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丘脑-额前突触前馈抑制的频率依赖性门控。

Frequency-dependent gating of feedforward inhibition in thalamofrontal synapses.

机构信息

Korea Brain Research Institute, 61 Cheomdan-ro, Daegu, 41062, Republic of Korea.

Department of Brain and Cognitive Sciences, Daegu Gyeongbuk Institute of Science & Technology, Daegu, 42988, Republic of Korea.

出版信息

Mol Brain. 2020 May 6;13(1):68. doi: 10.1186/s13041-020-00608-2.

Abstract

Thalamic recruitment of feedforward inhibition is known to enhance the fidelity of the receptive field by limiting the temporal window during which cortical neurons integrate excitatory inputs. Feedforward inhibition driven by the mediodorsal nucleus of the thalamus (MD) has been previously observed, but its physiological function and regulation remain unknown. Accumulating evidence suggests that elevated neuronal activity in the prefrontal cortex is required for the short-term storage of information. Furthermore, the elevated neuronal activity is supported by the reciprocal connectivity between the MD and the medial prefrontal cortex (mPFC). Therefore, detailed knowledge about the synaptic connections during high-frequency activity is critical for understanding the mechanism of short-term memory. In this study, we examined how feedforward inhibition of thalamofrontal connectivity is modulated by activity frequency. We observed greater short-term synaptic depression during disynaptic inhibition than in thalamic excitatory synapses during high-frequency activities. The strength of feedforward inhibition became weaker as the stimulation continued, which, in turn, enhanced the range of firing jitter in a frequency-dependent manner. We postulated that this phenomenon was primarily due to the increased failure rate of evoking action potentials in parvalbumin-expressing inhibitory neurons. These findings suggest that the MD-mPFC pathway is dynamically regulated by an excitatory-inhibitory balance in an activity-dependent manner. During low-frequency activities, excessive excitations are inhibited, and firing is restricted to a limited temporal range by the strong feedforward inhibition. However, during high-frequency activities, such as during short-term memory, the activity can be transferred in a broader temporal range due to the decreased feedforward inhibition.

摘要

丘脑前馈抑制的募集被认为通过限制皮质神经元整合兴奋性输入的时间窗口来增强感受野的保真度。先前已经观察到由丘脑背内侧核(MD)驱动的前馈抑制,但它的生理功能和调节仍然未知。越来越多的证据表明,前额叶皮层中升高的神经元活动对于信息的短期存储是必需的。此外,MD 和内侧前额叶皮层(mPFC)之间的相互连接支持升高的神经元活动。因此,详细了解高频活动期间的突触连接对于理解短期记忆的机制至关重要。在这项研究中,我们研究了丘脑-额叶连接的前馈抑制如何被活动频率调节。我们观察到在高频活动期间,双突触抑制中的短期突触抑制比在丘脑兴奋性突触中更强。随着刺激的继续,前馈抑制的强度变弱,这反过来又以频率依赖的方式增强了发射抖动的范围。我们假设这种现象主要是由于在表达 Parvalbumin 的抑制性神经元中诱发动作电位的失败率增加所致。这些发现表明,MD-mPFC 通路是通过活动依赖性的兴奋-抑制平衡进行动态调节的。在低频活动期间,过度的兴奋被抑制,并且由于强烈的前馈抑制,发射被限制在有限的时间范围内。然而,在高频活动期间,例如在短期记忆期间,由于前馈抑制的降低,活动可以在更广泛的时间范围内转移。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99ef/7201790/85d8e6311c45/13041_2020_608_Fig1_HTML.jpg

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