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大鼠桶状皮层中多须感受野起源的侧向相互作用模型。

A model of lateral interactions as the origin of multiwhisker receptive fields in rat barrel cortex.

作者信息

Ma Linda, Patel Mainak

机构信息

Department of Mathematics, 200 Ukrop Way, Jones Hall, William & Mary, Williamsburg, 23185, VA, USA.

出版信息

J Comput Neurosci. 2022 May;50(2):181-201. doi: 10.1007/s10827-021-00804-6. Epub 2021 Dec 1.

Abstract

While cells within barrel cortex respond primarily to deflections of their principal whisker (PW), they also exhibit responses to non-principal, or adjacent, whiskers (AWs), albeit responses with diminished amplitudes and longer latencies. The origin of multiwhisker receptive fields of barrel cells remains a point of controversy within the experimental literature, with three contending possibilities: (i) barrel cells inherit their AW responses from the AW responses of thalamocortical (TC) cells within their aligned barreloid; (ii) the axons of TC cells within a barreloid ramify to innervate multiple barrels, rather than only terminating within their aligned barrel; (iii) lateral intracortical transmission between barrels conveys AW responsivity to barrel cells. In this work, we develop a detailed, biologically plausible model of multiple barrels in order to examine possibility (iii); in order to isolate the dynamics that possibility (iii) entails, we incorporate lateral connections between barrels while assuming that TC cells respond only to their PW and that TC cell axons are confined to their home barrel. We show that our model is capable of capturing a broad swath of experimental observations on multiwhisker receptive field dynamics within barrels, and we compare and contrast the dynamics of this model with model dynamics from prior work in which employ a similar general modeling strategy to examine possibility (i).

摘要

虽然桶状皮层内的细胞主要对其主要触须(PW)的偏转作出反应,但它们也会对非主要触须或相邻触须(AWs)表现出反应,尽管这些反应的幅度较小且潜伏期较长。桶状细胞的多触须感受野的起源在实验文献中仍是一个有争议的问题,存在三种相互竞争的可能性:(i)桶状细胞从其对齐的桶状体内的丘脑皮质(TC)细胞的AW反应中继承其AW反应;(ii)桶状体内的TC细胞轴突分支以支配多个桶状体,而不是仅在其对齐的桶状体内终止;(iii)桶状体之间的皮质内横向传递将AW反应性传递给桶状细胞。在这项工作中,我们开发了一个详细的、具有生物学合理性的多桶状体模型,以检验可能性(iii);为了分离可能性(iii)所涉及的动力学,我们在假设TC细胞仅对其PW作出反应且TC细胞轴突局限于其所属桶状体的同时,纳入了桶状体之间的横向连接。我们表明,我们的模型能够捕捉关于桶状体内多触须感受野动力学的广泛实验观察结果,并且我们将该模型的动力学与先前工作中采用类似一般建模策略来检验可能性(i)的模型动力学进行了比较和对比。

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