入突触前神经元。在学习过程中出现的新棘突与皮层内神经元形成短暂的接触,而这些神经元在技能习得时被消除。相比之下,来自丘脑神经元的轴突形成并增大了持久的棘突。这些结果表明,运动皮层中的锥体神经元树突在技能学习过程中使用了一种神经回路分工,自上而下的皮质内轴突提供动态的教学接触,随后由丘脑轴突驱动突触记忆形成。双重棘突监督可能支配着新皮质中的多种技能学习。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db0a/9328689/6cb72dc283d8/sciadv.abm0531-f1.jpg

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