Oster Andrew M
Department of Mathematics, Eastern Washington University, Kingston Hall, Cheney, WA, 99004, USA.
J Theor Biol. 2023 Sep 7;572:111588. doi: 10.1016/j.jtbi.2023.111588. Epub 2023 Jul 26.
In this paper, we present a multi-layer, activity-dependent model for the joint development of ocular dominance (OD) columns and cytochrome oxidase (CO) blobs in primate V1. For simplicity, we focus on layers 4C and 2/3 with both layers receiving direct thalamic inputs and layer 4C sending vertical projections to layer 2/3. Both the thalamic and the vertical connections are taken to be modifiable by activity. Using a correlation-based Hebbian learning rule with subtractive normalization, we show how the formation of an OD map in layer 4C is inherited by layer 2/3 via the vertical projections. Competition between these feedforward projections and the direct thalamic input to layer 2/3 then results in the formation of CO blobs superimposed upon the ocular dominance map. The spacing of the OD columns is determined by the spatial profile of the intralaminar connections within layer 4, while the spacing of CO blobs depends both on the width of the OD columns inherited from layer 4 and the spatial distribution of intralaminar connections within the superficial layer. The resulting CO blob distribution is shown to be consistent with experimental data. In addition, we numerically simulate monocular deprivation and find that while the CO blob distribution is unaltered, the OD pattern undergoes modification. The OD stripes of the deprived eye narrow, whereas the OD stripes for the remaining open eye widen.
在本文中,我们提出了一个多层的、依赖活动的模型,用于灵长类动物初级视皮层(V1)中眼优势(OD)柱和细胞色素氧化酶(CO)斑的联合发育。为简单起见,我们聚焦于4C层和2/3层,这两层都接受丘脑的直接输入,且4C层向2/3层发送垂直投射。丘脑连接和垂直连接都被认为可由活动修改。使用基于相关性的赫布学习规则并进行减法归一化,我们展示了4C层中OD图谱的形成如何通过垂直投射被2/3层继承。这些前馈投射与2/3层的直接丘脑输入之间的竞争随后导致了叠加在眼优势图谱上的CO斑的形成。OD柱的间距由4层内的层内连接的空间分布决定,而CO斑的间距既取决于从4层继承的OD柱的宽度,也取决于表层内的层内连接的空间分布。所得到的CO斑分布被证明与实验数据一致。此外,我们对单眼剥夺进行了数值模拟,发现虽然CO斑分布未改变,但OD模式发生了改变。被剥夺眼的OD条纹变窄,而其余未被剥夺眼的OD条纹变宽。