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运动相关电刺激增强猴子大脑皮层连接的随意运动能力。

Movement-dependent electrical stimulation for volitional strengthening of cortical connections in behaving monkeys.

机构信息

Department of Physiology and Biophysics, University of Washington, Seattle, WA 98195.

Washington National Primate Research Center, University of Washington, Seattle, WA 98195.

出版信息

Proc Natl Acad Sci U S A. 2022 Jul 5;119(27):e2116321119. doi: 10.1073/pnas.2116321119. Epub 2022 Jun 27.

Abstract

Correlated activity of neurons can lead to long-term strengthening or weakening of the connections between them. In addition, the behavioral context, imparted by execution of physical movements or the presence of a reward, can modulate the plasticity induced by Hebbian mechanisms. In the present study, we have combined behavior and induced neuronal correlations to strengthen connections in the motor cortex of adult behaving monkeys. Correlated activity was induced using an electrical-conditioning protocol in which stimuli gated by voluntary movements were used to produce coactivation of neurons at motor-cortical sites involved in those movements. Delivery of movement-dependent stimulation resulted in small increases in the strength of associated cortical connections immediately after conditioning. Remarkably, when paired with further repetition of the movements that gated the conditioning stimuli, there were substantially larger gains in the strength of cortical connections, which occurred in a use-dependent manner, without delivery of additional conditioning stimulation. In the absence of such movements, little change was observed in the strength of motor-cortical connections. Performance of the motor behavior in the absence of conditioning also did not produce any changes in connectivity. Our results show that combining movement-gated stimulation with further natural use of the "conditioned" pathways after stimulation ends can produce use-dependent strengthening of connections in adult primates, highlighting an important role for behavior in cortical plasticity. Our data also provide strong support for combining movement-gated stimulation with use-dependent physical rehabilitation for strengthening connections weakened by a stroke or spinal cord injury.

摘要

神经元的相关活动可以导致它们之间的连接长期增强或减弱。此外,行为背景,通过执行身体运动或存在奖励来传递,可以调节由赫布机制引起的可塑性。在本研究中,我们结合行为和诱导的神经元相关性,来增强成年行为猴子运动皮层中的连接。通过使用电条件作用协议来诱导相关活动,其中由自愿运动引发的刺激用于产生与参与这些运动的运动皮层部位的神经元的共同激活。运动相关刺激的传递导致在条件作用后立即增加相关皮质连接的强度。值得注意的是,当与进一步重复引发条件刺激的运动配对时,皮质连接的强度会有更大的显著增加,这种增加是依赖于使用的,而无需额外的条件刺激传递。在没有这种运动的情况下,观察到运动皮层连接的强度几乎没有变化。在没有条件作用的情况下进行运动行为也不会导致连接性发生任何变化。我们的结果表明,将运动门控刺激与刺激结束后进一步自然使用“条件化”通路相结合,可以在成年灵长类动物中产生连接的依赖使用增强,突出了行为在皮质可塑性中的重要作用。我们的数据还为将运动门控刺激与依赖使用的物理康复相结合,以增强因中风或脊髓损伤而减弱的连接提供了强有力的支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4dbe/9271159/bafe2cf6cd06/pnas.2116321119fig01.jpg

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