在生物物理丘脑皮质回路模型中,闭环连接最能支持角度调谐和睡眠动态。
Closed-Loop Connectivity Best Supports Angular Tuning and Sleep Dynamics in a Biophysical Thalamocortical Circuit Model.
作者信息
Moreira Joao Vs, Borges Fernando S, Atherton Zoe, Crandall Shane R, Varela Carmen, Dura-Bernal Salvador
机构信息
Department of Physiology and Pharmacology, State University of New York - Downstate Health Sciences University, Brooklyn, NY 11203, USA.
Department of Psychology, Florida State University, Tallahassee, FL 32306, USA.
出版信息
bioRxiv. 2025 Aug 22:2025.08.18.670921. doi: 10.1101/2025.08.18.670921.
Despite recent advancements in mapping thalamic and cortical projections, the specific organization of intrathalamic and corticothalamic connectivity remains elusive. Current experimental approaches cannot definitively determine whether these connections are arranged in reciprocal (closed-) or non-reciprocal (open-loop) circuits. We developed a biophysically detailed multi-compartmental model of the mouse whisker pathway, built on anatomical and physiological data. We showed that closed-loop intrathalamic projections between the thalamocortical (TC) relay neurons in the ventral posteromedial nucleus and the inhibitory neurons in the thalamic reticular nucleus (TRN) best reproduce thalamic spiking and local field potential responses across awake and sleep states. Increasing the percentage of closed-loop projections regulates the angular tuning in the awake state, while also supporting spindle oscillations during sleep. We also showed that direct activation of closed-loop corticothalamic feedback (CT→TC and CT→TRN) simulating TC inputs sharpens the angular tuning in the thalamus. These results contribute to resolving a long-standing question regarding the organization of intrathalamic projections, offering mechanistic insights into how thalamo-cortical circuits balance precise sensory tuning with robust oscillatory rhythms across behavioral states.
尽管最近在绘制丘脑和皮质投射方面取得了进展,但丘脑内和皮质丘脑连接的具体组织仍然难以捉摸。目前的实验方法无法明确确定这些连接是排列成相互(闭环)还是非相互(开环)回路。我们基于解剖学和生理学数据,开发了一个具有生物物理细节的小鼠触须通路多室模型。我们发现,腹后内侧核中的丘脑皮质(TC)中继神经元与丘脑网状核(TRN)中的抑制性神经元之间的闭环丘脑内投射,能最好地重现清醒和睡眠状态下的丘脑尖峰放电和局部场电位反应。增加闭环投射的百分比可调节清醒状态下的角度调谐,同时也支持睡眠期间的纺锤体振荡。我们还发现,模拟TC输入的闭环皮质丘脑反馈(CT→TC和CT→TRN)的直接激活会锐化丘脑中的角度调谐。这些结果有助于解决一个关于丘脑内投射组织的长期问题,为丘脑 - 皮质回路如何在行为状态中平衡精确的感觉调谐与强大的振荡节律提供了机制性见解。